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Dysmyelinating Disease Summary

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Up till now,

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we've been talking about demyelinating

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disorders where we have normal white

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matter that is being destroyed

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by various disease processes.

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When we refer to dysmyelinating disorders,

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we're usually talking about white matter

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diseases in which the white matter

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was never good from birth,

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or that there is a process that is leading

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to the abnormal formation of white matter.

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With regard to the dysmyelinating

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disorders, these are very uncommon causes.

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They're very uncommon diseases. However,

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among them,

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the most common is metachromatic

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leukodystrophy and adrenal leukodystrophy,

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and we're going to emphasize those two

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as representatives of dysmyelinating

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disorders. Nonetheless,

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you see that there are quite a number of

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various entities here that are listed that

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can lead to abnormal white matter

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formation or hypomyelination,

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in which the white matter never

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forms normally. In addition,

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there are other metabolic disorders that

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will lead to abnormal development

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or creation of white matter.

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So we're going to lump all of these under

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the dysmyelinating disorders.

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As I mentioned,

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metachromatic leukodystrophy is thought

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to be one of the most common of

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the dysmyelinating disorders.

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And like many of these disorders,

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there is often a very young infantile

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version. There's a childhood version,

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and there's an adult version of

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metachromatic leukodystrophy.

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And along with that,

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you may see varying severity

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of this disease.

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This disease is associated with diffuse

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abnormal white matter signal and something

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that we call a tigroid appearance of

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the periventricular white matter.

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By tigroid appearance,

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you'll see that there are tiny little dots

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within the white matter that is likened

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to the tiger stripes, if you will.

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This particular disorder is due

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to arylsulfatase deficiency,

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which is an enzyme that is required

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to make the myelin sheath.

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The patient's symptoms include

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gait disturbance, strabismus,

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various eye problems,

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as well as speech disturbance and absence

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of making milestones as a child.

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The key to metachromatic leukodystrophy

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is this tigroid appearance on MRI,

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as well as relative sparing

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of the U fiber.

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So it's much more of a central

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white matter disease.

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Let's look at it on slides.

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Here we have a T1-weighted scan to the

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left and a T2-weight scan

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on the right-hand side.

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And what one sees is a symmetric white

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matter abnormality that is, in general,

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sparing the U fibers.

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By central, I mean,

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that is in a periventricular zone.

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Here's our ventricles.

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But doesn't go out to the far

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periphery of the brain.

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It stays in this central area

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by the tigroid appearance.

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What I'm referring to are these little

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dots that you're seeing in.

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That white matter,

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that is what is referred to

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as the tigroid appearance.

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And sometimes it's better demonstrated

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at other times,

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but generally around the frontal

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horns in particular,

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you may see these little dots of darker

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signal amidst the bright signal,

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which is the tigroid appearance.

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This is from a radiographics article that

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was demonstrating metachromatic

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leukodystrophy and the tigroid

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stripes of that entity.

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So again,

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this is from radiographics in 2002.

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But what one is seeing are these little

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dots of bright signal intensity within the

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central white matter. As you can see,

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maybe on the left side,

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better than the right.

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Absence of involvement of the periphery,

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the subcortical U fibers.

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And on the section that's

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a little bit lower,

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maybe this is a little bit more of the

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tigroid striped look of the somewhat

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spared myelin amidst the bright

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signal intensity.

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Abnormal myelin of metachromatic

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leukodystrophy in keeping with

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our use of abbreviations,

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people will write down often MLD for this

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entity, metachromatic leukodystrophy, MLD.

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Among the other dysmyelinating disorders,

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there are some that are associated

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with macrocephaly,

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and those are Canavan's disease and

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Alexander's disease. Fortunately,

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Canavan's disease is an entity that is

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a diagnosis that can be made with the

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combination of MR Spectroscopy.

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Because of the N-acetyl aspartate

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peak changes,

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those that are involving the posterior

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white matter somewhat selectively

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are adrenoleukodystrophy and

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adrenomyelodystrophy.

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Let's take a look at those.

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So, of those, we mentioned,

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Canavan's disease.

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Canavan's disease tends to have

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a macrocephalia, large head.

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In a child with a frontal predilection

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for involvement.

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It favors the subcortical U fibers,

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and that makes it a distinction from

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metachromatic leukodystrophy,

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which you recall, I was saying,

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has a more central involvement.

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This is due to that deficiency of

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N-acetylaspartylase enzyme that is

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required for normal white

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matter development.

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This is a patient who has that

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entity of Canavan's disease.

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And let's distinguish it from

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metachromatic leukodystrophy.

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Here we have an old CT,

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we have the MRI scan,

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and as opposed to metachromatic

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leukodystrophy,

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we see that the white matter changes

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go all the way out to the periphery.

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This is our cortex. So this is.

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Involvement of the subcortical U fibers

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with Canavan's disease.

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You notice also that the head

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seems a little bit larger,

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and that's not just due to magnification.

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The patients have macrocephaly,

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which is also seen in Alexander's disease.

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As I mentioned,

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the diagnosis of Canavan's disease can

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be made with the combination of MR

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Spectroscopy. So Canavan's disease,

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we see again the involvement out to the

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periphery of the white matter

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in this patient

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with involvement of the

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subcortical U fibers.

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But what we're also seeing here is

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this large spike in the NAA.

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Here we have creatinine and choline

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peaks over here at three and 3.2.

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But this very high spike in the NAA is due

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to accumulation of N-acetyl aspartate,

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because it's not being broken down by

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that enzyme, N-acetylaspartylase,

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that should be occurring in the

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development of normal white matter.

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Characteristic feature

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of Canavan's disease,

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along with the subcortical

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U fiber involvement.

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This is a credit to Peter Barker,

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who's the head of our MR

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Spectroscopies team.

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Alexander's disease is the other of the

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white matter dysmyelinating disorders

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that has enlargement of the

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head and macrocephaly,

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but with the frontal predilection.

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And this is also known as fibrinoid

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leukodystrophy.

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It too involves the U fibers.

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Contrast that with this entity.

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In this case,

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we have a posterior predilection for

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the white matter dysmyelination.

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So here you see white matter involvement

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of the posterior parietal

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and occipital lobe.

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You can see also the involvement of the

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splenium here with abnormal signal

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intensity and anointing effect.

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On the Flare scan,

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we actually see involvement to the

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thalamus in the lateral geniculate body.

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The lateral geniculate body is part of the

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thalamus that is associated with

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the visual apparatus. So,

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as you could imagine,

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with a person who has an occipital

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and parietal lobe involvement,

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as well as lateral geniculate involvement,

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the clinical symptoms are usually

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a visual disturbance,

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and this is the entity of

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adrenoleukodystrophy.

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So adrenal leukodystrophy is characterized

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by the posterior predilection,

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the involvement of the lateral geniculate,

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the extent to the subcortical U fibers,

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not quite as severe as what we saw with,

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for example, the Canavan's case,

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but it does go out more peripherally than

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what one would expect with

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metachromatic leukodystrophy.

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A dystrophy with adrenal leukodystrophy.

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There is another characteristic feature

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and that is contrast enhancement of the

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leading edge of the dysmyelination.

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So here we have a T2-weighted scan showing

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the occipital lobe demyelinating

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dysmyelinating process with on

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post-gadolinium T1-weighted scan enhancement

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along the leading edge of

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the dysmyelination.

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So we don't see it in the central

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aspect of the dysmyelination,

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but along the periphery of the

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dysmyelination where you have white matter

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breakdown and breakdown of

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the blood-brain barrier.

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This enhancement in a dysmyelinating

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disorder is very uncommon except

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in adrenoleukodystrophy.

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Adrenoleukodystrophy is secondary to acyl

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CoA synthetase deficiency

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where you have no very

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long-chain fatty acid breakdown.

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Adrenal leukodystrophy was popularized in

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the movie entitled Lorenzo's Oil and this

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describes the patients with adrenal

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leukodystrophy treated by Hugo Moser,

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who is a physician at Johns Hopkins School

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of Medicine, recently passed,

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but used to work at the Kennedy

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Krieger Institute.

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And Hugo Moser was the person who

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developed the diet that was sparing the

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long-chain fatty acid diet for patients

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who had adrenoleukodystrophy and it

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miraculously led to improvement

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in the patient's symptoms.

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I shouldn't mention that the adrenal of

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adrenal leukody is that these patients

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typically have adrenal gland abnormalities

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and hypoadrenalism in association with the

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visual disturbance that's also associated

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with adrenoleukody by virtue of the

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occipital involvement. So again,

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adrenoleukodystrophy treated

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with Lorenzo's oil,

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which is the

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dietary manipulation advocated by Hugo

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Moser for resolution of the symptoms or

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improvement of the symptoms in patients

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who have adrenoleukodystrophy. On Mr.

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Spectroscopy,

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the adrenoleukodystrophy shows the

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breakdown of the white matter demonstrated

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by a decrease in the

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and the choline secondary to

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the white matter breakdown.

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As the patients are treated with

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the dietary manipulation,

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you find a return of the NAA to a more

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normal height with the improvement

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in the patient's symptoms.

Report

Description

Faculty

David M Yousem, MD, MBA

Professor of Radiology, Vice Chairman and Associate Dean

Johns Hopkins University

Tags

Neuroradiology

Molecular Imaging

Metabolic

MRI

Brain

Acquired/Developmental

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