Interactive Transcript
0:01
So just like we did
0:02
before, if you have any questions about cases
0:06
or anything concerning that we wanted to look at
0:10
or something that wasn't clear, uh, let me know.
0:13
We can do that in detail.
0:14
Otherwise we can do, uh,
0:19
just kinda a look at the, at the coronary cases
0:24
and, and go from there.
0:25
So that's what we'll, we'll kinda evaluate.
0:28
So let's start with week in case one.
0:33
So on this particular case, we wanted
0:36
to continue building on the anos coronary anatomy as well
0:40
as the evaluation of coronary stents.
0:44
So in this particular case, we have, um, a gentleman
0:48
that has active chest pain
0:50
and has a history of non coronary disease.
0:52
And we wanted to kind of evaluate if the coronary disease
0:56
has to do with his stents
0:57
or it has to do with his omas anatomy.
1:01
So on this case, we can see from the beginning
1:03
that there's clearly an anomalous, uh, left main force
1:08
tends to be in between the pulmonary pulmonary artery
1:12
and the aorta.
1:13
And we get to see that it definitely has some,
1:17
some anterial course
1:18
and what we would consider a high risk binding.
1:20
So how do we best evaluate left main courses in these is
1:24
kinda ideally my approach is always
1:27
to kinda make sure you can create a short axis orientation
1:31
of the valve if you can.
1:33
So if you can get the, um,
1:37
coronary arteries to come up
1:38
and you wanna be able to clearly tell
1:40
which cusp comes from where.
1:42
So we should be expecting the left main origin
1:45
to come from the left side of the heart,
1:47
and then the right coronary cusp from the coronary come from
1:50
the right coronary cusp, which we see here.
1:52
We see that. How do you use aortic measurement tools
1:56
in tar recon?
1:58
Okay, so for that one really, um,
2:02
and this one you essentially use these,
2:05
you can use basic 2D measurements to kind of create, uh,
2:10
a measurement from here to here to, to do that.
2:13
That's most of the basic measurements.
2:16
Uh, the ruler in general allows you to make most
2:20
of the basic measurements for, for that particular purpose.
2:24
That that's how you do with double each
2:27
automated if you hit shift.
2:31
And it has to do with your workflows.
2:33
So if you have a workflow like for example, tavr,
2:39
uh, you can shift for measurements.
2:43
You know, you can do anything that's listed here.
2:46
So sending aorta and it'll give you the, the measurement.
2:50
Then you can just measure from here.
2:53
So it's automated whichever way, just we will just, uh,
2:57
label it for you and,
2:58
and create that picture if you want to.
3:01
Okay. So that's kind of how it does.
3:03
If you wanted to create like a curve multiplanar, right?
3:08
So you just have to change the workflow.
3:11
So if you go to this
3:13
and you do like LAD
3:17
or whichever, you can just press shift
3:20
to the vessel of interest.
3:22
That being the aorta, let me see if it didn't
3:28
go back, give it a maybe.
3:31
So, um, the auto
3:36
shift and there it goes, it will provide you with that.
3:42
Anywhere you see these lines is
3:43
where it'll automatically trace
3:46
and uh, you can just adjust those
3:48
and make those measurements.
3:50
See, it will provide them for you.
3:52
Now mind you, they'll need some fine tuning in some cases,
3:55
but you know that that part isn't really that hard.
3:59
You just scroll what you select threshold,
4:02
and just with the left click of the mouse,
4:03
you can adjust the threshold for, for the measurements
4:07
and just adjusting it and, and proceed from there.
4:09
So if you want it more automated, again,
4:13
threshold, then there you go.
4:14
See. So that's another way to do it,
4:17
and you can extend the vessel if you need it to.
4:20
So again, minimize, you can rotate
4:24
and you can kind of tell it where to extend to see.
4:27
So by simply clicking
4:29
or scrolling on this, you can just tell it to continue
4:32
on a certain location, et cetera.
4:35
Okay, wonderful. Any other question?
4:40
No. How do you differentiate share from separate?
4:43
That's a great question. So let's look at that.
4:46
So, uh, let me go back to cardiac.
4:51
When we do volume right brain.
4:53
So what we'll do is for common osteum versus shared osteum,
4:58
one of the things that you need
4:59
to do is actually look at the, at the cusp leaflets.
5:02
So what you do is you line up the aorta or the aorta root,
5:08
and what you're gonna do is magnify your,
5:13
your vessels or your cusps.
5:17
Here you can see that this has its own osteo in the sense
5:21
that we define an osteo by essentially having
5:25
all borders originate from the aorta.
5:28
So you can see this vessel has its own origin
5:32
separate from anything else,
5:35
right in there you essentially create a, as you would say,
5:38
a full circle around the borders of the vessel entirely.
5:43
In this particular vessel, you have it separate.
5:47
In this one you also have a separate, uh, ote.
5:50
See how it has its own, uh, assessment, its own
5:56
orifice, own, uh, origin in the same cusp,
6:01
but it's not a a branch meaning it, it, it comes directly
6:05
from the, the main artery or vessel.
6:08
Does that make sense? Sometimes you'll have the left main
6:11
and the left circum complex
6:12
and the LAD originate directly from
6:17
the same cusp,
6:18
but each one will have no shared, uh, origin,
6:23
but will rather come directly off the aorta.
6:25
That's the ones that you will, you'll often see.
6:28
So does it come off directly off the aorta
6:30
or does it come off another vessel?
6:32
Does that make sense? So very good.
6:35
In this case, you know, we're able to see
6:37
that there's clearly an anomalous artery
6:39
with an interrater course like we've mentioned.
6:42
And your, our job is to kind
6:44
of see if there's significant stenosis left main
6:47
with intraarterial courses are a high risk finding.
6:50
In this particular case, you can see
6:52
that there's like an oval like narrowing here, right?
6:57
You continue to go through it
6:58
and you can measure the length of narrowing, like
7:01
how long does the vessel stay narrow for before it stops.
7:05
So you can actually measure that directly
7:07
before it turns into a full oval.
7:08
So you can use, uh, your, your planes to kind
7:13
of align your cross hairs into it
7:15
and make a measurement for how long is that going
7:18
to be narrow versus how long is it going to be?
7:21
Uh, normal sizing here you can see some narrowing,
7:24
but it's not slit like, so it's an oval like orifice,
7:28
which tells you there's a less than 50%, uh,
7:32
uh, stenosis.
7:35
The angulation for this is also intriguing, right?
7:37
You see kind of has a, an acute angulation for
7:40
where quote unquote it should be.
7:42
So it's about less than 45 degrees for just
7:44
how acutely turned from the vessel to kind
7:47
of turn into the area.
7:49
So if you use this plane, kind of like,
7:52
let me see if I can get you the angle.
7:54
So you use the plane in which the vessel will run its course
7:58
and then, uh, I always get that one backwards,
8:01
but essentially, here, let me, let me delete it.
8:05
So again, angle, uh,
8:10
quick, too many
8:16
Okay, there, right?
8:19
We'll do that again.
8:20
So angle from here to here.
8:27
Okay, I'm using picture of too much.
8:31
So again here.
8:56
Okay, so terracon
9:01
here to here and then here to here.
9:04
That's right. There you go.
9:07
So again, the angulation, you kind
9:09
of use the plane on which the vessel's going to co
9:11
and then the plane on which, you know, the origin is going
9:14
to be in this case, the origin of the vessel should kind
9:17
of follow along this plane
9:19
and that's where you get the acute angulation.
9:22
Okay, so now that you've looked at the angulation
9:25
and the length of narrowing, we can always kind of determine
9:28
that the intraarterial po the oval like
9:32
orifice in the acute angulation.
9:35
They're high risk findings.
9:36
In this particular case,
9:37
even though there's not a greater than 50% stenosis,
9:40
we went ahead and see
9:42
what the exercise treadmill test showed.
9:44
And in his case, when he was at maximum exercise,
9:47
there was evidence of diffuse s st t wave changes consistent
9:51
with like obstructive flow to this left main
9:54
that subsequently required a referral
9:58
to cardiothoracic surgery for, for, uh,
10:02
essentially left main evaluation, which would,
10:05
in this case would be re reimplantation.
10:08
He also has coronary artery stents that were important
10:11
to see, but he also has disease in this optus marginal.
10:15
So a lot of, uh, the students were able to kinda identify
10:19
that there's, uh, coronary stents,
10:22
but like the, the stenosis here
10:24
and that Optus marginal, uh,
10:26
vessel was often kind of overlooked.
10:28
So that was a, an important eccentric plaque
10:31
that we threw in this case for, for, for the sake
10:35
of like for her evaluation.
10:36
So that's that first case. Any questions?
10:39
Any other concerns? No.
10:44
How to tell t tubular or is it region?
10:47
Honestly, if it's coming off the t tubular junction,
10:50
the origin from the sant tubular junction itself really
10:53
doesn't matter if it just comes above the sin, the,
10:56
the coronary cusp, meaning as long
10:58
as there's no intraarterial force, you really don't have
11:01
to worry too much about it.
11:03
Now you can come off the sin tubular junction
11:06
and have an acute angulation
11:08
or you can have like, uh,
11:10
significant stenosis from the course of the coronary osis.
11:15
So the location itself is not high risk.
11:18
How it comes off the center tubular junction can potentially
11:21
different d uh, vary
11:23
and be different, uh, depending on, on, on what the case is.
11:27
So it can, it can matter in some patients.
11:29
Okay, A very good question. Lets look at case number two.
11:36
And this is another kind of similar case to kind
11:40
of round up our, our anomal coronary cases.
11:44
Again, this a male who has a history
11:46
of known aortic valve stenosis
11:49
and we're getting a CT scan to look at his, um,
11:55
at his, uh, coronary CT as part
11:58
of his perioperative evaluation, right?
12:00
So again, in this particular case
12:03
we wanna get into the coronary
12:06
cus leaflets and take a look at this.
12:08
You can kind of see how this artery
12:12
is coming off the synott tubular junction.
12:15
It's coming right above the coronary cusp,
12:18
but it has quite the acute angulation.
12:20
So you can see there
12:21
that while the anoma take off isn't really
12:25
too significant bas on like sin tubular junction,
12:30
the intraarterial nature of it and the acute angulation
12:33
and the narrowing are what really, really end up being a,
12:37
a major, a major concern.
12:39
So again, in this case
12:42
you do have an acute tank angle takeoff.
12:46
You have evidence of an intramural slit like
12:49
or orifice with a length of narrowing that's quite long.
12:52
You can see how this stays very slit like for quite a bit
12:56
of time before eventually, uh, for quite a bit of length
13:00
before of, uh, before it opens into a non stenotic vessel.
13:04
So that's, that's of important.
13:07
In addition to that, you have mild disease throughout the
13:10
coronary arteries, nothing really, uh, obstructive,
13:14
but the combination of those symptoms is important
13:17
for the surgeons to know kind of twofold.
13:19
One, you obviously have to deal
13:21
with the right coronary artery as you're going
13:23
to be potentially putting in a new valve in the,
13:27
in the aortic valve position.
13:29
So you wanna make sure that whatever device ends up being
13:32
deployed or put in,
13:34
or more importantly whatever surgical repair ends up being
13:37
done, that the surgeons are aware of this location
13:40
and more importantly, the risk of having this vessel,
13:44
which ends up being kind of like a circumflex
13:46
that comes retro aortic,
13:48
not be an issue when you're implanting the artery
13:52
or implanting the valve to ensure
13:54
that you don't end up causing an infarction
13:57
on the lateral side of the heart given that there's
14:00
that other vessel that's clearly going from, from behind.
14:04
So that's a very, very important kind of finding in,
14:09
in this case, not only is the RCA off,
14:12
but the Lester conflicts kind of coming from the RCA
14:16
with a retro aortic force.
14:17
Okay, questions concern about this case?
14:24
No. Wonderful, wonderful.
14:27
So this case wasn't, I think that finish rounded up our,
14:31
our anomalous coronary cases.
14:33
Now we got is the aortic root D, right?
14:37
So we go back to, um, to this
14:41
and the question for our oric root dilatation, it has to do
14:45
with the, the aortic root dimensions
14:47
and how do we define, so in this particular case,
14:52
you can see that the root definitely looks
14:54
to be a little bit bigger than, uh, than it should be.
14:59
So you have the first kind of measurement
15:01
that I always encourage everybody to do,
15:03
especially when you suspect the order
15:04
of rehabilitation is just to do a traditional, um,
15:09
coronal measurement.
15:11
So here, 32.6, it does not appear to be dilated.
15:15
And again, a lot of it has to do with the asymmetry of it.
15:19
So if you're looking at this
15:22
and you get into the aorta itself, you can see
15:26
how there's this asymmetry of the, this, uh,
15:31
sinuses of al Salva
15:33
and you wanna make sure that your cross hairs go
15:35
to the largest dimension of the aorta to the, uh,
15:39
widest dimension in that.
15:41
So here we can see that and we can see the work here.
15:44
So let's take a look.
15:46
As we're looking through this, we wanna ensure
15:48
that we are crossing things where they're supposed to.
15:52
I always like to zoom in on my, in my vessels, um,
15:58
to ensure that I can really see the borders of that vessel.
16:01
And then last but not least, measure.
16:03
So now if you're measuring from sinus
16:07
to sinus measurements,
16:09
you're probably gonna get more accurate measurements than
16:12
you're probably going to do
16:14
or at least less underestimated measurements
16:17
that if you do from sinus to commissure, right?
16:21
And that's where a lot of these, uh, almost that kind
16:24
of be off here, there, I see it.
16:26
Um, and that's where you can see a lot of these, a lot
16:29
of these measurements being off.
16:31
So let we get here, you get on this
16:36
and then push over here.
16:39
Yeah,
16:45
mid centered rotate
16:50
here, right there.
16:53
Very good.
16:57
Lean right there.
17:02
Okay.
17:15
Okay, very good. So now let's measure.
17:19
So from here to here, you got one
17:24
from this sinus
17:27
or this sinus to sinus measurement, you have that
17:31
and you got one more, which would be this sinus
17:34
to this sinus measure.
17:35
So about 31, 32.
17:39
So this, this one really that dilated,
17:43
especially when you come looking at it further down
17:46
the move in there.
17:47
So no, no dilatation here, just normal dimensions.
17:53
Okay. Alrighty, let's move on to case,
17:59
um, case three.
18:05
So case number three, this one's an interesting case.
18:08
'cause this particular case we see an anomalous right
18:12
coronary artery,
18:14
but we also have evidence
18:15
that there's prior cardiac surgery.
18:18
We see a a, a surgical clip here near this vessel.
18:24
And you can then follow along a very intriguing graph.
18:28
It's, uh, internal thoracic artery graft.
18:31
You can see how it's been closed off
18:33
and it comes off the, uh, sub again.
18:36
So it continues to come down and can follow along,
18:40
but it's rather atretic, meaning it's relatively small
18:43
and makes a connection into the posterior descending artery
18:46
to lateral branches.
18:48
But the question is, why, why did it, it it fail?
18:53
And it goes down to something
18:55
that we've learned about anomalous ordinary quads
18:58
that in order for this arteries to really be significant,
19:03
we really need to have a pretty significant severe stenosis
19:07
because without it, the arterial grafts really are not going
19:11
to mature.
19:13
And if they don't mature, then you end up having a tree shot
19:18
of those vessels, like, like you saw in this case
19:21
where you can bypass to the artery itself.
19:24
But there's enough competitive flow from the native vessel
19:27
that the graft is never really going to need to be done
19:31
despite some of this, this high risk anatomy
19:34
and and characteristics.
19:36
Now when we say high risk, it's important for us
19:38
to differentiate high risk for revascularization,
19:41
meaning the likelihood that you will need some sort
19:44
of procedure because of symptoms versus high risk
19:48
of sudden cardiac death
19:49
and the high risk of sudden cardiac death
19:51
from when anomalous.
19:52
Right? Coronary artery really is not think nothing
19:55
that would be too often seen.
19:58
A lot of the times the ano is left main is the one
20:01
that tends to be most associated with higher risk
20:03
of ion cardiac death.
20:06
But these coronaries from their right interrater courses,
20:09
they really don't seem to have that issue.
20:12
So that was the issue that we were wanting to emphasize
20:15
that in patients who really just have an almost coronary
20:18
but they don't have true evidence
20:19
of significant ischemia from it
20:21
or any other high risk findings,
20:23
that sometimes even revascularization can fail
20:26
and it can lead to, uh, a recurrence of the symptoms
20:30
and the graft itself will won't mature
20:33
because of the competitive blood flow
20:36
or maybe they have microvascular dysfunction
20:38
that can occur from the phenomenal SPL area.
20:41
Okay, next case, uh,
20:45
on this one on this week,
20:47
and this one kind of starts transition things into a little
20:50
bit more of a structural, a little bit more of a more,
20:55
more kind of daunting tasks.
20:57
In this particular case, we have a case of a male
21:01
that has a history of, um, of,
21:07
uh, prosthetic valve, right?
21:10
And we wanna see if there's any involvement for symptoms
21:13
of shortness of breath
21:14
and bowel prosthetic valve dysfunction type of anatomy where
21:19
there's anything that could explain his symptoms.
21:21
So in this case, we kinda introduce the concept
21:23
of not only looking at the coronaries,
21:25
but also looking at the valve anatomy.
21:27
So that's what we're going to do.
21:29
So when you look at coronary arteries and, and
21:33
or I know aortic valve grafts
21:35
or any type of surgical prosthesis, you want to ensure
21:38
that you are lined up at the actual annulus
21:41
of the valve prosthetic, right?
21:44
Okay. You wanna be located in it
21:46
and you want to assess for a handful of things.
21:49
One, is there any evidence of calcification within those?
21:53
In this case, you can actually see, excuse me,
21:58
you can actually see the, um, the ano the leaflet itself.
22:03
You're being quite calcified.
22:05
You can see the level of calcification
22:07
and extent essentially courses, majority of the leaflet
22:11
in this other particular leaflet.
22:13
Again, you follow it along
22:14
and you can see the entire leaflet.
22:16
All the margins of the leaflet tend to be quite thickened,
22:20
very visible originating from the, from the base of the,
22:25
of the ring all the way to the leaflet tip, which again,
22:29
it's a marker of like hypot continuating leaflet thickening,
22:33
which oftentimes we see in patients
22:35
who have bowel prosthetic valve dysfunction.
22:37
Last but not least, you can see that it not only is one,
22:41
but all of the leaflets tend to have this degree of,
22:44
of progressive and degeneration that can come from it.
22:48
Another rule to remember is
22:50
that if the valve prosthetic valve leaflets
22:53
are thicker than the native valve leaflets, uh,
22:57
particularly like the say the ponic valve
23:00
or might the mi the mitral balcony generates,
23:02
it's not uncommon for it to be seen like that.
23:04
It also is a marker of of function.
23:08
Last but not least, when you see that level of hyper
23:11
leaflet thickening, we also want to look at the ring
23:14
for any evidence of like panas formation
23:16
or thrombus formation.
23:18
'cause a lot of these tend to be either precursors
23:21
or markers of prior, uh, thrombosis.
23:23
In this particular case,
23:25
you can see this irregularities along the annulus and,
23:28
and ring even calcification.
23:31
And that's one some of the things that you can see as
23:33
above prosthetic valve pans can quite form there and,
23:36
and can manifest as other phyics uh,
23:41
bioprosthetic, uh, valve dysfunction.
23:43
And in the long term they can cause quite a bit
23:45
of of issues.
23:47
Okay, now yeah,
23:51
myocardial per pericardial valvular
23:54
ification differentiation.
23:56
Yeah, it's important in any bioprosthetic valve
24:00
where you see calcifications like this,
24:03
essentially you are dealing with only one process
24:06
and that is previous thrombus that has degenerated.
24:10
So bioprosthetic valves,
24:13
any calcification is the end stage of,
24:16
of degeneration,
24:18
meaning there was a clot there at some point in time
24:20
or hypot leaflet thrombosis that's been there
24:24
in this particular, uh,
24:26
other valve like say the mitral valve here
24:28
and we, we'll use it as an example, right?
24:31
You have evidence of degenerative changes
24:35
and you can have thickening kind
24:36
of like fibrosis replacement.
24:38
You can sometimes see calcifications within these
24:41
valves that can occur.
24:43
So again, if you see the calcium within the leaflet tips,
24:45
which is tends to be one of the most common sites,
24:48
you can see that in this particular patient,
24:50
not only do you see that, but you see
24:52
that there's degenerative changes along the mitral annulus
24:55
and it tends to have two calcification soft tissue
24:58
continuation consistent with case use.
25:00
Uh, caius are calcification, uh,
25:05
MIT or calcification.
25:06
But here you can see how in this degenerative valve here on
25:09
the interior of the mitral valve,
25:11
you can see some ponte calcification.
25:14
So that's important in VA native valve.
25:17
When you see that calcium, again,
25:19
it's degenerative changes in the pericardium.
25:22
When you see calcifications it's usually a marker
25:25
of prior pericarditis.
25:26
And in this particular, in some cases chronic pericarditis,
25:31
uh, tuberculosis, radiation therapy can also do that.
25:35
And last but not least, calcifications in the myocardium,
25:39
especially if it follows the mitral annulus, this tends
25:42
to be degenerative mitrals annular calcification.
25:45
If you see calcifications in a laminar
25:49
sub endocardial pattern, meaning the inside
25:51
of the ventricle, and it tends to be along a coronary uh,
25:56
distribution and it's associated with wall thinning,
25:58
it's more likely applied or thrombus or prior infarction.
26:02
Sometimes when the mitral valves are degenerative,
26:05
they will have some of the degenerative changes reached down
26:08
into the papillary muscles, which is not uncommon
26:11
for you see papillary muscle calcification
26:14
from degenerative changes.
26:17
But myocardial infarction
26:18
to cause issues like an infarcted papillary muscle
26:22
that has calcium or like an infarct anex is not likely the
26:26
case usually for you
26:28
to have calcium in the myocardial from
26:30
from prior infarction.
26:31
It tends to be a pretty extensive transmural myocardial
26:35
infarction and usually associated with s
26:37
and significant replacement fibrosis.
26:39
So it's not uncommon for you to see her in the annulus
26:42
of the mitral valve in the, in the pericardium,
26:45
in the valves, less common in the myocardium
26:48
and the cell endocardium one itself.
26:50
Does that answer your question?
26:54
A good question so far. I like this one.
26:58
I like this one so very good.
27:01
So we have all that information. Yeah.
27:04
And then last but not least in this one we also kind
27:07
of threw in the range to kind of see,
27:09
we could also get you guys into the,
27:11
let's see how well we reviewed.
27:13
And in here you can see that there's a significant stenosis
27:16
in the right coronary artery
27:18
that's pretty difficult to raise.
27:20
And I think almost all the students, uh, got it,
27:25
everybody had no difficulty finding this one.
27:27
So again, you have obstructive coronary disease,
27:30
you have bioprosthetic valve dysfunction,
27:33
that together you're going to have, uh, pretty good reason
27:36
for having some symptoms of short of breath dyspnea as well
27:40
as abnormalities in, in the case.
27:42
So very, very, very good.
27:45
Very, very, very intriguing case.
27:48
So that kind of set that up for some of the cases.
27:52
You can, you guys can start here on week nine.
27:55
Can we differentiate infective endocarditis?
27:58
No, you can only tell if there's vegetations
28:01
and abscesses in the aorta
28:03
or the, uh, leaflets.
28:06
But for you to be able to tell thrombus from this kind
28:10
of case, uh, you know, having unquote endocarditis,
28:13
you're gonna need pet, uh, pet would be the most, you know,
28:17
sense a specific finding for this, especially, you know,
28:21
if you see some annual thickening
28:24
or other inflammatory changes.
28:25
But the CT itself,
28:27
unless you see a clear vegetation in those types
28:30
of thickening things, it becomes very difficult
28:32
and challenging for it to be specific for, for, uh,
28:37
for endocarditis.
28:39
Now sensitivity wise, it's just as good as stress.
28:42
Esophageal liquid telling you there's definitely
28:44
nothing wrong here.
28:45
No normal thickening, no annular measurements, et cetera.
28:49
Okay, so a very good question. Any other questions?
28:55
Okay, so what we're going
28:57
to do next in this particular case, we're gonna kind
29:01
of review a couple of things When it comes to cardiac ct,
29:04
uh, I like to, um,
29:06
protocol all my cardiac CT bi facing injections,
29:09
not tri facing injections.
29:11
And the reason why is cases like this one
29:13
where you have patients who have so shorts of breath,
29:16
chest pain, and if you have a true biphasic injection,
29:20
you have a significant septal defect, you'll be able
29:22
to actually detect, uh, you know, basic congenital,
29:26
simple congenital coronary uh, uh, findings.
29:29
In this particular case, you know,
29:31
whenever I see the same level of ululation in the,
29:35
in the right ventricle to the left ventricle,
29:37
and I often think, uh, that I'm dealing
29:40
with a significant hun meaning A-Q-P-Q-S greater than one.
29:43
And in this case you can actually see that.
29:47
Now in this particular case,
29:50
you can take things a little further in the, in the fact
29:52
that yes, we can simply say there is, uh, anomalous, uh,
29:57
congenital findings, uh, and obvious atrial septal defect,
30:01
but I think we can provide more information than just that.
30:04
So the advantages of cardiac CT is we have really high
30:08
spatial resolution in a full three-dimensional
30:11
volume, which is a mod.
30:12
Now a lot of the other modalities don't necessarily have
30:15
that luxury at times.
30:16
So what we're gonna do is we're gonna get into the center
30:19
of, of this defect, right, of this secundum a SD
30:24
and we're gonna kind of look at the rims
30:26
and be able to determine if we can provide our referring
30:28
physicians and colleagues the information we need about,
30:32
do we need to do a transit of AAL echocardiogram
30:35
to assess this, this defect.
30:39
So one of the things that I often do when I try to answer
30:42
that question is I kind of try
30:44
to make things like we would on echocardiogram.
30:47
So, uh, what we're going to do is
30:51
echocardiography usually looks at the rims of the a
30:56
und uh, hearts by looking at a four chamber view.
31:00
So that's the first thing that we're going to do.
31:02
We're gonna get a good apical four chamber view,
31:05
and that's usually a line oriented in disposition.
31:09
And then that's what we're going to do.
31:10
And you're gonna get two rims, see the distinct rims, right?
31:15
So it's important for you to be able to know
31:17
what those rims are
31:18
and more importantly what they're, uh, located.
31:22
So, uh, the the defect itself, you're gonna use this view
31:27
to kind of measure rim sizes
31:29
and you're gonna get to where the,
31:30
you see the largest dimension in this particular case.
31:34
And you can kind of see the defect is quite notable in gap.
31:38
Uh, for there, uh, the ome defect, you're gonna have
31:42
to remember certain risks.
31:44
So off the aortic for of the four chamber view,
31:48
you always have the atrial ventricular rim, okay?
31:51
And that one tends to be opposite of the posterior
31:55
and superior rim.
31:57
So if you're looking at, let's say,
31:59
let me see if I can kinda put this, uh,
32:03
reconstruction into perspective.
32:06
Let me see if I can do, uh, a full poll here.
32:10
We do a right
32:14
and I'm gonna try to line this up here like this
32:18
so we can kind of use that as our,
32:21
as our point of reference.
32:22
Hopefully this does not move my my orientation,
32:27
but you can use this to kind see the defect.
32:30
See this orifice here, that's your, uh, your, your a SD
32:35
and we're gonna use this to kinda move
32:37
through along and kind of see it.
32:39
So the rims that we're interested in this rim,
32:41
atrial ventricular
32:43
and the posterior superior rim, which we can't see for you
32:46
to notice, is you need to have enough rim to be able
32:49
to anchor a device into this, uh, patient, uh, defect.
32:54
So at least you need a rim that tends
32:56
to be five millimeters from the, the muscle of the heart
33:00
or from the, the actual borders of the a SD.
33:03
So here you can see the atrial ventricular rim has quite a
33:06
bit of, of rim,
33:08
but here in the posterior sphere tends
33:10
to be a little bit more deficient, meaning there's some,
33:12
I'm not doubting it's existence,
33:14
but it's a little bit less prominent
33:16
than what you'd want it to be.
33:18
Usually you want at least more than five millimeters
33:21
to be able to have good anchoring of the device
33:23
to prevent any type of dislodgement.
33:27
So that's what we're going to look at.
33:29
So that's the first rim to keep an eye out for.
33:31
The other rim that you need to keep an eye out
33:33
for is located at the junction between the vena cava
33:38
and the vena cava.
33:40
So one of the things that I usually like to do is I like
33:43
to line up my, my vena cava.
33:46
Uh, so that's what we're going to do.
33:47
We're going to kind of have the SVC
33:50
and IVCV located, right?
33:53
So let's kinda align these two here
33:57
and we're gonna kinda walk through these two to kind of find
34:02
where, where that rim becomes a little bit more
34:05
noticeable and efficient.
34:07
That is going to end up being here.
34:08
You're gonna be able to see that rim deficiency here
34:12
where you have the SVC border and the IVC border.
34:15
Here's the or. So again, you're gonna want to,
34:20
to visualize this rim
34:22
and be able to make the measurements just like you see here
34:26
from the top of this one to the bottom of this one.
34:29
So those rims obviously are more than 10 millimeters in
34:32
diameter, definitely more than five millimeters in diameter.
34:35
Last but not least, the last rim that we need to do,
34:38
it's a little bit trickier
34:39
and I usually like to be more consistent
34:41
with echocardiography with it.
34:43
And that one tends to be your aortic rim.
34:47
And what you're going to do is you create the short axis
34:50
beyond echocardiogram, you have the outflow tract,
34:52
you have the right atrium and you have the aorta
34:55
because this is the most easy
34:57
and consistent way to see the aortic rim.
34:59
You can see here that as I scroll through the aorta,
35:03
there really isn't much rim meaning here it's barely any
35:07
defect and here, uh, any tissue
35:10
and here there's hardly any tissue.
35:12
So you can imagine if you're trying to put a device
35:15
that's anchored to a structure
35:18
and your structure anchoring you ends up being the aorta,
35:21
that could be a problem because this devices can erode
35:25
and you don't wanna have a fistula from a highly pressurized
35:28
systemic aorta to a lower pressure right atrium.
35:32
'cause then that will not go necessarily well
35:34
for the patient in the long term.
35:36
So this defect right here is what we're kind of looking at
35:40
and we're kind of now in a
35:43
multiple planer views of that orifice.
35:45
So see this thing that you see right here, that's the,
35:50
that's the secundum a SD
35:52
and that's why that's what we're kind looking at here
35:55
in, in this image.
35:57
So that's kind of the important information
35:59
that we wanted you guys to be able to do
36:02
and more importantly, have the opportunity
36:03
to utilize cardiac CT to, to be able to assess
36:08
how these rims can be used in the assessed
36:11
or for pre-procedural planning, avoiding the patient.
36:14
Another procedure. I can tell you doing a lot
36:17
of ts not a lot of patients are eager to come back
36:20
or three times for another VPTE when they can avoid
36:24
it if, if they can.
36:25
So that's an important finding.
36:27
So overall that's kind of what we have.
36:29
And you can look at the right ventricular chamber size in,
36:32
determine that this, this particular patient,
36:34
it is quite notable and significant in dimension.
36:36
So when you have a combination of right atrial dilatation,
36:40
right ventricular dilatation, equal ification
36:44
of attenuation of the chambers
36:46
and you have a orifice, uh, you can do that
36:50
and we differentiate premium from secundum defects.
36:53
Absolutely. And in this case, you're gonna look at
36:56
any associated uh, uh, pri defects,
37:00
which you would have like a partial ad canal if you think
37:02
about it here.
37:04
The membrane septum
37:05
of the left ventricular outflow tract tends to be quite
37:08
competent, meaning you don't see any residual defects here
37:12
and you don't see any clefting of the mi
37:14
of the mitral valve.
37:16
You don't see any issues with the AV groove itself.
37:19
So when you don't have those accompanying findings,
37:22
then you would end up having essentially, uh, findings
37:25
to system with more of as a condom type frame.
37:28
Meaning here the thing that's deficient is the,
37:31
the AUM premium and atrial secundum never
37:34
really fully developed.
37:35
You see components of the premium down here,
37:37
but the secundum brings never really did, uh, arrive on time
37:41
to, to be part of the conversation.
37:42
But yes, you can definitely use ARDI X
37:44
and team to evaluate for quality dose.
37:47
Very good. Any other questions? Any other concerns?
37:55
Uhhuh? So ventricular dilatation versus an aneurysm, right?
37:59
Ventricular dilatation means that the walls of the muscle
38:02
of the heart tend to be normal in thickness
38:05
and they don't have evidence of replacement fibrosis.
38:07
And that's a really, really important thing to
38:10
determine in this particular case,
38:12
if you look at the actual structure of the muscle
38:14
of the heart, the myocardium, there's no evidence
38:17
of any findings of like, uh, fighting metaplasia
38:21
or replacement fibrosis.
38:22
Replacement fibrosis
38:23
and old prior infarctions usually has a distinct dark
38:29
rim appearance where there's no conscious classification.
38:32
And then more importantly, you'll have a lot
38:34
of fatty metaplasia within the myocardium in areas
38:36
where you wouldn't see it otherwise.
38:39
So that's the importance.
38:40
Aneurysms tend to be more
38:43
broad mouth located in particularly in in the
38:46
coronary distribution.
38:47
'cause that's the only way you're gonna get a ventricular
38:50
aneurysm if you have something replacing the myocardium.
38:54
The right side of the heart can get aneurysmal,
38:57
especially in patients with alogenic cardiomyopathy.
39:00
But again, you're looking for evidence
39:01
of like abnormal wall thickness or abnormal outpouching.
39:06
It tends to be associated with like anything
39:08
that's replacing the myocardium to do that.
39:11
So if you don't have evidence
39:14
of myocardial replacement fibrosis, then the likelihood
39:17
that this is aneurysmal versus an actual dilatation is,
39:22
is more consistent.
39:24
So that's how I usually look.
39:25
Ventricular dilatation,
39:26
the myocardial cell structurally is intact or normal.
39:30
And aneurysm you have some sort
39:32
of defect in the myocardium from replacing fibrosis
39:35
that's going to lead into your column.
39:38
So very good question. Any other question?
39:41
Any other concerns?
39:46
No. Okay.
39:48
Well I think those are all the five cases
39:51
that we had a little bit easier to go through since,
39:53
you know, the next cases get a little bit more challenging,
39:56
but you know, we only have case nine cases coming up,
40:00
another gala of, of congenital findings.
40:04
So that's always fantastic to do a couple
40:06
of really interesting, uh, congenital findings.
40:09
So I hope you guys find all of them.
40:11
And then last but not least, with cases four
40:15
and five, we case nine, four and five to finish things off
40:19
and introduce you to the aortic valve replacement cases
40:22
and those can be quite the challenging cases.
40:25
So we'll go from there
40:27
and we'll look forward to those uhhuh inside on VSD.
40:32
Again, if you do a biphasic injection, you should be able
40:35
to see ventricular sal defect relativity easier.
40:38
They're more likely to see pseudo aneurysms
40:40
of the left ventricular outflow tract or the ous septum.
40:44
And you are a true VSD or less.
40:48
They tend to be related to a post myocardial infraction,
40:50
but they are definitely easy to detect on cardiac ct.
40:54
And a lot of the things you'll find with congenital CT is
40:57
ensuring that you're routinely due by face injections.
41:01
That way if there's a significant left to right shunt,
41:04
you'll be able to assess it by simply the level of, uh,
41:08
contrast attaining in the, in the,
41:10
in the structures of interest.
41:12
Okay. Very
41:14
good. All right,
41:19
Thank you Dr. Again,
41:20
Dr. Es
41:21
and, uh, just let everyone know that, um,
41:24
I'll be sharing this rough footage here over the next couple
41:26
of hours and if you have any more questions, just email 'em
41:29
to me and I'll forward them to the faculty.
41:31
So everyone have a good evening. Thanks again Dr. Punani.
41:35
Of course, anytime. Take good care.