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Hemodynamics Exam Oriented Discussion Dr Nishanth Sagar MCH TVM

1:42:50EnglishTranscribed Jul 27, 2026
0:05

Good evening. Good evening.

0:09

Hello.

0:14

One minute.

0:25

Participants chat screen.

0:30

Can you see all the presentation? Yes,

0:32

yes, yes, yes, yes. Right now

0:34

It is okay, sir. Yeah, see.

0:36

Everyone joined or can we start

0:37

actually? Yes, yes. You can start.

0:41

We can start, right? Yes, yes. It's

0:43

already there.

0:44

Okay, so uh

0:50

Yeah, so uh thing is cardiac

0:52

hemodynamics is a

0:53

very important part of your exam

0:55

presentations.

0:57

Uh so actually you will have a lot of

0:59

weightage for your spotters, especially

1:01

this year. Uh we might not have uh we're

1:04

because of the COVID pandemic, we are

1:05

not exactly very sure how the exam

1:07

pattern is.

1:08

Like in DNB you have virtual cases and

1:10

ASCII which play a very important role

1:11

right now. This was actually a small

1:14

substation for us, but this might be a

1:16

very important uh mark scoring part

1:19

uh station in your exams. So

1:22

actually there are I'm not in going into

1:25

I'm just mainly concentrating on the

1:27

oximetry run part of it because pressure

1:28

tracings

1:30

about 10 days back by Dr. Thomas. So

1:32

we're mainly dealing with oximetry run.

1:35

So what is important is actually

1:37

sequential systematic reading.

1:39

So that is and I have around 18 cases,

1:42

so we'll try to analyze each case and

1:45

see uh

1:47

uh how to read properly.

1:49

Okay. So I would actually require uh

1:54

I need uh one of you to volunteer for

1:56

analyzing uh the cases.

1:59

Okay, so uh

2:01

You could please turn on your cameras.

2:05

I think we should get to get to know

2:06

each other.

2:08

Cuz I know some of you people, but I

2:09

don't know some of other people

2:11

actually.

2:12

You could just turn on your cameras now.

2:18

Uh the presentation

2:20

is mainly

2:21

focused on your exams, on your DM exams.

2:24

Okay, so what matters is not your

2:26

diagnosis. That is a very important

2:27

part. The diagnosis does not matter at

2:29

all.

2:31

In fact, you might be you will be

2:32

usually be you won't get something like

2:34

straight away straight away case like

2:35

ASD or you won't get something like VSD.

2:37

Okay, they'll ask you some very

2:39

complicated case, but it is essentially

2:41

how you analyze each and every part of

2:45

this actually matters. It is not that

2:47

you

2:48

when

2:49

you don't suddenly jump into a

2:50

diagnosis. You don't just just suddenly

2:52

say it is like

2:54

RSOV to RV with You don't say a

2:56

diagnosis like that. You have to analyze

2:58

each and every step. That carries more

3:00

weightage rather than jumping and saying

3:01

a diagnosis RSOV type. Your diagnosis

3:03

may be wrong. For example, in my

3:06

what I could not find the diagnosis, but

3:07

the analytical steps should be there.

3:09

That is what they appreciate. So, it is

3:10

your approach that count and never jump

3:12

and say the diagnosis. Evaluate each and

3:14

every step.

3:16

So, that is what is actually important.

3:18

Just hold on 1 minute.

3:20

So,

3:23

that is what is actually important. So,

3:24

keeping that in mind, uh

3:27

we'll

3:29

Okay, keeping that in mind, we should go

3:30

for the first case. Okay, is this

3:32

appropriate for everyone?

3:33

Okay, so I need one person to actually

3:35

volunteer to read the case

3:37

so that we can go forward with this.

3:39

There's no point in me just reading the

3:40

case. Okay, so please

3:43

So,

3:44

this is how it is pressure data.

3:46

Yes, or either you can start

3:48

Yes.

3:49

Who is that?

3:50

You can either start with pressures or

3:51

either you can start with the oximetry.

3:54

So, among

3:56

Can I start? The one minute case where

3:58

to go.

3:59

So, pressures you first read normal or

4:01

abnormal. So, you see the pressure

4:02

normal or abnormal. Link the pressure to

4:05

next in line. See the gradients. Compare

4:07

if it's an ASD, compare RA versus LA,

4:09

compare RV versus LV.

4:12

RA is A6 before -6.

4:16

So, RV is 20 by 6.

4:18

So, then we compare the pressures. You

4:19

have tricuspid valve.

4:21

So, you look for a diastolic gradient

4:22

across the tricuspid valve. So, 6 by 6

4:24

there's no diastolic gradient.

4:25

Again, RV to PA. 20 by 6 and 20 by 10.

4:29

You look for a systolic gradient across

4:31

pulmonary across the pulmonary valve.

4:34

Then you look at your pulmonary artery

4:35

wedge.

4:36

That's a diastolic gradient. Look for

4:37

the diastolic gradient as the arrow

4:38

shows.

4:40

Okay, then you look for the LV. Again,

4:41

look for the systolic gradient across

4:43

the mitral valve and then a diastolic

4:45

gradient across the mitral valve and

4:47

systolic gradient across the

4:49

aortic valve. So, to be you as you

4:51

analyze more cases, you'll be more

4:52

confident.

4:54

So,

4:55

I hope this proves to be useful. So,

4:56

we'll go for the first case. I think a

4:58

Dr. Ashwin has volunteered. So, Ashwin,

5:00

can you just read this?

5:01

And what is the impression based on

5:03

this?

5:06

So, I'll first read the

5:08

oximetry.

5:10

It's your choice. Yeah, it's your

5:12

choice. I'll I'll first read the

5:14

oximetry. You can read the pressure.

5:15

That's your choice.

5:17

Okay.

5:18

The SVC saturation is uh 68. Okay.

5:21

So, it is fairly normal. Mildly reduced.

5:25

Okay, 60 to 80 is reasonably okay. Yeah.

5:28

Okay.

5:29

Then RA saturation is 70.

5:32

Okay. So, what is your comment on

5:35

That is normal expected.

5:37

It

5:38

ideally Yeah. should be similar to SVC

5:41

or slightly higher than the SVC. Okay.

5:43

Yeah. Because IVC saturation is higher.

5:45

Then

5:46

RV it is 84.4. So, there is a step up of

5:49

14, which is a significant step up from

5:52

RV to RA level RA to RV level. RV level.

5:55

Then the same saturation is reflected in

5:57

the pulmonary artery. Okay. And on the

5:59

left side, it is

6:01

normal saturations. Expected normal

6:04

saturation.

6:05

RA pressures? So,

6:07

now coming to pressures, RA pressure is

6:09

A wave is 7, V wave is 5, and mean is 6.

6:13

It's within normal limits. RV pressure

6:16

systolic pressure is elevated. It is 110

6:19

mm mercury, and the diastolic pressure

6:21

is 7. There is no diastolic gradient

6:23

across the tricuspid valve. Okay, so

6:24

there's no diastolic gradient. Okay. RV

6:27

to pulmonary artery, there is a

6:30

mild gradient of 10, which is not very

6:32

significant RVOT obstruction. Okay. Then

6:35

coming to left sided pressures,

6:38

LA pressure

6:39

AV and mean are

6:41

mean pressure is

6:43

elevated. Elevated, 14.

6:45

Elevated.

6:46

Mean pressure mean LA pressure is

6:47

elevated.

6:49

And LV

6:51

pressure is

6:54

almost similar to RV pressure. Lower

6:56

than RV pressure. Okay.

6:58

And the aortic pressure

7:00

is

7:02

130 bar.

7:03

70. 70. So, is there a systolic

7:06

gradient?

7:10

Is there a systolic gradient across the

7:11

aortic valve?

7:12

No

7:13

no systolic gradient. Aortic pressure is

7:15

higher than the aortic Okay, what what

7:16

are your comments and what is your

7:17

diagnosis? What is your comments and

7:19

what is your diagnosis?

7:23

Mhm.

7:42

So, you have identified a step up at the

7:43

level of RV, right? RV

7:45

Okay, you have identified a step up at

7:47

the level of the RV. So, what could be

7:48

its common cause?

7:50

Common cause is a VSD. VSD So, if

7:53

there's a step up at the

7:54

part is If there's a step up

7:55

Aortic

7:56

Aortic pressure is higher than both

7:58

ventricles.

7:59

Okay, that is okay. We are dealing with

8:01

a top physiology now for that all

8:03

pressures to be equal. It may or may not

8:05

be a top physiology.

8:06

So, you have anyway dealt with a step up

8:07

at the level of the RV. Common cause is

8:10

a VSD, right?

8:11

So, is it left to right or right to left

8:13

shunting?

8:14

It is a right to left right shunting

8:16

only. It's a left right shunting, okay?

8:19

And is there PH or not?

8:20

There's no desaturation. Is there PH or

8:22

not?

8:24

Uh there is a PH. Is it severe PH or

8:26

mild PH?

8:28

Uh pulmonary systolic pressure is 100

8:31

Uh

8:32

100 So, severe PH. Severe PH So, it's a

8:34

VSD with a left to right shunt with

8:37

severe PH. Severe PH Okay, so is it

8:39

operable or not?

8:43

Uh

8:46

It's not

8:48

Severe PH not operable. You have

8:50

actually you have to

8:52

calculate the PVR calculate okay, but

8:54

just roughly you can If you say is it

8:56

operable or not?

8:58

It is a pre-Eisenmenger state nearly not

9:00

operable. See, it's still shunting it's

9:01

a huge shunt from left to right now

9:02

because there's a massive systemic

9:05

increase in uh in saturation from 70 to

9:07

84.

9:08

Even if you look at the LA pressure the

9:10

LA pressures are also high. So, if you

9:11

have a severe PH you're bound to have

9:13

low LA pressures.

9:15

Okay, so actually this is still

9:17

operable.

9:18

Okay, okay.

9:19

You get my point because there's a huge

9:20

Since we have good LA pressure, okay.

9:22

There's a huge step up with a large LA

9:24

pressures.

9:25

So, it's actually VSD with severe PH

9:28

but with still shunting left to right

9:31

and operable.

9:32

So, that is your impression from this

9:33

case. So, even if you do an echo you

9:35

might see significant

9:37

I can I

9:37

ask how is the aortic pressure 130 by

9:40

70? Maybe the patient has hypertension.

9:42

We are not very sure.

9:43

But still it cannot be more than any of

9:45

the ventricle, no?

9:46

Yeah, that is actually okay.

9:48

It's logical only. That is the confusing

9:50

part of this.

9:52

That is logical. Again,

9:54

there are a lot of fallacies of taking

9:55

in cath data, you can see.

9:57

There is a given pressure tracing from

9:59

the given pressure tracing.

10:03

You read this. Yeah. There are some some

10:05

points you missed.

10:06

So when you start reading the SVC

10:08

saturation is 68. It means that the

10:09

comment is the patient is actually very

10:11

stable. Okay, if you have a low SVC

10:13

saturation of 35 or 40 or 50, it means

10:16

the Either a reduced cardiac output or

10:18

systemic desaturation.

10:20

Yeah, systemic desaturation or reduced

10:21

cardiac output. Then what you do is you

10:22

compare between the SVC and the aortic

10:24

side.

10:25

If the aorta is also desaturated, it

10:27

means there is systemic desaturation.

10:28

However, if the aorta is something in 97

10:31

and the SVC has a saturation of 35, it

10:33

means that you have a very sick patient

10:34

on table.

10:35

Okay. That is usually the first question

10:37

they ask.

10:38

Okay, you What is your comment on the

10:39

SVC especially if you have a low SVC

10:41

saturation? The first comment they ask

10:42

is what is the comment on that?

10:44

So you have reasonably good SV

10:45

saturation. See, reasonably normal.

10:47

Okay. RA pressures are good. There is a

10:49

step up at the level of the RV.

10:51

Okay. And the pulmonary artery pressures

10:53

and pulmonary arteries, there is no step

10:55

up. LA is normal. LV is normal. Aorta is

10:57

normal.

10:58

And when you comment, RA A7 V5 M6

11:01

pressures are reasonably okay and the

11:02

patient is in sinus rhythm because you

11:04

can have an AF.

11:05

All right. So you missed that point.

11:08

Then when you read about the RV

11:09

pressure, RV systolic blood pressure is

11:11

high. Diastolic blood pressure is low

11:12

and there is no diastolic gradient

11:13

across the tricuspid valve.

11:15

So M6 and RV is 7, right?

11:19

Then

11:20

Uh then you then the then you must try

11:21

to see in RV and PA there is a there is

11:24

there any systolic gradient? There is

11:26

not much systolic gradient across the

11:28

um

11:29

pulmonary valve.

11:30

So now we go for LA. A and V are

11:32

elevated. M is 14. V is greater than A

11:35

as expected. So you have high So the LA

11:37

pressures are high in a patient of

11:39

uh who's having a left to right shunt

11:41

that actually indicates that the patient

11:42

is operable.

11:44

Right? So LV is good and aorta is good.

11:46

So based upon this you try to comment on

11:48

this. So VSD, severe PH with left to

11:50

right shunt and the patient is operable.

11:52

Right?

11:53

So any doubts on this from any of the

11:55

audience?

11:59

Check the gradient is

12:02

uh expected out. Given the LA and LV

12:05

mean LA pressure and the LV end

12:07

diastolic.

12:08

Mean LA pressure and the mean LA

12:11

pressure, okay. LV 14 LV

12:14

9 Yeah, there is a 5 mm gradient

12:17

actually. Yeah, that is okay.

12:19

But actually even if you take mitral

12:20

stenosis you need to have a higher

12:21

gradient, right?

12:23

Using the Fick's formula, it's not that

12:25

much of a gradient.

12:27

Okay, okay. It should be a significant

12:28

gradient.

12:29

Right? So we are clear on this?

12:31

So as you cases go by you'll have more

12:33

complicated cases.

12:35

So anyway, the method of how you read

12:36

this is like this.

12:38

So it's VSD, severe PH, left to right

12:40

shunt, operable, right?

12:42

So this is a usual question. The next

12:44

question they'll ask is what are the

12:45

cause of step up in the ventricular

12:46

level?

12:47

So one is a VSD which shunts left to

12:49

right.

12:50

One is an ARSOV to RV. One is coronary

12:52

AV fistula to RV. And one is PDA with

12:55

PR. Again, you get how PDA with PR gives

12:56

you, right?

12:58

PR goes into the ventricle.

13:00

So VSD, ARSOV to RV, coronary AV fistula

13:02

to RV, and PDA with PR. You also have a

13:04

lot of rare causes.

13:05

You know, usually these you should at

13:07

least these four causes, okay?

13:09

We clear on this?

13:11

So next case.

13:14

So again, 9-month old child or baby who

13:18

underwent a palliative procedure on day

13:19

40 of life.

13:21

Okay. Would anyone care to read this?

13:31

Say that. Can I try? Yeah, you can try

13:33

to try, no problem.

13:36

Uh SVC

13:38

saturation is 54, that is low. Yeah,

13:41

low. So, again, you should be then when

13:42

you once you look at the SVC saturation,

13:44

you straight away look at the It can be

13:46

either due to low cardiac output state

13:47

or due to systemic desaturation.

13:49

Okay.

13:50

So, you look at the aortic pressure.

13:51

Aortic pressure is also low, right?

13:53

Yeah, yeah. Okay, so again

13:57

RA is almost same as SVC.

14:01

Uh RA is okay, fine. 255, there is no

14:05

uh step. Step up, yeah.

14:08

Uh then from RA to RV then from RV RV to

14:13

PA, there is a step up. Of 20.

15:10

diastolic gradient across the tricuspid

15:11

valve. Don't miss that step. Is there a

15:12

diastolic gradient across the tricuspid

15:14

valve? No, there's no diastolic

15:15

gradient. Don't miss the gradient. Must

15:16

always see gradients across valves.

15:19

Right, next.

15:20

From RV to PA, there is a

15:23

gradient.

15:24

Systolic gradient.

15:25

Systolic gradient.

15:26

Systolic gradient. From 100 to 20. 80.

15:30

Okay.

15:30

80 mm gradient.

15:32

Then, diastolic pressure is normal.

15:36

Okay.

15:38

Then,

15:39

LA pressure mean is eight normal. Okay.

15:43

Then,

15:44

LV systolic pressure is normal 100.

15:46

There is no gradient across the mitral

15:48

valve. Okay. Diastolic

15:50

Diastolic gradient.

15:52

There's no diastolic gradient, yeah.

15:53

Then, aortic pressure is 100 by

15:56

30. That diastolic pressure is very low

15:58

with a wide pulse pressure. Okay. And is

16:01

there a systolic gradient across the

16:02

aortic valve?

16:03

There is no systolic gradient. Okay. So,

16:06

what are your impressions and what is

16:07

your diagnosis?

16:11

So, patient underwent a palliative

16:13

procedure on day 40. Yeah.

16:18

So, there is a step up from RV to PA,

16:21

significant step up.

16:23

Okay.

16:24

So, that could be due to a shunting at

16:27

the great vessel level. Okay.

16:29

Uh

16:30

it could be either a PDA. Okay. Or an AP

16:35

window. Okay.

16:37

And

16:42

there's a step down from LA to LV.

16:45

Okay.

16:58

There could be I think Ashwin will tell

17:00

me. What about the pressures? There's

17:01

something unique about the pressures in

17:03

the chambers.

17:05

With that itself, you can get a

17:06

diagnosis.

17:07

Can I try? Equalization Equalization of

17:09

systolic Yeah, exactly. See, when you

17:11

note the RV systolic BP is equal to the

17:14

LV systolic BP, which is equal to the

17:15

aortic BP. So, what does that signify?

17:17

It's a hallmark of a certain condition.

17:19

What is it?

17:20

Tetralogy of Fallot. Exactly. So,

17:22

tetralogy of Fallot, the abnormality in

17:23

that case is the RV systolic BP P is

17:26

equal to LV systolic BP is equal to

17:27

aortic systolic BP. That's correctly

17:28

exactly 100.

17:30

So, when you see it, the first thing

17:31

which you should strike is it is a

17:33

tetralogy of Fallot. So, if you look at

17:35

this Exactly. There should be a should

17:37

be a large unrestricted VSD.

17:40

Right?

17:40

Okay. Okay. And is there a Keeping that

17:43

in mind, is there a severe PS?

17:47

Severe. Yeah, severe PS. So, you have a

17:49

severe PS with shunting of blood towards

17:51

the mixing of blood. So, right That's

17:53

why you have this desaturation in the

17:54

level of aorta.

17:56

Right?

17:57

So, your basic diagnosis is stuff. This

17:59

tetralogy of Fallot. You have a severe

18:01

PS with an unrestricted VSD. Are you

18:03

clear on that?

18:04

Okay. So, what is the palliative

18:05

procedure on day 40 of life?

18:08

Maybe BT shunt. Exactly. So, So, why do

18:11

So, what is indicative of a BT shunt

18:13

here?

18:14

The pulse pressure wide pulse pressure

18:16

on the aorta. What about the level of

18:17

pulmonary artery?

18:24

The aorta. My diagnosis is stuff.

18:26

Physiology, VSD under large unrestricted

18:29

VSD with severe PS

18:31

with

18:33

BT shunt. Okay.

18:35

And it's responsible for the large pulse

18:36

pressure. Again, see, your diagnosis is

18:38

not important. It's just how you

18:39

analyze. Even if you can If you are not

18:41

able to reach the diagnosis, it does not

18:42

actually matter.

18:43

As long as you are even able to stay say

18:45

all these steps. Does anyone have a

18:46

doubt on this case?

18:51

No doubts.

18:52

Okay, fine.

18:54

So, we'll go for the next case.

18:56

Okay. So, diagnosis.

18:58

So, aortic saturation is decreased,

19:00

but aorta is still more than the PA.

19:02

Step up at the level of PA level.

19:04

LV systolic BP is equal to RV systolic

19:07

BP is equal to aortic systolic BP. Large

19:08

unrestricted VSD, severe PS. So, stuff

19:10

with a BT shunt.

19:12

All right?

19:14

So, one of the general dictates is that

19:15

as soon as you get your hemodynamic

19:17

study, oximetry study, straight away you

19:19

look at the aorta and pulmonary artery.

19:21

The first thing you look at is the aorta

19:22

and pulmonary artery saturation, okay?

19:23

Pulmonary artery is more than normal.

19:25

Okay, suppose the pulmonary artery

19:26

saturation is something like 75.

19:28

Or suppose pulmonary artery is 85, then

19:30

you can straight away say there's a left

19:31

to right shunt. If the aorta is less

19:33

than normal, then you think of a right

19:34

to left shunt.

19:35

If the pulmonary artery is much more

19:37

than the aorta, you start thinking of a

19:38

TGA.

19:39

If the pulmonary artery is equal to

19:40

aorta, you think of an admixture

19:42

physiology.

19:43

So, this is a very important step. First

19:44

thing you get in such a thing is before

19:45

reading anything, straight away in your

19:47

mind, you look at the pulmonary artery

19:48

and the aortic aorta.

19:50

Pulmonary artery is more than normal,

19:51

left to right shunt. Aorta is less than

19:52

normal, right to left shunt.

19:54

Pulmonary artery is more than the aorta,

19:55

TGA.

19:56

Pulmonary artery is equal to aorta,

19:58

admixture physiology.

20:00

All right?

20:02

So, once you diagnose a TGA, I'll give

20:04

you an example. Suppose you diagnose TGA

20:06

based on this step. PA is more than PA

20:08

saturation is more than the aortic

20:09

saturation, you diagnose a TGA.

20:11

You know TGA is incompatible with life,

20:13

so there should be a shunt at some

20:14

level. So, you look for the presence of

20:15

ASD, VSD or PDA.

20:17

Right? And then you look for the

20:18

presence of a PS. That's how you

20:20

diagnose it.

20:21

The first thing if you diagnose TGA, the

20:22

next step is you look for a balanced

20:24

shunt.

20:25

Only then the patient will be alive.

20:26

Then is there a PS or not? Right?

20:29

So, this is a very important thing,

20:30

okay?

20:33

You clear on this? We'll go for the next

20:34

thing.

20:37

So, again, 23 32-year-old male, sudden

20:39

onset chest pain with heart failure

20:40

symptoms.

20:42

So, who's reading the Smitty there?

20:46

Smitty? Not there.

20:49

Okay. Anyone else? So, then Yes, sir. I

20:52

shall read. Shall I read? Dhanush.

20:55

Dhanush, you are there? Yes, sir. I'm

20:56

there.

20:57

Uh

20:58

Uh I would like to start with the

21:00

saturation. Okay. SVC saturation is 70.

21:04

Okay. Then you comment on this.

21:06

Simultaneously you must comment on this.

21:07

Yeah,

21:08

it's 70, which is uh quite higher than

21:10

normal. Okay, normally what we look at

21:12

we look at the mixed venous oxygen

21:14

saturation. Again, people are lazy. They

21:16

only look at the SVC saturation. Again,

21:18

SVC saturation is pretty decent. Even

21:20

that alone is pretty good enough. Okay,

21:21

so SVC saturation is good. So, patient

21:23

is stable. Okay.

21:25

At the RA level, we are having a step up

21:28

of 16 from 70 to 86.

21:31

So, significant

21:32

that uh it's a significant step up. Then

21:35

at the RV level, we are having a step

21:37

down of 6 mm mercury. Okay.

21:41

Then at the PA level, we are having a

21:43

pressure of 80.

21:45

Okay. So,

21:47

um

21:48

I mean a saturation. Saturation of of 80

21:50

is there.

21:51

Then uh coming to the uh

21:53

in the left side, LA, LV, and aortic

21:56

pressures are

21:58

expected. Okay. Uh maybe a bit

22:01

desaturation is there in the LV and the

22:03

aorta level, 95.

22:06

Okay, fine. It is lying significant

22:08

desaturation. So, you know what I mean?

22:10

Right now

22:11

Yeah, cath readings if you have done

22:13

cath readings, you know, the oximetry

22:15

run can be marked marked can be markedly

22:17

different. Sometimes you'll have to be

22:18

keep the patient there and then again do

22:20

a repeat cath study if it doesn't

22:22

qualify. So, okay. So, LA LV

22:24

So, right now we are having a we are

22:26

having a step up at the at the RA level

22:27

and a step down at the RV level. Okay,

22:29

step down at the RV level you can keep

22:31

it plus minus. Okay, let's keep that.

22:33

Okay, fine.

22:33

Then at the pressures level

22:37

Uh

22:38

okay. Um so, we are not having any A or

22:41

or V waves. So, I'm not able to say

22:42

whether patient is in sinus rhythm or

22:44

not. Okay. But uh mean RA pressure is

22:47

elevated uh 12. Definitely elevated,

22:49

yeah. And um

22:51

at the RV pressure may uh this I think

22:53

it's a RV systolic pressure. Uh okay, RV

22:56

RV mean pressure is uh 36.

22:59

That is also quite elevated. And the

23:02

pulmonary artery pressures is 36 bar 18.

23:05

Is there a systolic

23:05

No, there is a mild

23:07

No, there is no systolic gradient

23:08

between RV to PA. So then Then

23:12

What about the diastolic pressures?

23:14

The diastolic pressure in the pulmonary

23:16

artery is also elevated.

23:17

Yes, so you must keep You must tell them

23:19

So both

23:20

So both the pulmonary artery systolic

23:22

and diastolic pressures are elevated.

23:24

The LA mean pressure is also elevated

23:26

16. Okay.

23:27

And

23:29

coming to the LV, we are having a

23:31

The LV systolic pressure is elevated at

23:33

158 bar 9. And also in the aorta we are

23:36

having But there is no There is no

23:38

systolic gradient between the LV and the

23:40

aorta. And we are having a wide pulse

23:42

pressure situation with a 160 bar 30. So

23:46

your comments, your final comments and

23:48

your diagnosis.

23:49

So

23:50

there is a step up in the RA level with

23:54

with a high pulse pressure. So there may

23:56

be

23:57

a left-to-right shunting at the at the

24:00

atrial level with

24:02

and and adding it with the with the high

24:04

volume pulse, it may be an

24:07

an RSOV to the right atrium. Okay. Is

24:10

that the That's the answer. You And you

24:12

can also you

24:12

With also there is pulmonary artery have

24:15

mild pulmonary artery hypertension.

24:16

And that could be some hyperkinetic PH

24:18

due to flow.

24:19

Yes.

24:20

Okay.

24:20

Uh so

24:22

I Why this is You straightaway forget

24:24

about this clinical presentation. In the

24:25

clinical presentation is suggestive of

24:27

an RSOV.

24:28

Okay. Uh

24:29

Did Did Did everyone get why this is an

24:31

RSOV to RA?

24:33

Is there any doubts on this?

24:36

Why this is an RSOV to RA? Why Why is

24:38

this not an ASD? I straightaway say this

24:40

is an ASD. Why is this not an ASD? You

24:42

forget about the clinical picture.

24:44

You Suppose you forget about the

24:45

clinical picture. Why this is not an

24:46

ASD?

24:48

The pressures are not equal between the

24:51

left atrium and the right atrium.

24:52

Ah exactly. That is the point. See, when

24:54

you have a large unrestricted ASD, okay,

24:57

if you pull the catheter from the LA to

24:59

how do you distinguish a restricted ASD

25:01

and an under-restricted ASD in cath lab?

25:02

One of course an under-restricted

25:04

restricted ASD will not have significant

25:05

step

25:06

uh

25:07

left right shunt and hence you won't

25:08

have a saturation difference there.

25:10

When you pull the catheter from the LA

25:11

to RA, if the mean pressure difference

25:13

is less than 2 3, it indicates an

25:15

under-restricted ASD.

25:16

Right? And then A will be equal to B and

25:18

X will be equal to Y.

25:20

Right? But you look at this, the RA mean

25:22

is 12 and the LA mean is 16. Right?

25:25

There is still if if this is an ASD, it

25:27

is a restrictive ASD.

25:29

Because the gradient is more than two.

25:31

But a restrictive ASD will never have

25:33

such a large step up of 16.

25:35

That is not possible.

25:37

Okay.

25:38

So it is not an it is ultimately it is

25:40

not an ASD. And if you look at the large

25:42

pulse pressure,

25:43

the other diagnosis is an RSOV2

25:46

RA.

25:47

Keeping the pulse pressure and the

25:48

clinical symptoms in mind. So this is a

25:50

very important point. You have to look

25:51

once you diagnose a step up at one

25:53

level, you look at the LA and RA or

25:55

similarly LV and RV.

25:56

The mean gradients are four, the

25:59

difference of four. So you cannot So it

26:00

has If it's an ASD, it has to be a

26:02

restrictive ASD. A restrictive ASD will

26:04

never cause such a large step up.

26:06

So it is definitely not an ASD. You have

26:08

to think of something else. The clinical

26:10

picture and the wide pulse pressure

26:11

would probably indicate an RSOV2 RA.

26:13

Okay.

26:14

So step up at the atrial level, wide

26:16

presentation and the clinical

26:17

presentation indicates an RSOV2 RA.

26:20

So what are the causes of step up at the

26:21

atrial level? Again, frequently asked.

26:23

ASD, RSOV2 RA, VSD with PR. Again, you

26:27

can understand VSD with PR how it

26:28

becomes.

26:29

Gerbode defect,

26:31

coronary AV fistula to RA and PAPVC.

26:34

Right?

26:37

So I have a question.

26:39

You said there's a step down between RA

26:40

to RA. Why has that occurred?

26:43

Very simple question. There's no

26:44

particular answer for this.

26:46

Just screening.

26:47

Uh exactly, you might have taken the uh,

26:50

sample at the

26:52

jet which originates from the LA to RA.

26:55

If you suppose you take it a bit higher

26:56

or a bit lower, you might get a

26:57

different saturation. This might have

26:58

been taking you you might get actually

27:00

more of a saturated blood. That's why

27:02

this might not have much significance.

27:04

You must keep that also in mind.

27:06

Right? And I missed one point. The step

27:08

up at the level of PA is also important.

27:10

The last case,

27:11

PDA, AP window,

27:13

RSOV to RVOT,

27:16

coronary origin of pulmonary artery,

27:17

ALCAPA and BT shunt.

27:19

Right?

27:26

So, this is a very important table.

27:28

What is the significance step up is

27:30

again in some uh, guy called Antman.

27:32

Atria 7%, ventricle is 5%, great vessel

27:35

is 5%, any level is 7%. Okay.

27:39

So, atria 7%, ventricle 5%, great vessel

27:42

5%, any level. Suppose you take an SVC

27:44

saturation and PA saturation the

27:46

difference is more than seven, there's

27:47

some shunt going on somewhere.

27:49

Right?

27:50

And PV to LA of more than 2%

27:52

significant.

27:54

Okay, which is Why does the LA have a

27:55

lower saturation than the PV?

28:00

You take your

28:01

saturation be 100 and the LA saturation

28:02

It's the bronchial veins. The bronchial

28:04

veins draining. Okay, some people say

28:06

there are unidentified veins draining.

28:08

Not really sure on that.

28:10

Okay, so 18-year-old asymptomatic

28:12

acyanotic child,

28:14

S2 wide split, 3x6 ESM at the base.

28:18

So, who's going to read this?

28:25

Mitty, you there?

28:28

Uh, yeah.

28:29

Uh, Mitty, try and read this.

28:32

Uh, saturation

28:36

SVC saturation is 72.

28:39

That means child is

28:42

boy is stable. RA saturation SVC to RA,

28:45

there is a step up of 13%. Significant

28:49

step-up. on

28:52

There is a significant step-up, okay.

28:54

Significant step-up. Yeah.

28:57

Okay.

28:59

Uh

29:00

from

29:01

The RA saturation

29:03

is 95, slightly on higher side. Okay.

29:07

Uh

29:08

then pulmonary

29:11

LA saturation

29:12

is 97, uh which is normal.

29:16

Not able to hear you.

29:17

saturation is 97, which is normal. Okay.

29:20

Pressures? Then

29:23

Uh then the pressures, the right atrial

29:26

pressure mean RA pressure is normal and

29:29

the

29:30

uh

29:31

and the patient is in sinus rhythm.

29:33

Okay.

29:34

Uh there is a

29:37

Um RV systolic pressure is elevated.

29:40

There is no diastolic gradient across

29:41

the tricuspid valve. Uh RV systolic

29:44

pressure is elevated. Then there is a uh

29:47

step-down of

29:50

Um

29:51

No, there is a a gradient across the

29:55

pulmonary valve. Okay.

29:57

Uh the Systolic gradient.

30:00

Then You mean systolic gradient, right?

30:03

Systolic gradient across Yeah, okay.

30:06

Yes.

30:07

Uh systolic gradient across pulmonary

30:09

valve.

30:10

Then

30:12

Pulmonary wedge pressure

30:15

is a normal pressure is 10.

30:18

Uh

30:19

And V is more than A as expected. We'll

30:22

take it.

30:25

And V is more than

30:27

And LV pressures are normal. There is no

30:29

diastolic

30:31

gradient across the

30:33

mitral valve.

30:35

And aortic pressures are

30:38

normal. Pulse pressure This

30:41

Okay. So there is a step the level of uh

30:44

EC to RA.

30:46

So, it could be an

30:49

a

30:52

a effect to the effect.

30:54

And but again the same point applies as

30:56

in

31:01

PAPVC PAPVC PAPVC Why it's a PA Why it's

31:04

not an ASD is the same point as

31:05

discussed last time. You look at the

31:07

mean gradient between

31:09

uh say RA and pulmonary artery wedge

31:11

pressure is five.

31:13

So, if it has to be an ASD, it has to be

31:14

a restrictive ASD.

31:16

And restrictive ASD will not cause such

31:17

a large step up.

31:19

Right? So, it's an unrestricted So, it

31:21

is it cannot be an ASD. Or if it is an

31:24

ASD, it could be only a restrictive ASD.

31:26

And

31:27

uh so, the large step up here would be

31:29

mostly a PAPVC.

31:31

Right? Which is draining probably

31:32

somewhere into the SVC or somewhere. Not

31:34

very sure, but all over SVC. So, it's

31:37

probably a PAPVC.

31:39

So, and then in an ASD A and uh A and B

31:42

will be equal and X and Y will be equal.

31:44

So, it's an unrestricted So, it's

31:46

probably a

31:47

So, this is what is an unrestricted ASD

31:49

catheter pullback from the LA to RA and

31:51

mean gradient difference will be less

31:51

than two. A will be equal to V, X will

31:53

be equal to Y. For a PAPVC, it may or

31:56

may not have a restrictive ASD. So, it's

31:58

not a clear-cut ASD. That's another

31:59

important point.

32:00

So, whenever you diagnose ASD, always

32:02

look for the Is there a pressure

32:04

difference?

32:05

Right? So, we clear on this?

32:07

We go for the next one.

32:09

Uh 1 minute. Yeah. So, 12-year-old boy

32:13

uh 12-year-old white fixed S2 diagnosed

32:15

clinically as ASD who was non-cyanotic.

32:18

So, Sobit is there?

32:19

Uh yes, sir. I'm there. Uh

32:22

I said I'll start with the saturation.

32:24

Uh SVC saturation is 88. Okay. It's a

32:28

bit on higher side, sir.

32:30

It's on higher It's 70 uh higher. Okay.

32:34

And uh

32:36

uh SVC to RA there is uh

32:39

normal

32:40

there is no

32:42

function saturation RA to RE

32:45

there is no

32:47

significant step up RV to PA also it is

32:51

normal only

32:53

and

32:55

there is

32:57

left side

33:02

uh

33:05

LA there is a

33:12

hello

33:13

oh yes

33:16

Okay LA LV and femoral artery all are

33:18

having desaturated

33:20

and desaturated

33:22

yes It's still desaturated right? yes

33:24

yes Okay so comment on your pressures

33:28

pressure on the right side

33:31

uh pressures are elevated mean pressure

33:35

is Yeah you must say our patient is in

33:37

sinus rhythm patient is in sinus rhythm

33:40

mean mean RA pressure is

33:42

slightly elevated okay uh

33:46

there is no gradient across the

33:48

tricuspid valve okay

33:50

and this is RV systolic pressure is

33:51

elevated

33:52

elevated okay

33:53

RV to PA there is a mild

33:56

systolic gradient is there Again it's

33:58

not very significant 15 only na?

34:01

okay then

34:03

then on the left side there is mean

34:06

pressure is patient mean pressure

34:08

on the PA diastolic pressure?

34:13

Slightly on the higher side usually it's

34:15

around 10 na? uh yeah slightly on the

34:17

higher side LA pressures?

34:20

LA pressures normal only

34:23

mean pressure is six Again what is

34:25

something is there something unique on

34:26

the LA pressure what is it?

34:29

A is equal to V Okay that is one thing

34:31

keep in mind. Okay. Uh

34:33

Uh

34:38

And there is both RA and LA mean are

34:41

equal. So, the there are some

34:43

unrestricted ASD

34:45

ASD, right? Okay, so then next?

34:48

And uh

34:49

Uh LV pressure is normal only. Uh

34:52

femoral artery pressure also normal with

34:55

uh

34:56

Uh normal only. Uh saturation

34:59

uh all the chambers are equal. So, ASD

35:01

plus uh TAPVC uh uh TAPVC might be the

35:05

Okay, so you are diagnosing

35:07

TAPVC with ASD. So, that is actually the

35:09

correct answer. So, uh see the first

35:11

thing I told you, whenever you take a

35:12

tracing, always look at the PA tracing

35:14

and the

35:15

aorta first. PA and aorta. Here the PA

35:17

and aorta are almost the same, 88,

35:19

right? Yeah, the femoral artery is

35:20

actually for aorta actually. Here is the

35:22

femoral artery. So, both are 88. So,

35:24

both if they are both same, it indicates

35:25

an admixed physiology. Okay? Okay. Okay.

35:28

Now, if you see uh beyond RA, all

35:30

pressures are roughly the same

35:31

pressures.

35:32

So, either it is a tricuspid atresia or

35:34

TAPVC.

35:36

Are you clear on that point? Yes. So,

35:38

what what admixed physiology mimics an

35:40

ASD?

35:42

It is TAPVC.

35:43

Okay. Okay, so in this uh catch points,

35:46

uh

35:47

one is you have a step up at the level

35:48

of the SVC, Okay. and beyond the RA, and

35:52

beyond it, all pressures have almost the

35:54

same all chambers have almost the same

35:56

saturation.

35:57

Yes. Right? The first thing you compare

35:59

femoral artery and uh aorta and

36:02

pulmonary artery, both are equal

36:03

saturations. That indicates an admixed

36:05

physiology. Beyond RA, all chambers have

36:08

the same saturation. So, probably it is

36:10

either TAPVC or or tricuspid atresia.

36:13

What mimics an ASD is TAPVC. Okay. Yes.

36:17

So,

36:18

again I have actually uh

36:20

So, where is it draining? So, you have

36:23

so we all diagnose it TAPVC. Yes. So, is

36:26

it a supracardiac TAPVC or infracardiac

36:28

TAPVC? Supracardiac.

36:30

Okay, is it obstructed or not

36:31

obstructed? That is also important.

36:33

Non-obstructive. Why? LA mean is

36:37

There's no pH.

36:40

Obstructive has pH, no?

36:42

Obstructive usually

36:44

one uh obstructive has pH.

36:48

Right?

36:49

Yes, yes.

36:51

See, one again, see a 12-year-old boy if

36:53

it's an infracardiac obstructive PV.

36:55

He's unlikely to live for so long. It

36:56

has to be a supracardiac

36:57

non-obstructive.

36:58

Okay, next question. Why is the patient

37:00

non-cyanotic?

37:05

Dreaming. Good pulmonary flow.

37:08

No, it's not The reason is not that.

37:10

See, you clinically identify the sinus

37:12

cyanotic, no? 85.

37:15

Clinically for you to detect cyanosis,

37:17

your saturation should be less than 85.

37:19

Okay. Probably if you make this patient

37:21

exercise, you might find a cyanosis.

37:23

Right? Okay. Okay. So, you can't say you

37:25

don't say a saturation of 90 and then go

37:27

back saying the patient is cyanotic,

37:28

okay? Okay. Okay. This is a very

37:30

important point. So, clinically if you

37:31

want to detect, it should be 85.

37:33

So, uh okay.

37:35

SVC saturation is increased because

37:37

there is a some There's all the

37:39

pulmonary veins are connected to the

37:40

SVC.

37:42

All chambers distal to RA are same

37:43

saturation. PA pressure is mild

37:45

elevation. TAPVC supracardiac

37:47

non-obstructive type. Clear on that?

37:49

Yes, yes. So, first thing, look at the

37:51

PA, look at the

37:53

aorta. Both are same and mixed

37:54

physiology.

37:55

Okay.

37:57

So, you start off with that.

38:00

So, 36-year-old

38:02

Somebody has raised a

38:03

question in the chat. I think they're

38:05

going to ask Yeah, we can ask now. What

38:07

is the problem?

38:09

I don't know. Somebody posted a

38:10

question.

38:11

What is the significance of

38:13

elevated diastolic pressure? What is

38:15

What was it? Uh one thing is an elevated

38:17

diastolic pressure is indicative of RV

38:19

diastolic dysfunction because of patient

38:21

or the chamber could be failing.

38:23

That is one important thing. So, if you

38:25

find an elevated RV diastolic pressure,

38:27

it indicates that the patient probably

38:28

the chamber is usually might be failing.

38:30

So, that is that's one thing to look

38:31

for. It's not a very hardcore sign. It's

38:33

a soft sign, actually.

38:36

I'm not able to access that uh access

38:38

that chat, actually.

38:41

Okay. So, a 36-year-old old echo pre-

38:45

shows a VSD with severe MR, okay. So, a

38:48

CTVS guy comes and requests a pre-op of

38:50

CAG, okay. You are near planning for a

38:52

surgical closure plus minus mitral valve

38:54

replacement. And the CTVS guy requests a

38:57

I requested a pre-op CAG. So, you

38:58

decide, "Okay, we'll do a cath, also."

39:00

Anyway, we are taking up the patient for

39:02

in the cath lab, we'll do a cath, also,

39:04

then we'll do a CAG. So, who's going to

39:06

read this Is there anyone apart from

39:07

Tremendous Medical is there?

39:12

I don't know most of the people. Hafiz

39:14

under

39:15

Hafiz

39:18

Hafiz is not there.

39:21

Okay.

39:23

So, we'll

39:25

I don't know most of you guys. So,

39:27

let's say who has not read so far.

39:30

Sham Sham Shamjad and

39:32

Uh Sham, read.

39:35

Sham, read.

39:39

Sham

39:39

Okay. Uh yes, yes, reading. I can hear.

39:42

I can hear. I can hear. Yes, crystal

39:44

clear.

39:45

Okay.

39:46

The uh the 36-year-old uh person with

39:48

echo VSD with severe MR

39:51

Uh the SVC saturation uh

39:53

is actually 40 on. Okay. Um

39:56

the aortic saturation is normal, so it

39:58

is a low cardiac output Okay, low

40:00

cardiac output state, okay. So, once you

40:02

So, once you diagnose that, you should

40:03

be very careful in doing the procedure,

40:05

right?

40:06

Yes. Okay.

40:10

The low cardiac output state there

40:12

uh you can see that in the RA pressures

40:14

are actually 87.

40:17

That means there is a significant uh a

40:19

step up at the level of the RA level.

40:21

Okay.

40:23

And RV pressures are 90.

40:25

Okay. All RV saturation is 90. It's

40:28

almost uh there's no significant PA

40:29

pressures are also okay. Okay. Pulmonary

40:32

pressure is not available. LV pressures

40:34

uh

40:35

LA is not available. LV LV saturation is

40:38

around 98. That is normal. Then femoral

40:41

artery

40:42

femoral artery saturation is also

40:43

normal.

40:45

Okay.

40:45

Almost normal.

40:46

So, I'm going coming to the pressure you

40:47

can see that there is a significant

40:49

increase in the RA pressure.

40:51

And the RV pressures were actually

40:55

uh

40:55

RV systolic and diastolic pressures were

40:58

elevated. You have missed one point.

41:00

That's why there's systematic step by

41:02

step. See, there's only V24. Where is

41:04

the A?

41:05

V24.

41:07

Exactly.

41:09

In the AF fibrillation. So, that's you

41:10

must never miss a point. That's why. The

41:12

patient is in atrial fibrillation. Okay.

41:14

Patient is in atrial fibrillation. And

41:16

atrial pressures

41:17

RA pressures were elevated also. Okay.

41:19

Around 14.

41:21

Then RV pressures were 80 by 10. That is

41:24

a

41:24

There is a

41:26

uh Severe PH. Uh severe PH is a systolic

41:29

pressure elevated, but there is no

41:30

significant diastolic gradient. Okay.

41:32

Pulmonary pressures were also elevated

41:34

with 80 by 27.

41:36

And there is no significant uh

41:38

significant systolic gradient between

41:40

both.

41:41

Okay. And pulmonary artery

41:44

uh pressures were actually elevated

41:47

again elevated

41:48

uh with a

41:50

uh mean pressure of a 23.

41:52

Okay. And

41:53

LV pressures were

41:56

LV pressures were 90 by 11 and there is

41:58

a actually a significant diastolic

42:01

gradient.

42:02

Again, see that that gradient you don't

42:04

you don't have the available A now, so

42:05

the mean might not be correct. Okay. So,

42:07

keep that in mind because patient is in

42:09

AF now.

42:10

Okay, next.

42:12

Then femoral femoral artery.

42:20

Then femoral artery is

42:23

femoral artery pressure is 90 by 54

42:26

and there is no significant systolic

42:27

gradient.

42:30

So I think that at the level of

42:33

the level of RA there was actually a

42:35

significant

42:37

significant gradient significant step

42:40

So there was actually a

42:43

left to right shunt

42:45

at the level of RA.

42:48

Okay.

42:50

And

42:54

the level of RA and there there is also

42:57

significant

42:59

and there is a

43:01

systolic pressures were at the lower

43:02

lower side because of the associated

43:04

less of cardiac outflow into the left

43:07

side of the heart so that

43:10

that and there is a

43:14

That means probably there is a

43:16

when

43:17

ventricular septal defect that

43:21

has been draining

43:25

into the RA.

43:28

Ventricular septal defect draining into

43:30

you mean a chamber?

43:32

Okay, possible but chamber is rare.

43:36

No, I'll tell you I'll tell you what

43:37

actually I've missed certain points as

43:40

So you first thing is when you consider

43:41

a step up at the level of the RA you

43:44

must consider whether there's an ASD. Is

43:45

there an ASD in this patient?

43:47

No. No because the mean LA pressures and

43:50

the RA pressures are completely

43:51

different, right?

43:52

Uh That is done. Okay. So your diagnosis

43:55

is VSD. Patient has severe PH, right?

43:59

Uh

43:59

So VSD severe PH. Now what can cause a

44:02

step up

44:03

at the level of the RA

44:05

if a patient has severe PH?

44:07

TR. TR.

44:09

The patient has VSD with TR. The TR

44:12

that's why you must always What are the

44:13

other causes of step up? This is very

44:15

important. So, you have seen one as an

44:16

ASD, two TAPVC or PAPVC, three have seen

44:20

an ARSOV. Two is the fourth case. VSD

44:22

with TR. So, you must be very clear.

44:24

It's a pre-op echo has been done. No one

44:26

is going to miss such a large ASD,

44:27

right?

44:29

No one can miss it, especially when you

44:30

have a severe MR with an ASD with a

44:32

torrential flow across the valve. Uh

44:34

okay. So, you're not going to miss it.

44:36

So, there's obviously no ASD. No one is

44:37

going to miss such a large ASD, right?

44:39

So, so you have a VSD

44:41

with severe TR. The TR is causing the

44:43

step up in the RA. Okay. Okay. Okay, VSD

44:47

and the patient is in atrial

44:49

fibrillation with congestive cardiac

44:51

failure that is causing the low cardiac

44:52

output state.

44:53

Okay. Okay, so my question is if it's

44:56

such a large VSD, why is the pressures

44:58

You know the VSD the systolic pressures

45:00

between both chambers will be equal,

45:01

right? If it's a large ASD VSD.

45:04

The RV systolic and the RV systolic

45:06

pressures both will be equal. Why it's

45:07

not equal? One is 19 and one is 80. So,

45:09

what is the cause for it?

45:14

So, again the VSD might be closed by a

45:16

tricuspid leaflet or by an aneurysm.

45:18

It's about to be closing or something

45:20

like that.

45:21

Okay, so this is actually a difficult

45:22

case.

45:23

Okay.

45:23

Okay. Okay, that's

45:27

Uh that's why you won't get that

45:28

equalization. It's partially being

45:29

closed. Okay. Okay, maybe the tricuspid

45:32

leaflet is coming and impinging

45:33

something like that.

45:34

Okay. So, the patient is having AF.

45:36

There are prominent V waves indicative

45:38

of an MR. You got that clear?

45:40

Uh okay. Huge step up in the RA level.

45:43

The step up the reason is a VSD with TR.

45:44

It's not an ASD because the there is a

45:46

significant mean pressure difference

45:47

between the LA and RA. It's a low

45:49

cardiac output state, right? Mm okay.

45:52

Severe PH. Okay. Okay, RV systolic blood

45:56

pressure is not equal to systolic

45:57

pressure because I told you the reason

45:58

why. Okay. The first question is

46:01

will you do a pre-op CAG for this

46:03

patient?

46:07

You have to do.

46:09

Again, see the

46:10

low SVC saturation

46:12

and collapse. When you inject the dye

46:14

itself, the patient might collapse.

46:16

Okay. Okay, so preferably don't do it at

46:18

this big point. Okay. Okay, you have

46:21

such a low systemic saturation, such a

46:22

low arterial blood pressure. Again, it's

46:24

not advisable to do.

46:25

Or if you do it, you do it with minimal

46:27

amounts of dye just for just to see. But

46:29

be careful in doing it. Okay, if the

46:31

patient has an infection, you treat the

46:32

infection, do something Just it's not

46:35

Again, it's not a run-of-the-mill CAG as

46:36

previously before. So, always keep your

46:38

eyes open in the cath lab. Right?

46:40

Uh especially if you have a point of

46:42

care device where you can see the AB You

46:44

can see the saturation immediately.

46:49

Okay, so I had one more question from

46:51

this actually. So,

46:54

SVC, RA, RV, pulmonary artery.

46:56

Okay, fine. This is a

46:58

Okay, so neonate, day three of life.

47:01

Okay, so who is Anyone apart from

47:03

Trivandrum Medical College willing to

47:04

read this?

47:09

See, a lot of people, but no one is

47:11

willing to read this.

47:12

Uh hello, sir.

47:15

You are?

47:16

Uh sir, Saurabh Kapadia from Mumbai.

47:18

Mumbai? Okay, I have people from Mumbai.

47:20

Which college?

47:21

Uh Jaslok Hospital. Jaslok, you're doing

47:24

DNB there? Yes. Yeah, okay. So, your

47:27

exam is right now OSCE based, right?

47:29

Yes. OSCE and 100 marks, uh virtual case

47:31

presentation. Right? We

47:34

We have to suggest to that kind of exam

47:36

here also.

47:37

Saurabh, that is actually more

47:38

different. You just imagine our

47:39

professors with a virtual case.

47:42

The others, you'll have standard

47:44

questions like dyspnea, grades of

47:45

dyspnea, what are the limitations of

47:47

NYHA. Here, you won't have anything.

47:49

Uh that is there, but still

47:51

imagine our professors with this. Okay,

47:52

forget about it.

47:53

You can read about it. Uh you You

47:55

Saurabh, you it. You read it. The unit

47:56

day three of life, right? Yes, sir.

47:59

Uh

48:01

So, on this uh

48:05

aorta uh saturation is 62. Yeah.

48:09

And uh pulmonary artery saturation is

48:11

98%.

48:12

The diagnosis from that is

48:14

Uh could be a case of TGA.

48:16

Yeah, TGA. First So, once you see a TGA,

48:19

you must see where is the level of

48:20

shunt. So, the reason the patient will

48:21

survive. So, is that shunt at the atrial

48:23

level, ventricular level, or uh

48:25

uh ductus level?

48:27

Okay. And is there PS or not? Okay.

48:29

So, you can read, okay.

48:32

Uh so, there is uh step up at the level

48:35

of RA. Okay.

48:37

Uh then

48:39

step up at the level of pulmonary

48:41

artery.

48:41

see the first thing I'm missing the SVC

48:43

saturation is very low, right?

48:45

Yes, sir. Yeah, you

48:46

then the pulmonary artery saturation is

48:48

high. The pulmonary artery is the aorta

48:49

in this case. Yes, sir. So, there's a

48:51

significant pressure saturation

48:53

difference. It means that there is slow

48:54

flow of blood through the tissues, and

48:56

there's more time for extraction. So,

48:58

the patient is in shock.

48:59

Yes, sir. Okay. So, in this case the

49:02

patient is in shock. So, you must the

49:03

cath study must go on very carefully

49:05

after this. If possible, call a senior

49:06

colleague. Okay. So, all those things

49:08

are there.

49:09

So, the SVC saturation is low

49:11

when compared to the uh pulmonary

49:13

artery. In this case, the aorta. Okay.

49:14

So, next is the step up at the level.

49:16

Okay, fine.

49:16

Can I ask one doubt? Yeah.

49:18

Uh when the aortic saturation is already

49:20

60, it is expected to be 36, now. With

49:23

that alone, can we say he's in shock?

49:25

He's in shock. So, he's in shock. It's a

49:27

TGA, right? Pulmonary artery I'm asking.

49:30

Your SVC is expected to be 3

49:34

Oh, it's a Okay. Okay. I I understand.

49:35

Okay. In this case, the PA is equal to

49:37

the aorta, and aorta is equal to the PA.

49:39

Oh, okay. Okay. Okay, next.

49:43

Uh yes, sir.

49:44

Uh so, are we uh two aortas connected?

49:47

So, 62% 52 8 to 62. Then There's no

49:51

gradient. Is gradient, no gradient.

49:53

No gradient. I mean, you're doing

49:55

saturation. I'm sorry, saturation.

49:56

Yeah, saturation.

49:58

Uh then, left-sided saturations, uh 99%,

50:02

99%, and then pulmonary arteries

50:05

connected, 98%. No step up or step down.

50:08

Uh then, pressures, uh

50:11

RA pressure is around four. RA to RV, uh

50:15

there is significant gradient.

50:18

Uh RA to RV, there's no gradient. You

50:21

look for the diastolic gradient, right?

50:23

Yes, sir. Okay.

50:24

Yeah, diastolic gradient, I don't think

50:25

that much, because again, it's a mean

50:27

pressure.

50:28

Yes, sir.

50:28

So, it's around two only. Okay, sir. I

50:31

know it. Uh

50:32

then, uh

50:34

LA pressure is around eight, and RA

50:36

pressure is around mean pressure is

50:38

around four.

50:39

So,

50:41

not a non-restrictive non-

50:43

non-restrictive ASD is not present here.

50:46

And you mean there's a restrictive ASD

50:47

or non-restrictive ASD?

50:49

The ASD, sir. The ASD is not

50:51

Yeah, what is it, restrictive or

50:52

non-restrictive?

50:53

Might be a restrictive ASD. It's a

50:55

restrictive ASD, right? Okay, fine.

50:57

Yeah.

50:58

And uh

51:00

then,

51:01

uh

51:04

uh

51:05

RV to

51:07

uh

51:08

aorta pressure

51:09

uh is around 77 by 48. So, low output

51:14

situation with mean of 58. Then,

51:18

LA pressure is around eight, and LV

51:20

pressure is around 23 by six. So,

51:23

uh

51:24

LV and RV pressures are also different.

51:27

So, it is basically a restrictive ASD,

51:30

no VSD.

51:32

Okay, so why is the patient in shock?

51:36

Maybe the ASD

51:37

is easy.

51:39

You probably have a restrictive ASD.

51:41

Yes, sir.

51:41

is the patient in shock?

51:46

Maybe

51:46

is day three of Second is day three of

51:48

right? So, what happens on day Uh so,

51:50

the PDA is closing. So, PDA closes,

51:53

right?

51:54

Yes, sir. So, it's a TGA with closure of

51:56

the

51:58

with closure of the

52:00

PDA probably and that is also the reason

52:02

of shock. So, what do you do now?

52:04

Uh sir,

52:06

two options. Either you do balloon

52:07

atrial septostomy or you start PG

52:10

infusion and post the patient for

52:12

intracardiac repair. So, PG infusion,

52:14

you can start the patient PG infusion

52:17

and you can plan for immediate

52:18

septostomy followed by corrective

52:19

surgery, right? Yes, sir. It's a fairly

52:21

usually asked exam question, right? Yes,

52:24

sir. It's usually asked. So,

52:25

first you look at the pressures, aortic

52:27

pressure and the pulmonary pressure and

52:28

the

52:29

Is there a pressure Is both are Aorta is

52:31

much more than the TGA.

52:32

Then you look for where is the shunt

52:34

level, atrial, ventricular, or great

52:35

arterial. And then you look for is there

52:37

a PS or not, right? Yes, sir. And in

52:39

this case, the patient is in shock

52:41

because the PDA is closing.

52:43

Yes, sir. And so, you do a PG infusion

52:45

or immediate septostomy, right? Yes. So,

52:47

this is a fairly Next question is a

52:48

12-year-old boy with an Is it easy one?

52:50

12-year-old boy with an incidentally

52:52

detected continuous murmur.

52:55

Okay, who wants this?

52:57

Uh

52:58

Should I continue, sir?

52:59

Uh if anyone is willing, let them try it

53:01

because there are a lot of people Okay,

53:03

sir.

53:04

Anyone is there? Anyone wants?

53:10

Okay, I don't think anyone is willing.

53:11

So, you can start You can try.

53:13

Okay, sir. Thank you.

53:15

Uh so, here uh

53:17

aortic saturation is uh 86, uh around

53:21

86. So, patient is cyanotic.

53:23

And pulmonary artery saturation is

53:25

around 70. Okay, so the aorta is more

53:27

than pulmonary artery. Yeah. Okay. No,

53:30

but you can read You always read that in

53:32

your mind. So, when you are given a

53:33

table, you keep that in your mind and

53:34

then but you start telling from the SVC,

53:36

right? Because the examiner don't want

53:38

you to jump from aorta to pulmonary

53:40

artery and all those things. So, you

53:41

start from below, but in your mind you

53:42

can treat like that.

53:44

Yes, sir. Okay.

53:47

And so, SVC uh

53:51

to RA no significant step up. SVC

53:53

saturation is good. Patient is stable.

53:55

Oh, yeah. Yes, sir. SVC saturation is

53:57

good. RA saturation no step up. No step

54:00

up at the level of RV also or pulmonary

54:03

artery also.

54:04

Okay.

54:05

And uh

54:06

LA to LV to aorta uh saturation stroke

54:10

uh little

54:11

uh less, but there's no significant step

54:14

up or step down.

54:15

It's desaturated, right? Yes, sir.

54:17

Desaturated. Anything less than 93 is

54:19

desaturation. So, again, pressures?

54:21

Uh pressures uh

54:23

So, pressures at the level of uh right

54:25

atrium is uh A 7 and V is 5, mean of 6,

54:29

and RV is 28 by 7.

54:31

the first thing is patient is in sinus

54:32

rhythm with reasonably This may be

54:34

slightly elevated RA pressures because

54:36

the mean is around 6.

54:37

The patient is in sinus rhythm, right?

54:39

And A is more

54:41

Yes, sir. Okay, next is?

54:43

Uh then, pulmonary artery pressure is 25

54:45

by 12. So, no PH here. So, already okay.

54:49

LA? Uh LA pressure is around A A wave is

54:52

10, V wave is 11, mean of 10.

54:55

you're okay. So, LA pressure more than

54:56

RA pressure. Okay. Then, LV is around

54:59

110 by 9, and aorta is 110 by 70.

55:03

So, what are your comments?

55:05

Uh What is your diagnosis?

55:08

Uh this patient has a incidentally

55:10

detected continuous murmur, and patient

55:12

is uh cyanotic. There's no uh

55:15

significant

55:18

VSD here, and uh no significant step up

55:21

at the level of any chamber. So, could

55:24

be because of uh

55:26

uh extracardiac condition like pulmonary

55:28

AV fistula. Yeah, that's the answer,

55:29

actually. So, yeah. The only abnormality

55:31

you find in this uniform desaturation

55:32

across all left chambers

55:34

So, it's usually a pulmonary

55:36

incidentally found continuous moment

55:37

usually a pulmonary AV fistula.

55:39

Okay, low pulmonary arteries low

55:41

pulmonary venous saturation you think of

55:43

one is could be could be a lung disease.

55:45

You can have severe pneumonia, okay. You

55:47

can have pulmonary edema, alveolar

55:48

hypoventilation or due to a pulmonary AV

55:50

fistula.

55:51

In this case

55:52

the clinical condition is contiguous is

55:55

is is a

55:56

is

55:57

measured with a pulmonary AV fistula.

56:00

Right?

56:02

So, the Yes, sir.

56:06

So, the next one 16-year-old boy who

56:07

came for cataract surgery, right? So,

56:10

who's willing for this? I think I've

56:11

shown you the answer. So, let's see.

56:15

So, who wants to read this?

56:18

Nobody is there we lost random video

56:20

college guys to read it.

56:25

Okay, so I

56:26

Elias is there?

56:28

Elias?

56:30

Elias is my junior actually. So, that's

56:32

why I I don't I know I I know few people

56:34

on the list.

56:35

Elias there?

56:37

No, sir.

56:38

He's not there.

56:39

But he's silent.

56:42

So,

56:44

who else is there who I don't I don't

56:45

know many people do I know.

56:49

So, I think we can

56:52

Okay, from anyone from

56:54

Anyone No one is willing to read it.

56:56

Sir, I will read. You will read Who is

56:58

this?

56:59

Hello.

57:01

Yeah?

57:02

Hello.

57:03

Yeah, what's your name?

57:05

Sir, Surya, sir.

57:06

You're from?

57:08

Uh sir, Madras Medical College. Okay,

57:09

from MMC, right? That's the college

57:11

where I did my MD. Elias only sent me

57:12

the link.

57:14

Yeah, yeah, Elias. Okay, fine. You can

57:15

start reading. Okay.

57:17

Um sir, SVC saturation and IVC

57:19

saturation are fairly okay. The patient

57:21

is not in uh

57:23

at present desaturation. Okay, so

57:25

reasonably stable patient, okay. Stable

57:26

patient. Um

57:29

RA sat There there step up gradient at

57:32

the level of uh RA atrial level or

57:34

ventricular level. Okay.

57:36

Um

57:38

the

57:40

There is a significant difference

57:41

between more than seven. I mean the

57:43

level of great arteries there is a

57:44

shunt.

57:46

Because there is a difference of more

57:48

than seven. The left to right shunt. Uh

57:50

left to right there is a level of left

57:52

to right shunt. Okay.

57:55

Um then pulmonary artery I mean left

57:59

side saturation are normal.

58:01

Okay.

58:02

Um

58:04

Then coming to the

58:06

So coming to the pressure tracings I

58:08

mean pressure values

58:10

um

58:11

RA pressure is slightly high mean of

58:13

eight. I mean patient is in sinus

58:14

rhythm. Okay. Mean is within the mean as

58:17

expected. Uh

58:18

Uh mean is

58:20

slightly high. Okay. With uh say uh

58:25

evidence of

58:26

uh

58:26

um pulmonary hypertension is there.

58:29

Mean BP is slightly systolic diastolic

58:31

Systolic systolic is also slightly

58:34

say there is a Is there a diastolic

58:36

gradient across the tricuspid valve?

58:38

Yes, sir. Uh diastolic gradient now?

58:41

Yeah, there is a gradient.

58:42

Uh

58:43

systemic hypertension

58:45

There is no diastolic gradient.

58:46

Yeah, and is there a systolic gradient

58:47

across the pulmonary valve?

58:49

Systolic gradient No, sir. Okay, no. So,

58:51

you must say that also. Uh okay. So,

58:54

Okay, what you mean is more important

58:55

than a diagnosis. So, okay, next.

58:57

Okay. So, there is some some degree of

58:59

PA is that what you're saying? Pulmonary

59:01

Yeah, pulmonary artery hypertension is

59:02

there. So, moderate at least. Okay.

59:05

There is a difference between

59:07

uh of pressure between uh

59:10

right and left uh

59:13

pulmonary artery thing. Okay, so you

59:15

compare the main pulmonary artery to the

59:16

LPA. Is there a gradient?

59:18

Main pulmonary artery to Left and right

59:20

pulmonary arteries. Is there a gradient?

59:22

Yes, sir. So, that is a significant

59:24

gradient now? Yes, the difference

59:26

difference is there. I mean difference

59:28

is there between main pulmonary artery

59:29

and arterial I mean I mean both. So in

59:32

in in pulmonary artery a gradient of

59:34

more than 20 is significant.

59:37

Okay.

59:38

more than 20 anyway, definitely there.

59:40

So what do you what do you infer from

59:41

the gradient there? So what do you what

59:42

do you Pulmonary stenosis I mean branch

59:44

I mean A branch pulmonary stenosis.

59:47

Peripheral PS is there. Okay, the

59:48

peripheral PS is causing the increased

59:50

RV pressures. RV pressures. Okay, right.

59:53

The RV diastolic Okay, fine. Next.

59:55

Sir, then there is a

59:58

RV uh

1:00:01

Left side is uh okay, sir. I mean A A is

1:00:04

A, B is more than uh A

1:00:06

A is more than A. pressures are normal.

1:00:08

Normal. B both A normal. Aortic pressure

1:00:10

is also

1:00:12

I mean uh slightly low I mean okay, sir.

1:00:15

Uh there is a wide pulse pressure is

1:00:16

there. Okay, wide pulse pressure. Right.

1:00:18

So is there a systolic gradient from LV

1:00:20

to aorta? No, sir. No no systolic

1:00:22

gradient.

1:00:23

gradient across the mitral valve?

1:00:25

Uh

1:00:26

LV and the Mitral valve. So LV

1:00:29

I mean

1:00:31

No. So you have diagnosed a peripheral

1:00:32

PS. Peripheral PS.

1:00:36

Uh

1:00:37

but I mean PDA.

1:00:39

Uh so PDA. PS with PDA. Why is there a

1:00:42

PDA?

1:00:43

Sir, there is a step up at the level of

1:00:45

uh great arteries great arteries. With

1:00:47

wide pulse pressure, right? With wide

1:00:48

pulse pressure. So the diagnosis of

1:00:50

peripheral PS with PDA. Now what what is

1:00:52

the condition of the patient?

1:00:55

Muballa. Yes, comes from Muballa. From

1:00:57

Muballa. Muballa Muballa.

1:00:59

Muballa. Yes, sir.

1:01:05

Surya sir was my senior medicine. Uh

1:01:07

really? Where is he doing now? Where is

1:01:09

he now?

1:01:10

MMC.

1:01:11

Cardiology. I mean you are a So we are

1:01:13

senior.

1:01:14

Yeah, yeah. Did you rag him?

1:01:22

Thank you, sir.

1:01:23

Okay, thank you. So, it's peripheral PS

1:01:25

with PDA and I don't know if congenital

1:01:27

rubella syndrome, okay. So, the step up

1:01:29

in the level of MPA is peripheral PS,

1:01:31

high PA pressures, and high aortic pulse

1:01:32

pressure. Diagnosis peripheral PS with

1:01:34

PDA, congenital rubella syndrome. So,

1:01:37

cause of peripheral PS here congenital

1:01:38

rubella syndrome, Noonan, Alagille,

1:01:41

Williams, cutis laxa, and tough.

1:01:43

Again, tough will have supravalvular

1:01:45

stenosis, valvular stenosis, and then

1:01:46

subvalvular stenosis. One of the

1:01:48

favorite exam questions is where are

1:01:49

what are the levels of obstruction in

1:01:51

tough?

1:01:52

Right? What are the

1:01:54

They will probably can ask you also what

1:01:55

is the name of the what is the name of

1:01:56

the classification of peripheral PS?

1:01:58

GAE's classification.

1:02:00

And if you are they are more bothered,

1:02:02

they'll ask you what is type one, type

1:02:03

two, type three.

1:02:04

Okay.

1:02:06

So, again, 4-year-old cyanotic infant,

1:02:08

okay. So, who is going to read this?

1:02:15

4-year-old cyanotic infant.

1:02:17

Sir, this

1:02:18

Sir, I'm Mom C, sir, from Hyderabad.

1:02:21

Which college?

1:02:23

Hello.

1:02:24

college are you from?

1:02:25

Star Hospital, sir, DNB. Yeah, fine. You

1:02:28

can read it. Excellent.

1:02:29

Yeah.

1:02:29

4-day-old infant cyanotic

1:02:31

4-day-old cyanotic infant,

1:02:34

and the saturation data is showing high

1:02:36

SVC, that is 72%,

1:02:39

and low SVC, 80%, Okay. and IVC, 68%.

1:02:43

So, are they okay? Uh SVC saturations

1:02:46

are higher, Okay. higher than normal.

1:02:49

Maybe some anomalous connection is

1:02:51

there.

1:02:52

And right atrial saturation is 88, and

1:02:54

right ventricular is 89, and MPA is 90.

1:02:57

All are around similar. Okay.

1:02:59

And left atrial saturation and LV

1:03:01

saturations are also similar. Okay. So,

1:03:05

maybe some anomalous connection is

1:03:07

there. And coming to the pressure data,

1:03:10

um

1:03:11

right atrial pressure is A wave is 11, V

1:03:13

wave is 11, and mean is 11. Okay. A is

1:03:17

in sinus rhythm. Yeah. A is equal to V.

1:03:19

Sinus rhythm with

1:03:21

A is equal to V. Maybe ASD is there.

1:03:24

Okay. Right atrial septal defect is

1:03:26

there.

1:03:27

And right ventricular pressure is 60 and

1:03:30

end diastolic is eight.

1:03:32

Okay. There is a 3 mm gradient across

1:03:35

the

1:03:36

right ventricular wall. Maybe high flow

1:03:38

situation.

1:03:40

Okay.

1:03:42

The pulmonary artery pressures are 60

1:03:45

systolic and 33 diastolic. No systolic

1:03:47

gradient.

1:03:49

There is no systolic gradient and higher

1:03:51

mean pressures are there.

1:03:54

42 and left atrial pressure is A is 10

1:03:57

and V is 11 and mean is 10. Okay. Now,

1:03:59

if you compare, is there a gradient

1:04:01

between Diastolic

1:04:03

Uh mean mean right atrial pressure is 11

1:04:06

and the left atrial pressure is 10, sir.

1:04:08

If it's an ASD, it's a non-restrictive

1:04:09

ASD.

1:04:11

Right? Only 1 mm gradient is there. Yes,

1:04:13

sir. Less than 2 mm.

1:04:16

So, if there is an ASD, it's a

1:04:17

non-restrictive ASD.

1:04:19

Yes, sir. Non-restrictive ASD.

1:04:21

Okay. Non-restrictive ASD and LV is LV

1:04:23

systolic is 100 and

1:04:25

diastolic is end diastolic seven.

1:04:28

And diastolic gradient is three, sir,

1:04:31

between LA and LV.

1:04:33

And aorta is

1:04:34

100 systolic and 70 diastolic. There is

1:04:37

no systolic gradient across LV to aorta.

1:04:39

So, diagnosis is? Mhm.

1:04:42

Diagnosis, it is a total anomalous

1:04:44

pulmonary venous connection.

1:04:46

Okay.

1:04:48

Maybe

1:04:49

into the supracardiac supracardiac Yeah,

1:04:52

supracardiac. Okay, but again

1:04:54

Supracardiac total anomalous pulmonary

1:04:56

venous connection. Supracardiac, but

1:04:58

could be obstructive also, no?

1:05:00

Because there's pulmonary artery

1:05:02

You're not very sure of that.

1:05:04

Uh left atrial pressures are not much

1:05:06

elevated.

1:05:08

Okay. We don't know whether pulmonary

1:05:10

capillary wedge pressure

1:05:12

Supra cardiac TAPVC which is

1:05:15

with an ASD, large unrestricted ASD,

1:05:16

right?

1:05:17

Yes, sir.

1:05:18

Okay, so again, one easy method is look

1:05:20

at the PA pressures, look at the MPA

1:05:22

saturation, look at the aortic

1:05:23

saturation. Both are almost same. Okay,

1:05:26

so that indicates an admixed physiology.

1:05:28

All chambers have the same saturation

1:05:30

beyond the RA.

1:05:32

So, it's a TAPVC or tricuspid atresia.

1:05:35

And then you try to find out which one

1:05:37

it is.

1:05:38

All right? And how this capillary wedge

1:05:40

pressure is not there, no, sir? How to

1:05:42

find out whether it is obstructed or

1:05:43

congested?

1:05:46

And again, okay, if you could That's

1:05:47

it's difficult. Now, how do you enter

1:05:48

the pulmonary veins in TAPVC? It's

1:05:50

difficult, now.

1:05:52

Because all you have to put a catheter

1:05:53

into the Through the anomalous pulmonary

1:05:55

vein, through the anomalous

1:05:57

anomalous pulmonary vein. You might not

1:05:59

be able to get it, actually.

1:06:01

So, that is one point. So, again,

1:06:04

so that is one thing, so it's a

1:06:08

So, LSVC step up, RA step up, or beyond

1:06:12

RA, all chambers have almost the same

1:06:13

saturation. LA mean is equal to RA mean,

1:06:16

unrestricted ASD, TAPVC with an

1:06:18

unrestricted ASD.

1:06:19

Right? So, next one. 4-year-old with

1:06:21

poor feeding.

1:06:23

Should I continue, sir? Uh let's see if

1:06:25

somebody else is willing to take up.

1:06:30

No one else is there.

1:06:32

Yes, sir.

1:06:33

Uh 2-year-old with poor feeding, and SVC

1:06:36

saturation is 58, and IVC is 59.

1:06:39

And

1:06:40

right atrium mean saturation What is the

1:06:41

comment on that?

1:06:42

Mhm. SVC IVC saturation?

1:06:46

There is low cardiac output is there,

1:06:48

sir. Yeah, it's slightly lower than

1:06:49

normal. 68 is normal.

1:06:51

No. Okay.

1:06:54

Mhm. Right ventricular is RA is 59.

1:06:57

And right ventricle is 52, and

1:07:01

there is a step up at the level of PA,

1:07:03

sir. Okay.

1:07:05

PA saturation is 78, and left atrial

1:07:07

saturation is 89. Left ventricular is

1:07:10

also 89.

1:07:12

And I don't know whether pulmonary

1:07:14

capillary wedge pressure is not taken or

1:07:16

sample is not taken.

1:07:18

I don't know where the structure

1:07:20

Usually if there is an LA pressure you

1:07:20

can take this reading now. Usually if

1:07:22

you don't get the pulmonary capillary

1:07:24

wedge pressure you take the LA as that.

1:07:27

Okay, sir.

1:07:28

And LV is 89 and aorta is

1:07:32

90. So there is some degree of systemic

1:07:34

desaturation.

1:07:36

There is a step up at the level of PA.

1:07:39

And the LV pressures? And left-sided

1:07:42

saturations are decreasing. Coming to

1:07:44

the pressures, right atrium is

1:07:47

four, mean is four, right ventricle is

1:07:49

67.

1:07:50

And PA pressures are elevated, mean is

1:07:52

40.

1:07:54

Left atrial mean is 13.

1:07:57

And left ventricular pressure is

1:08:00

124 by 12.

1:08:02

And

1:08:03

aortic pressures are 120 by 40. There is

1:08:06

no significant systolic gradient.

1:08:09

Yeah.

1:08:10

There's a wide pulse pressure

1:08:11

difference.

1:08:14

Can see the coming

1:08:15

In aorta there is wide pulse pressure is

1:08:18

there. Yes, so you're impressing

1:08:19

some

1:08:21

PDA with

1:08:24

Okay. Yeah.

1:08:25

When you see PDA there's a PDA accepted

1:08:28

but I can see the there is systemic

1:08:29

desaturation as well as the and the

1:08:32

mixed venous oxygen concentration is

1:08:34

low.

1:08:35

Okay. Patient has poor feeding so what

1:08:37

does this indicate?

1:08:41

Heart failure.

1:08:42

I mean heart

1:08:43

Pulmonary edema.

1:08:45

Uh

1:08:45

okay, but

1:08:46

more common is probably he's having a

1:08:48

pneumonia or something like that, right?

1:08:49

Left atrial pressures are elevated.

1:08:52

Uh left atrial pressures are not that

1:08:54

high because like it's already there.

1:08:55

Respiratory infection. That's a PDA with

1:08:57

pneumonia as a diagnosis, right?

1:08:59

So you have systemic desaturation. When

1:09:00

you see an

1:09:01

concentrations are low, it's either a

1:09:03

pulmonary A malformation or something

1:09:05

wrong with the lungs.

1:09:07

Okay, in this case

1:09:08

PDA may be associated anomalous SVC.

1:09:12

And also

1:09:14

associated anomalous SVC.

1:09:16

I'm not very sure on that, but it's more

1:09:17

common to have a PDA with pneumonia

1:09:19

presenting in this kind of picture.

1:09:21

Right?

1:09:21

Okay, sir.

1:09:22

PDA more common diagnosis. So, you have

1:09:24

a low MVO2, you have a shunt in the PA

1:09:26

level, high pulse pressure.

1:09:28

So, it's a PDA with pneumonia and PDA

1:09:29

presents with recurrent respiratory

1:09:30

infections.

1:09:32

So, one question they ask is how do you

1:09:33

distinguish between a PDA I said it's an

1:09:35

AP window. How do you distinguish

1:09:37

between a PA and an

1:09:38

between a PDA and AP window on cath

1:09:40

study?

1:09:44

AP window, there will be early

1:09:46

development of PAH will be there, sir.

1:09:48

On cath study, you are doing the cath.

1:09:50

Cath study. Catheter is in your hand.

1:09:56

See, when you in a PDA, what happens is

1:09:58

an AP window, the catheter always goes

1:10:00

into the ascending aorta.

1:10:02

Right? In a PDA, the catheter always

1:10:04

goes into the descending aorta. So, you

1:10:05

distinguish.

1:10:07

Okay? So, RA to RV to PA to PDA through

1:10:10

into the descending aorta is a PDA.

1:10:12

The connection is at the level of

1:10:13

descending aorta.

1:10:15

The connection is at the level of

1:10:17

descending aorta in PDA and

1:10:19

AP window is in the level of Yeah, I'm

1:10:21

talking about another Usually the

1:10:23

AP window is usually

1:10:28

Again, there's a flow direction

1:10:29

different. Medial is plus lateral. I

1:10:30

forgot which one is which.

1:10:32

In a PDA, I think I'm not very sure.

1:10:34

PDA will be lateral jet. Okay, then

1:10:36

maybe maybe

1:10:37

AP window.

1:10:38

Medial.

1:10:39

Okay, this is one you should listen when

1:10:40

they ask.

1:10:41

And the kappa can also be medial. Okay.

1:10:45

So, cause of PV desaturation and lung

1:10:46

pathology and pulmonary hypertension.

1:10:49

So, do a cath study for a sick neonate.

1:10:51

Even if you see the SVC saturation, it

1:10:53

will indicate a sick neonate.

1:10:55

So, anyone?

1:11:02

Okay.

1:11:04

I will try that. Yeah, yeah.

1:11:06

Uh

1:11:07

the SVC saturation is

1:11:09

50 and IVC saturation is also low. The

1:11:11

patient with a normal

1:11:15

aortic saturation is 68.

1:11:17

Okay. Yeah, and pulmonary artery

1:11:19

saturation is 90, so this is a

1:11:21

transposition physiology. Okay.

1:11:24

Okay. Then SVC to RA, there is

1:11:28

no step up. RA saturation is 54 and

1:11:31

right atrium to

1:11:33

right ventricle, there is a

1:11:35

step up of 16.

1:11:39

Okay.

1:11:40

Then

1:11:42

So,

1:11:43

pulmonary artery saturation is 90.

1:11:45

Again, a step up from RV to pulmonary

1:11:47

artery level.

1:11:49

Pulmonary venous and left atrial

1:11:51

saturation You cannot say step up from

1:11:53

the RV to PA, right? Because PA is now

1:11:55

the aorta, it's a TGA.

1:11:56

No, no, aorta.

1:11:57

So, you will lead from the RV into the

1:11:59

aorta.

1:12:01

Uh

1:12:01

Okay.

1:12:03

So, RV and aortic saturation is similar.

1:12:09

Uh pulmonary artery

1:12:11

pulmonary venous saturation is 98, LA

1:12:13

saturation is 98 and pulmonary artery

1:12:15

saturation

1:12:17

uh is

1:12:18

uh LV saturation is

1:12:20

uh 90. So, there is a step desaturation

1:12:24

from LA to LV.

1:12:26

Okay.

1:12:27

And LV saturation and pulmonary artery

1:12:30

saturation are fairly

1:12:33

similar.

1:12:34

Coming to the pressure tracing

1:12:37

uh

1:12:38

RA, the mean pressure is slightly

1:12:41

elevated.

1:12:42

RV pressure is

1:12:43

Patient is in sinus rhythm. Patient is

1:12:45

in sinus rhythm. RV mean pressure is

1:12:47

elevated.

1:12:48

Uh

1:12:49

the RA RA mean pressure is elevated. RV

1:12:52

pressure systemic

1:12:54

pressure is elevated with a normal

1:12:56

diastolic pressure. No gradient between

1:12:58

diastolic gradient between RA and RV.

1:13:00

Then pulmonary artery

1:13:03

pressure is

1:13:04

uh

1:13:05

100 bar 60 with a

1:13:07

mean

1:13:08

pressure of 75.

1:13:10

And aortic

1:13:12

aortic pressure is

1:13:14

30 bar 15 with a mean of 18. So, uh

1:13:17

there is a significant gradient between

1:13:19

RV to aorta uh

1:13:22

Okay.

1:13:24

So, what is the diagnosis?

1:13:27

So, this is a uh

1:13:29

So, when I receive TGA,

1:13:31

tell me where is the shunt? Atrial

1:13:32

shunt, ventricular shunt, or It's a uh

1:13:35

uh

1:13:36

ventricular shunt. Ventricular shunt.

1:13:38

So, is it restrictive or non-restrictive

1:13:39

VSD?

1:13:40

VSD is un- unrestrictive Okay, okay.

1:13:43

Unrestrictive RV systolic pressure on

1:13:44

the RV and this is also nearly also

1:13:46

similar. Nearly similar. So,

1:13:47

unrestrictive. Then the patient will

1:13:48

survive, right?

1:13:49

If you leave him alone. Yes. TGA

1:13:51

unrestrictive VSD. Is there a PS or not?

1:13:53

Is there a PS or not?

1:13:55

What, sir? Is there a PS or not?

1:13:58

Uh

1:13:59

there is a RVOT obstruction is there.

1:14:01

Okay, fine. So, it's a TGA VSD PS.

1:14:04

Okay.

1:14:05

RA mean is more than LA mean. Why is

1:14:07

that?

1:14:08

Normally it's the opposite direction,

1:14:10

right? Why is the RA mean more than LA

1:14:11

mean?

1:14:13

Because of the PS.

1:14:16

Okay.

1:14:18

Pulmonary stenosis.

1:14:19

So, TGA VSD severe PS TCC

1:14:22

aortic stenosis, sir,

1:14:25

pulmonary stenosis. Okay, that is

1:14:26

usually a controversy, right? Is the

1:14:27

pulmonary valve part of the RV or is the

1:14:29

pulmonary part of the pulmonary artery?

1:14:30

So, okay. So, whatever the chamber which

1:14:32

is communicating

1:14:33

say RVOT obstruction, master. Okay,

1:14:35

fine. You can say that.

1:14:37

Hello.

1:14:39

The mic connection got lost. Can we tell

1:14:42

PS it is RVOT obstruction only, no?

1:14:44

Okay, you can say that there is an RVOT

1:14:45

obstruction. That'd be better,

1:14:47

Okay, so that is clear, right?

1:14:49

So again, it's a low cardiac output

1:14:51

state also, right?

1:14:53

So RA mean is more than LA mean, like a

1:14:55

split ratio, pulmonary stenosis, or

1:14:56

TAPVC. Okay?

1:14:58

Usually it's the other way around.

1:15:01

So again, it's a sick patient, so

1:15:04

we have TGA, VSD, okay, RVOT

1:15:06

obstruction, it's in CCF.

1:15:09

Okay, again same question, cath study

1:15:11

for a sick neonate, it's same thing I'm

1:15:12

thinking. This is not This is Okay, cath

1:15:14

study for a sick neonate.

1:15:17

So we need

1:15:18

Uh data.

1:15:21

Uh okay, I'll start with the saturation.

1:15:24

SVC saturation is 68, it is fairly okay.

1:15:27

Uh

1:15:28

and there is no

1:15:30

um

1:15:31

SVC to RA step significant step up or

1:15:34

step down.

1:15:35

RA to RV,

1:15:37

uh it is normal only.

1:15:39

RV to PA, also it is normal.

1:15:44

Left side saturation, pulmonary vein

1:15:45

saturation is 100.

1:15:48

Pulmonary vein to LA, there is a

1:15:51

that is

1:15:53

more

1:15:54

significant, not two.

1:15:56

One or two, okay, fine. Yeah.

1:15:58

There is a step down

1:15:59

at the pulmonary vein to LA.

1:16:03

And

1:16:07

uh

1:16:08

LA to LV, there is a significant step

1:16:11

down. Okay.

1:16:16

Okay, I'm going to my program.

1:16:21

And uh

1:16:23

uh

1:16:24

regarding the pressures,

1:16:26

uh

1:16:27

right side mean pressure is normal.

1:16:30

Slightly elevated, but

1:16:32

sa- sinus rhythm like

1:16:35

A is more than Yeah, A is more than V.

1:16:38

Slightly elevated mean pressure.

1:16:40

RV pressure, RV systolic pressure is

1:16:42

severely elevated. Okay. Uh uh

1:16:49

Okay.

1:16:56

50

1:17:03

20 is significant. Okay. Yes. Sorry.

1:17:05

What does it indicate?

1:17:07

Uh it is significant, no? What does that

1:17:08

indicate?

1:17:10

There is obstruction at two levels.

1:17:13

So? Uh Two levels?

1:17:15

Two levels,

1:17:16

branch and

1:17:17

branch and at the level of the valve.

1:17:19

Okay, so valvular PS and supravalvular

1:17:21

PS. Okay, then. Yes.

1:17:28

Okay.

1:17:33

Okay.

1:17:43

Coarctation of aorta. So, you have

1:17:44

diagnosed branch PS plus valvular PS

1:17:47

plus coarctation of aorta. What else is

1:17:49

there?

1:17:51

There is a step down at Uh hello, there

1:17:53

is a significant step up at

1:17:56

uh

1:17:57

Step up at

1:17:59

step up at

1:18:05

Okay, there's a step down at the level

1:18:06

of ventricle, right? LV Uh yes, yes.

1:18:09

What is the cause of that? That's

1:18:13

See, you look at the main pulmonary RV

1:18:15

systolic pressure as LV systolic

1:18:17

pressure, they're both

1:18:19

same. Uh yeah.

1:18:21

RV systolic and I didn't get you. See,

1:18:23

RV systolic pressure is equal to LV

1:18:25

systolic pressure, right?

1:18:27

Yes. So, there should be an unrestricted

1:18:29

VSD. Uh yes, yes. Okay. Okay.

1:18:32

So, your diagnosis is

1:18:34

there is

1:18:35

supra There is branch PS with

1:18:38

valvular PS.

1:18:39

and

1:18:41

PSV and

1:18:42

the fire fighter right?

1:18:45

Okay.

1:18:46

So again note this RV systolic pressure

1:18:48

is equal to LV systolic pressure equal

1:18:50

to the aortic systolic pressure okay.

1:18:51

This is a hallmark of TOF.

1:18:53

Okay. Make it clear on that. Yes. Yes.

1:18:56

Okay, but is this a TOF?

1:18:58

So again elevated RV pressure indicates

1:19:00

that that is causes to the valvular as

1:19:03

well as the peripheral PS. That is

1:19:04

clear?

1:19:05

Yes. Yes. Okay, step down at the level

1:19:06

of LA to LV with this VSD with right to

1:19:08

left shunt.

1:19:10

Okay, RV SBP is equal to LV SBP is equal

1:19:12

to aortic SBP and we have a coarctation.

1:19:15

So you have severe valvular with branch

1:19:17

pulmonary stenosis with unrestrictive

1:19:19

VSD with right to left shunt, right?

1:19:21

With coarctation. Yes. I hope you have

1:19:24

any questions. Is this a TOF? Because I

1:19:26

told you the hallmark of TOF is that the

1:19:28

systolic blood pressures in the RV, LV

1:19:30

and aorta will be the same. It is same

1:19:32

in this. So is this a TOF?

1:19:33

Yes.

1:19:35

Will anyone say no?

1:19:37

No. TOF is rarely associated with

1:19:39

coarctation. TOF with coarctation will

1:19:41

not occur. That is the point. TOF is

1:19:43

rarely associated with coarctation of

1:19:44

aorta. Okay? Because from the beginning

1:19:47

itself there will be very good blood

1:19:48

flow across the aorta from birth itself.

1:19:50

So rarely in from development itself. So

1:19:52

that's one of the favorite exam

1:19:53

questions. They'll ask you is TOF

1:19:55

associated with coarctation of aorta.

1:19:56

TOF is not associated with coarctation

1:19:58

of aorta. Okay? When you have good blood

1:20:00

flow across an artery that artery is

1:20:01

heavily stenosed. Okay?

1:20:03

So that is the answer. So could this be

1:20:05

TOF? It is not TOF. Okay? Any doubts on

1:20:07

this

1:20:08

this particular case?

1:20:14

Okay. So no doubts. Okay. Fine. Sir,

1:20:16

then what is the diagnosis of previous

1:20:18

case?

1:20:19

There is a severe There is a

1:20:21

supravalvular as well as valvular PS. We

1:20:23

have VSD and a coarctation of aorta.

1:20:25

They are multiple defects.

1:20:27

Any congenital anomaly? I'm not sure

1:20:29

what congenital anomaly which causes all

1:20:31

this.

1:20:32

Okay.

1:20:33

Uh but like I'm not sure if there's any

1:20:35

new syndrome regarding this. I'm not

1:20:37

sure. TOF physiology only, no, sir? This

1:20:39

final No, but it's not TOF like it's TOF

1:20:42

physiology. May not be classical TOF.

1:20:43

It's not classical TOF. Yeah.

1:20:47

Again, in this case, you start thinking

1:20:48

if you have a TOF with an associated

1:20:51

coarctation, you think of a DORV, okay?

1:20:53

Sir, how to differentiate between uh

1:20:55

valvular and branch PS, sir?

1:20:58

You do a pullback, now. You get the

1:21:00

different pressure gradients, now. You

1:21:01

take it deep into the pulmonary right

1:21:03

pulmonary artery and you pull back.

1:21:05

You'll get a pressure gradient between

1:21:07

two points, and then you pull back

1:21:08

again, you get another pressure

1:21:09

gradient.

1:21:11

Right? Okay, sir.

1:21:13

So, basically, all these are pullback

1:21:14

studies. If you There's a pressure

1:21:16

tracing starts with that. So, when you

1:21:17

do a pullback, you can see multiple dips

1:21:19

in that if I do a pullback study.

1:21:23

So, when you get a TOF with a

1:21:24

coarctation, you start thinking is it a

1:21:25

DORV, right?

1:21:28

Yes, yes. 30-year-old female is an easy

1:21:30

one. 30-year-old female long-term

1:21:31

asthmatic.

1:21:32

Then we will give to Dhanush.

1:21:35

Dhanush?

1:21:37

Dhanush?

1:21:40

Dhanush is not You want to take a easy

1:21:41

one. Easy

1:21:44

Okay, anyone else who's not from

1:21:45

Trivandrum?

1:21:57

Okay, somebody type any Hello, hello.

1:21:59

Yeah.

1:22:00

Hello. Yeah. That is a

1:22:09

30-year-old female long-term asthmatic

1:22:11

with only pressures.

1:22:13

Okay.

1:22:14

RA pressure So, patient sinus rhythm.

1:22:17

So, RA pressure

1:22:19

A is 11. A A is 11, V is 6, M 9. So, all

1:22:24

RA pressures are elevated. A is more

1:22:26

than B.

1:22:27

A is more than B. A is more than B. A is

1:22:29

more than B.

1:22:30

Then

1:22:32

there is a

1:22:34

there is a diastolic gradient between RA

1:22:37

and RV.

1:22:39

Okay.

1:22:40

of nine

1:22:41

and the RV systolic pressure is

1:22:44

Uh sorry, five five five. And the RV

1:22:48

It is elevated. And RV systolic pressure

1:22:50

is also elevated, 60.

1:22:53

With pulmonary artery is showing a

1:22:55

systolic pressure of 22 and diastolic

1:22:58

pressure of 10 and mean pulmonary artery

1:23:00

pressure is 14, not elevated. So, but

1:23:02

there is a systolic gradient between RV

1:23:04

and pulmonary artery.

1:23:06

So, there is a pulmonary stenosis.

1:23:11

RVOT obstruction is there.

1:23:13

So, then after that coming to the LA

1:23:16

Shall I start? LA pressures are not

1:23:18

elevated.

1:23:19

And LV pressure

1:23:22

Listen carefully. Yes. You might not

1:23:24

have

1:23:24

A is A is more than B. Yeah. A is more

1:23:26

than B, correct. Then LV pressure 110

1:23:30

bar zero and aorta is 110 bar 80, that

1:23:32

is also normal. Okay. So,

1:23:34

coming here there is an there is an RA

1:23:37

RA pressure is elevated with A more than

1:23:39

V with RVOT obstruction. So,

1:23:44

maybe pulmonary stenosis. Pulmonary

1:23:45

stenosis. What about the gradient across

1:23:47

the tricuspid valve?

1:23:50

Gradient across the tricuspid valve,

1:23:52

maybe TS is also there. So, what is the

1:23:55

diagnosis? Yes, with TS.

1:23:57

Carcinoid syndrome. Carcinoid

1:23:59

Carcinoid syndrome.

1:24:03

So, the diastolic gradient across the

1:24:05

tricuspid valve and the systolic

1:24:06

gradient across the pulmonary valve is

1:24:07

combined RV inflow and outflow

1:24:09

obstruction.

1:24:10

So, diagnosis carcinoid. So, first

1:24:12

question, is there a PR in this case?

1:24:16

PR Is there a PR?

1:24:22

Dhanush

1:24:24

Uh PR the

1:24:26

there's no

1:24:29

No PR. Why?

1:24:32

PR and then there will be a large

1:24:34

volume.

1:24:36

What will be The artery will be

1:24:38

Ah, PA

1:24:42

AR AR will have a large aortic pressure

1:24:44

and the lower diastolic pressure.

1:24:46

Similarly, PA also will have a large

1:24:48

systolic pressure and the lower

1:24:49

diastolic

1:24:51

of PA.

1:24:52

Okay. Ah.

1:24:54

Okay.

1:24:54

So, what other condition we have TS and

1:24:57

PS?

1:25:04

Epstein's anomaly is associated with

1:25:05

this. Okay.

1:25:07

You can have it sometimes the large

1:25:08

tricuspid defect going and occluding it.

1:25:19

37-year-old female who's having dyspnea

1:25:22

on exertion, functional class three. I

1:25:24

think we'll give it to some other

1:25:25

people. Saurabh is there?

1:25:27

Yes, sir. So, you can read this.

1:25:30

37-year-old female with dyspnea of

1:25:33

exertion, functional class three. Uh, RA

1:25:36

pressures with A of nine, V of eight,

1:25:39

mean of seven.

1:25:40

Uh,

1:25:42

then RV pressure

1:25:43

uh 72.

1:25:44

a few patients in sinus rhythm with A

1:25:46

more than V. Yes, sir.

1:25:49

And RV pressures are elevated

1:25:52

with N sir ED's end diastolic pressure.

1:25:55

Yeah, end diastolic

1:25:57

End diastolic pressure of 10. And

1:26:00

pulmonary artery pressures are 68

1:26:02

What about the RV pressures?

1:26:04

Uh, it's elevated and there is a

1:26:08

End diastolic pressure?

1:26:09

End diastolic pressure is also elevated.

1:26:12

Yeah, okay.

1:26:14

So, pulmonary artery pressures are 68 by

1:26:17

27 with mean of 34. So,

1:26:22

indicating pulmonary arterial

1:26:23

hypertension.

1:26:25

And is there a systolic gradient across

1:26:26

the pulmonary valve?

1:26:29

Uh,

1:26:30

you turn pressure on.

1:26:32

No, sir. Not uh Okay, so no systolic

1:26:34

then.

1:26:36

Uh, then uh

1:26:38

LA

1:26:39

LA pressures are A wave of 18, V wave of

1:26:42

16, A more than V.

1:26:45

And with mean of 17.

1:26:48

And LA pressures are also elevated.

1:26:51

Okay. And

1:26:53

uh LV pressure is 140 by uh end end

1:26:56

diastolic pressure of five. And aortic

1:26:59

Is there a diastolic gradient across the

1:27:01

mitral valve?

1:27:02

Uh, yes, sir.

1:27:04

Around 17. Now, if you look at Kuys

1:27:06

formula also

1:27:08

If you look at Kuys formula also, now

1:27:09

you have like

1:27:11

uh what is it? Kuys formula only?

1:27:13

LA mean minus LVEDP LVEDP by two. So, LA

1:27:17

mean is 17. LVEDP by two is 2.5.

1:27:20

It's around 14.5. Okay.

1:27:23

Uh, sir, which formula is this? Kuys, C

1:27:25

U I, Kuys formula, C U I. Okay, sir.

1:27:28

is LA pressure

1:27:29

Yes, sir. minus LVEDP by two. It's not

1:27:32

whole by two, just LVEDP by two. It is

1:27:34

17

1:27:35

minus five by two. 2.5 Yeah, it's 14.5.

1:27:40

Yes, sir. Then there is severe

1:27:42

uh Sir, what it represents, sir? That

1:27:44

14.5?

1:27:45

It represents the mean gradient.

1:27:48

Yeah, the capillary wedge. Mean gradient

1:27:51

between LA and LV. Yeah. Ah, there

1:27:53

there.

1:27:54

Okay, so

1:27:54

you have a severe gradient across the

1:27:57

diastolic gradient across the mitral

1:27:58

valve. Okay, then.

1:27:59

Uh, then aortic pressure of 98 by 40 to

1:28:02

severe systolic gradient across from uh

1:28:07

across the

1:28:08

uh

1:28:09

aortic valve. So, what are your

1:28:11

conclusions on this?

1:28:13

Uh

1:28:15

Sir, first of all, there is significant

1:28:18

elevation of RV

1:28:20

and diastolic pressure as well as

1:28:22

systolic pressure. There is pulmonary

1:28:24

arterial hypertension. Okay. There is

1:28:26

elevated LA pressures Okay. and

1:28:30

with

1:28:31

gradient across the mitral wall as well

1:28:33

as aortic wall.

1:28:34

Okay. So, causes?

1:28:37

Could be a

1:28:38

simultaneous

1:28:40

stenotic lesion of both mitral and

1:28:42

aortic walls. You're saying severe AS?

1:28:44

This PH. Severe AS, severe MS, PH. Yes.

1:28:48

Yeah.

1:28:49

Okay. So, rheumatic heart disease. Okay.

1:28:50

So, one thing is that look at the

1:28:52

diastolic pressures in the RV. They are

1:28:53

also elevated, right?

1:28:55

Yes, sir. It indicates that the RV is

1:28:57

going to fail.

1:28:58

Yes, sir. Not yet failed because the RV

1:29:00

pressure is 72. The RV is able to

1:29:02

generate a very good pressure. So, it's

1:29:04

not yet failed, but it may fail because

1:29:05

the end diastolic pressure is slowly

1:29:07

rising.

1:29:08

Yes, sir.

1:29:09

There's one more thing there. Now,

1:29:10

whenever you get such kind of thing,

1:29:12

whenever there is PH, always look if

1:29:14

there is an associated pre-capillary

1:29:16

component to it. This is your routine

1:29:18

post-capillary hypertension, huh?

1:29:20

Yes, sir. So, you might have an

1:29:22

associated pre-capillary component. For

1:29:23

this, you either look at the diastolic

1:29:25

pressure gradient, which is more

1:29:26

accurate, or your transpulmonary

1:29:28

pressure gradient.

1:29:29

So, you look at You can look at the

1:29:30

diastolic pressure gradient. That is LA

1:29:32

mean minus

1:29:34

pulmonary artery end diastolic pressure.

1:29:37

So, how much is it?

1:29:39

72. Uh 27.

1:29:41

Minus 72. So, 10. More than seven is

1:29:44

indicates a pre-capillary component.

1:29:46

Okay. Or you can look at the

1:29:48

transpulmonary gradient, which is both

1:29:50

means. Mean LA minus mean PA minus mean

1:29:53

LA. So, that is 72

1:29:54

17. Yes. And more than 12 is

1:29:56

significant. 12. 12. So, there's an

1:29:57

additional pre-cap amount of 12. So,

1:29:59

there's an additional pre-capillary

1:30:01

component to it. There's an additional

1:30:02

vasoactive component to it. Do you get

1:30:04

my point?

1:30:05

Yes, sir. So, it could It is

1:30:07

both hyperkinetic as well as reactive

1:30:09

pH. It's reactive as well as passive

1:30:11

transmission. Yes, sir. So, you have

1:30:14

passive as well as a vasoactive

1:30:15

component there. In addition, you have

1:30:17

reactive component, obstructive

1:30:18

component, as well as a as well as a

1:30:20

passive passive component.

1:30:22

Passive transmission of pressures. So,

1:30:24

one of the favorite question they ask is

1:30:25

what are the types of

1:30:27

pulmonary artery hypertension you can

1:30:28

give an MS. And

1:30:30

they'll ask you to grade it and up to

1:30:32

what grade can you get an MS.

1:30:34

So, according to so, all those are usual

1:30:36

questions.

1:30:37

Inshallah.

1:30:38

Yeah. Gradient to tell severe AS is it

1:30:41

40 in cap?

1:30:44

It's usually mean gradient, but with

1:30:46

usually we we take the systolic gradient

1:30:48

only in cath study. Is it 40 or 50?

1:30:51

40, isn't it? 40 40.

1:30:53

Okay.

1:30:54

Okay, so it's severe AS, severe MS. AR

1:30:57

is there, sir? Yeah. And mild AR because

1:30:59

you can see a wide pulse pressure also.

1:31:00

Probably some mild AR.

1:31:02

Okay.

1:31:04

So, diagnose severe MS with moderate PH

1:31:07

with elevation of RV filling pressures.

1:31:08

Severe AS, mild AR. Reactive PH is also

1:31:11

present in addition, okay?

1:31:13

You have diastolic pressure gradient of

1:31:14

10 and a transpulmonary pressure

1:31:16

gradient of 17. So, whenever you

1:31:17

diagnose PH, always look is there a

1:31:19

pre-capillary component gradient

1:31:20

addition?

1:31:21

Okay?

1:31:22

So,

1:31:24

let's say this is a this is a

1:31:25

37-year-old female, right?

1:31:27

Let's say this is a 67-year-old female,

1:31:29

in which you expect a pre-capillary

1:31:30

component to be there.

1:31:34

You get my question? Yes. No, sir. See,

1:31:37

you have a 37-year-old female and you

1:31:39

have a 67-year-old female. Okay, both

1:31:41

have the same disease, MS. Yes, sir.

1:31:43

Which patient will have a pre-capillary

1:31:45

component more likely?

1:31:46

The young patient will have. Young and

1:31:48

patient. Young patient. That's why even

1:31:49

in your congenital MS also, you have

1:31:51

stronger, I mean, will have

1:31:54

more PH in them. Because younger vessels

1:31:57

younger vessels will have a more

1:31:58

tendency to contract. Juvenile MS. I

1:32:01

mean, juvenile MS, sorry, juvenile MS.

1:32:03

Okay.

1:32:06

So, severe MS, moderate PH, elevation of

1:32:08

RV filling pressures, severe AS, mild

1:32:10

AR, reactive PH. That is important. So,

1:32:12

we're going step by step. You won't miss

1:32:13

anything.

1:32:14

So, rather than jumping and straightaway

1:32:15

saying the diagnosis is MS,

1:32:17

you don't miss any step because they

1:32:18

rarely give you any simple cases.

1:32:21

Okay. Case study for a pre-op

1:32:23

40-year-old.

1:32:27

Only one more.

1:32:29

There's only two one more, actually. So,

1:32:31

case study

1:32:32

Mitty, come on.

1:32:40

Where is Mitty?

1:32:42

There is a

1:32:44

It's a very simple question. Very simple

1:32:45

thing.

1:32:56

RA saturation is 58. Higher Higher RA

1:33:00

and the lower RA saturation is 50. There

1:33:03

is a step up from RA to RV.

1:33:06

Uh significant step up of 11%.

1:33:10

Then

1:33:13

And the there is a

1:33:14

step down from LA to LV uh saturation.

1:33:20

Uh significant step down and uh there is

1:33:23

systemic

1:33:24

desaturation also.

1:33:27

Yeah, aortic saturation is 80.

1:33:31

Then

1:33:32

uh pressures uh the

1:33:36

RA pressure is

1:33:38

mean is seven.

1:33:40

Elevated RA pressure traced sinus

1:33:43

rhythm. RV systolic pressure is elevated

1:33:47

uh 104. And there is a uh gradient there

1:33:52

from

1:33:53

RV to PA.

1:33:55

Um

1:33:58

Okay. And uh the left side left side the

1:34:03

mean pressures is

1:34:05

LA pressure is eight but A is more than

1:34:09

B.

1:34:10

Okay.

1:34:16

Uh any

1:34:17

LV pressures there is no gradient or

1:34:20

diastolic gradient across the

1:34:22

mitral valve.

1:34:24

So

1:34:26

And there is a

1:34:36

There is

1:34:40

LV and RV pressures are the same.

1:34:45

There is a

1:34:46

VSD

1:34:49

Restrictive or non-restrictive VSD?

1:34:52

VSD with unrestricted VSD. Okay.

1:34:57

Aortic pressure is same. RV systolic

1:34:59

pressure, LV systolic pressure and

1:35:02

the aortic pressures are the same.

1:35:03

Okay. So probably

1:35:10

But

1:35:11

there is

1:35:13

RV obstruction.

1:35:14

Unrestricted VSD with RVOT obstruction.

1:35:17

Okay, so

1:35:22

Okay, so step up in the RV, step up in

1:35:24

the

1:35:24

the LV similar?

1:35:28

It's tough. Okay.

1:35:30

So are there MAPCAs? First question.

1:35:34

Are there MAPCAs?

1:35:36

Yes.

1:35:37

Why? No. No. No MAPCAs. Why? The pulse

1:35:40

pressure is not

1:35:42

There is no wide pulse pressure to say

1:35:44

MAPCAs.

1:35:47

Next question. How was the LA There is

1:35:49

no wide pulse pressure. How was the LA

1:35:51

entered?

1:35:52

How was the LA entered?

1:35:57

How was the LA entered? Don't say it's

1:35:58

goes to going across the mitral valve.

1:36:01

Nobody does that.

1:36:03

PFO

1:36:04

Exactly. It's entered through a PFO,

1:36:05

probably through a

1:36:06

probe patent PFO. Is the patient

1:36:08

operable? Next question.

1:36:11

Yes, sir.

1:36:14

Is the patient operable?

1:36:16

Favorite question of examiners.

1:36:18

Is the stuff operable?

1:36:23

Anatomy we have to see, sir, rather than

1:36:25

this. Simple stuff is operable. Usually

1:36:26

simple stuff is operable at any age.

1:36:28

Okay.

1:36:29

PA anatomy is Yeah, you have to see the

1:36:31

PA anatomy and all those things, but if

1:36:33

you as a general rule if you get a stuff

1:36:35

it is usually operable at any age.

1:36:38

Okay, there will be exceptions. Okay,

1:36:39

depending upon your PA and all those

1:36:41

things. But again, if somebody asks you

1:36:44

stuff at any age is operable. That is

1:36:45

one general dictum which you say.

1:36:47

Okay, you mean simple stuff. You may get

1:36:49

complex things.

1:36:51

Okay, last question. 21-year-old boy

1:36:53

presents with dyspnea on exertion

1:36:54

functional class three.

1:36:56

Okay, anyone wants to take it?

1:36:58

KK and the other guy.

1:37:02

I want to show you what is in

1:37:03

quarantine, right?

1:37:16

Can't hear you, KK. TA is normal. Um

1:37:20

from

1:37:21

SVC to RA there is no step up.

1:37:23

70 then RA to RV also there is no step

1:37:26

up. PA saturation is normal.

1:37:29

Then pulmonary artery wedge is 99. That

1:37:31

is also normal.

1:37:33

Then

1:37:35

aortic saturation also normal, 97.

1:37:38

But femoral artery saturation is low,

1:37:41

86.

1:37:42

Okay.

1:37:46

Then

1:37:48

coming to pressures

1:37:49

uh mean RA pressure is eight, uh that is

1:37:53

elevated. A more than V patient in sinus

1:37:56

rhythm.

1:37:58

RV pressure is uh 105, that is also

1:38:01

elevated.

1:38:03

Then,

1:38:04

uh PA pressure is 105 systolic systolic

1:38:07

by 62, that is also elevated.

1:38:10

There is no systolic gradient.

1:38:13

Then,

1:38:15

mean

1:38:17

uh LA pressure is eight, that is

1:38:20

normal with the V more than A.

1:38:25

And uh LA

1:38:28

uh LV pressure is 100 by eight and

1:38:30

aortic pressure 100 by 70, that is

1:38:33

normal. There is no

1:38:34

uh

1:38:35

gradient between LV and aorta.

1:38:39

Here,

1:38:40

Mhm.

1:38:44

PDA Eisenmenger. I mean, good, sir.

1:38:45

Yeah, it's a PDA Eisenmenger. See,

1:38:47

there's a definite saturation drop from

1:38:49

the aorta to the femoral artery, now?

1:38:52

97 to 86.5. Yes.

1:38:55

Right?

1:38:55

Mhm.

1:38:56

There's a saturation drop, now, from

1:38:58

aorta to from femoral artery. Uh there

1:39:00

is the drop in saturation from aorta

1:39:02

with severe PH, what can the cause be

1:39:04

then?

1:39:05

Go to one. There's to be a PDA which is

1:39:07

shunting from right to left.

1:39:09

Pulmonary artery to aorta.

1:39:12

You get my point?

1:39:13

Yeah, yeah, yeah, yeah. PDA Eisenmenger.

1:39:15

So, patient is inoperable. Mostly

1:39:17

inoperable, right?

1:39:18

Yeah, yeah, okay.

1:39:20

Okay, so

1:39:22

PDA Eisenmenger. So, this is the last uh

1:39:24

presentation, okay? Slide.

1:39:27

So, uh basically, when you uh get this

1:39:29

cath study, your diagnosis is not

1:39:30

important, okay? So, you

1:39:32

They only look for how you read this.

1:39:34

So, you start with your SVC, you look

1:39:36

for you comment on the SVC, how how

1:39:38

would the saturation is. You go for the

1:39:40

RA pressures, you look for the AB,

1:39:43

comment upon the the patient sinus

1:39:44

rhythm.

1:39:45

Look for diastolic gradients across the

1:39:47

tricuspid valve. Go for the RV systolic

1:39:49

pressures across the pulmonary valve.

1:39:51

Comment on the wedge pressure or LA

1:39:53

systolic diastolic gradient across the

1:39:54

mitral valve, LV pressures, and the

1:39:56

systolic gradient across the aortic

1:39:57

valve. And then you comment on each

1:39:59

step.

1:40:00

And then oximetry pressure tracing. So,

1:40:01

the method of how you read is more

1:40:03

important rather than how you

1:40:05

Just don't jump and say a diagnosis.

1:40:07

Just don't jump and say PDA is normal.

1:40:10

So, you must try to rationalize why it

1:40:12

is PDA is normal because

1:40:14

they usually bring you some complex

1:40:16

tracings, okay? And which the you have

1:40:19

to not miss a single point. That's more

1:40:21

important than simply and simply saying

1:40:23

a

1:40:24

simply saying a diagnosis because the

1:40:25

diagnosis which you say is rarely

1:40:26

correct. So, always go sequentially and

1:40:28

step-wise.

1:40:30

All right. So, uh

1:40:31

I think that's for the presentation. So,

1:40:33

thank you very much. And uh stay safe.

1:40:39

Sir, Shiva but Shiva is missing that uh

1:40:41

he was in quarantine. Something fishy.

1:40:43

He's in quarantine. Yeah.

1:40:45

Tarun is also right now exposed.

1:40:47

Yeah. Yeah. Yeah.

1:40:49

You're already compromised. group of uh

1:40:51

yours in which we can enroll, sir, for

1:40:53

regular classes in future?

1:40:56

I'm not sure. This is the first class

1:40:57

I'm taking, actually.

1:40:59

Uh there was one which Thomas had just

1:41:01

pressure tracings, now.

1:41:03

Hey. Uh this is a very useful class for

1:41:06

us.

1:41:07

Oh. It was very methodical and helped

1:41:09

us, sir. So, any future class, sir, we'd

1:41:11

like to join. Thank you, sir. Yeah, we

1:41:13

can ask the rep, actually. Uh

1:41:15

Arjun on the line? Yeah, one to say good

1:41:17

night, good night.

1:41:18

Future learning class for you and me,

1:41:20

you know. One to say we'll be happy to

1:41:21

do that anytime. Only thing want your

1:41:24

request, that's all. I mean, from your

1:41:26

end. Uh thank you, sir, for such a

1:41:29

captivating

1:41:31

deliberation, first of all, sir. Okay,

1:41:33

sure.

1:41:34

Uh anyway, uh sir, we are there. We are

1:41:36

already there.

1:41:38

We'll be shoulder to shoulder.

1:41:40

Anytime we are ready to do this.

1:41:42

So, if it's okay, then you can even

1:41:44

contact the class next week. Let's see

1:41:45

how Sure, sir. Sure, sir. Sure, sir.

1:41:47

Whatever help you require, sir, just

1:41:48

feel free to call Arjun, sir. Yeah,

1:41:50

yeah. Sure, sure. Okay. Okay, sir.

1:41:52

Sir, on the behalf of JB Chemicals, sir,

1:41:54

we would like to thank you, sir.

1:41:56

Such a nice presentation, sir.

1:41:59

Such a nice presentation, sir. Thank

1:42:01

you. Thank you. And in fact, I would

1:42:02

like to thank all the participants who

1:42:03

have participated here.

1:42:06

This scientific motivating crowd, sir.

1:42:07

Almost we have touched close to 49. So,

1:42:10

it's

1:42:11

quite fabulous.

1:42:13

Actually, it's very appreciable. Yeah.

1:42:17

And on the behalf of JB Chemicals, sir,

1:42:19

in fact,

1:42:20

our deepest gratitude and admiration for

1:42:23

the sacrifices you make every day during

1:42:25

this pandemic, sir.

1:42:29

Yeah, thank you.

1:42:31

Right.

1:42:32

In fact, products are almost our

1:42:34

products are familiar to you, sir. Of

1:42:35

course, nothing new, sir.

1:42:37

Silagar, of course, our bread and

1:42:39

butter.

1:42:40

Bisou top of brand of Bisou Balou, also

1:42:42

it is available.

1:42:44

Thank you. Thank you. Thank you, sir.

1:42:45

Thank you.

1:42:46

Good night.

1:42:47

Good night.

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