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title: "Moyamoya"
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docid: "e15385dc-824d-431a-8df0-2b28bf909a2d"
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authors:
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- key: "47381de4-c9fd-4999-8dd0-1808cd72db6b"
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value: "Luke L. Linscott, MD"
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breadcrumbs:
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-
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name: "Pediatrics"
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slug: "pediatrics"
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treeNodeId: "a915965c-d436-44cf-ae65-2f22e7246ea4"
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name: "Diagnosis"
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slug: "diagnosis"
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treeNodeId: "2b5cea64-a083-489e-ac0c-ec14ba059026"
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name: "Pediatric Neuroradiology"
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slug: "pediatric-neuroradiology"
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treeNodeId: "d0eb8f4a-e769-43dd-896c-8c9c27ce8759"
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-
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name: "Brain"
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slug: "brain"
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treeNodeId: "feaaadba-649b-4f0a-9aad-9188a8f9926a"
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name: "Pathology-Based Diagnoses"
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slug: "pathology-based-diagnoses"
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treeNodeId: "2d26053f-23a7-4062-bf35-a93775ae1209"
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-
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name: "Stroke"
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slug: "stroke"
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treeNodeId: "83689efc-5f25-40a3-9ae7-06fb2a4a069f"
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-
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name: "Moyamoya"
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slug: "moyamoya"
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treeNodeId: null
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category: "Pediatrics"
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cmeTopicId: "8ba35550-ab01-4c3c-a79f-25aaa06da86c"
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documentVersionId: "635703ac-cce9-46c4-a51b-3a94faa9236a"
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imageCount: 25
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lastUpdated: "02/07/24"
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pageDescription: "Moyamoya"
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pageKeywords: "Pediatrics, Diagnosis, Pediatric Neuroradiology, Brain, Pathology-Based Diagnoses, Stroke, Moyamoya"
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pageTitle: "Moyamoya | STATdx"
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enhancedTitle: "Moyamoya"
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type: "DX"
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references: true
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breadcrumbs:
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- "Pediatrics"
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- "Diagnosis"
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||||
- "Pediatric Neuroradiology"
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- "Brain"
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- "Pathology-Based Diagnoses"
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- "Stroke"
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- "Moyamoya"
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---
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# KEY FACTS
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- ## Terminology
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- Progressive narrowing of distal internal carotid artery (ICA) & proximal circle of Willis (COW) vessels → characteristic adjacent clusters of collateral flow appearing as "puff of smoke" on real-time angiography
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- Moyamoya disease = primary (idiopathic) moyamoya
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- More common in Japan, Korea
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- Moyamoya arteriopathy (a.k.a. moyamoya syndrome or secondary moyamoya) due to other disorders
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- ## Imaging
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- Absent or narrowed distal ICA & abnormal COW
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- Excessive tiny collaterals in basal ganglia & cisterns
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- "Puff of smoke" (moyamoya in Japanese) of lenticulostriate & thalamoperforator collaterals
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- Prominent collaterals in sulci
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- Ivy sign on FLAIR & T1 C+ MR
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- Acute & chronic infarcts
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- CT/CTA: Acute use for ischemia or hemorrhage
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- MR C+/MRA: Vascular protocol with DWI & perfusion
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- DWI: Helpful to identify "acute on chronic" injury
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- ## Pathology
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- Moyamoya disease: Inherited idiopathic disorder
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- Moyamoya arteriopathy: Secondary process
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- Sickle cell disease, trisomy 21, neurofibromatosis type 1, radiation therapy, Alagille syndrome, morning glory syndrome, TB meningitis, among others
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- ## Clinical Issues
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- Bimodal age peaks: 6 & 35 years
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- Most frequent cause of stroke in Asian children
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- Presentation (children): Transient ischemic attacks (TIAs), alternating hemiplegia (exacerbated by crying), headache
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- Presentation (adults): TIAs, hemorrhage (~ 30%), & cerebral infarct
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- Prognosis depends on etiology, ability to form collaterals, age/stage at diagnosis
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- Treatment: Indirect (more common in children) or direct (more common in adults) vascular bypass
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- ## Diagnostic Checklist
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- Seek underlying causes of secondary moyamoya
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# TERMINOLOGY
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- ## Synonyms
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- Progressive stenoocclusive arteriopathy; spontaneous occlusion of circle of Willis (COW)
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- ## Definitions
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- Progressive narrowing of distal internal carotid artery (ICA) & proximal COW vessels → characteristic adjacent clusters of collateral flow appearing as "puff of smoke" on real-time angiography
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- Moyamoya disease: Primary (idiopathic) moyamoya
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- More common in Japan, Korea
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- Moyamoya arteriopathy (a.k.a. moyamoya syndrome or secondary moyamoya) occurs in association with other disorders or after radiation treatment
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# IMAGING
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- ## General Features
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- Best diagnostic clue: Multiple enhancing punctate dots (CECT) & flow voids (MR) in basal ganglia & cisterns
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- Arterial occlusions: Distal ICA, COW, branches
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- Anterior > posterior circulation
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- Posterior circulation affected in ~ 25%
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- Leads to prominent clusters of nearby collaterals
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- "Cloud-like" lenticulostriate & thalamoperforator collaterals on angiography: "Puff of smoke" (moyamoya in Japanese)
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- Also leads to prominent sulcal collaterals distally
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- ## CT Findings
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- ### NECT
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- Children: Acute ischemia ± old infarcts
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- Older children/adults: Usually ischemia but may present with intracranial hemorrhage
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- CTA: Abnormal COW + basilar net-like collaterals
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- Xe-133 CT: ↓ cerebral reserve with acetazolamide challenge
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- ## MR Findings
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- ### T2WI
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- ↑ signal in gliotic areas from prior infarcts
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- Collateral vessels: Net-like cisternal flow voids
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- ### FLAIR
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- Bright sulci = leptomeningeal ivy sign
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- Slow-flowing engorged pial collateral vessels, thickened arachnoid membranes
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- Correlates with ↓ cerebral vascular reserve
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- ### T2* GRE
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- Hemosiderin if prior hemorrhage
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- ### DWI
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- Very useful for "acute on chronic" infarcts
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- ### PWI
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- ↓ cerebral blood flow (CBF) (ASL) in affected territories
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- ↑ MTT in affected territories
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- Variable rCBV depending on degree of collateral formation
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- May be used to measure response to revascularization
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- ### T1WI C+
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- Lenticulostriate collaterals → enhancing "dots" in basal ganglia & net-like thin vessels in cisterns
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- Leptomeningeal enhancement (ivy sign)
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- Vessel wall imaging
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- Most consistent finding is negative remodeling (local shrinkage of vessel size) of affected vessels
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- Variable enhancement of affected vessel segments
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- ↑ wall thickening and ↑ stenosis correlates with ↑ wall enhancement
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- May help distinguish from other vasculopathies
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- ### MRA
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- Narrowed/occluded distal ICA & COW vessels
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- ### MRS
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- Lactate in acutely infarcted tissue
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- NAA:Cr & Cho:Cr ratios in frontal white matter improve ↑ after revascularization
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- ## Ultrasonographic Findings
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- Grayscale: Reduction of ICA lumen size
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- Pulsed Doppler
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- Spectral waveforms in ICA show no flow (occluded) or proximal high-resistance flow pattern
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- ↑ end-diastolic flow velocity, ↓ vascular resistance in external carotid artery (ECA) collaterals
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- Color Doppler: Aliasing suggests stenoses
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- Power Doppler: Improves visualization of slow-flow stenotic vessels & collaterals
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- Can be used for vessel mapping prior to revascularization surgery
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- ## Angiographic Findings
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- Predominantly (not exclusively) anterior circulation
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- Narrow proximal COW & ICA (early phase)
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- Lenticulostriate & thalamoperforator collaterals (intermediate phase)
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- Transdural/transosseous ECA-ICA collaterals (late phase)
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- Dilation & branch extension of anterior choroidal artery predict adult hemorrhagic events
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- ## Nuclear Medicine Findings
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- PET: ↓ hemodynamic reserve capacity
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- SPECT I-123-iomazenil: Neuronal density preserved if asymptomatic, ↓ if symptomatic
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- ## Imaging Recommendations
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- Best imaging tool: MR C+/MRA
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- Contrast improves detection: Collaterals, synangiosis
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- Catheter angiography defines anatomy prior to bypass
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- Protocol advice
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- Acetazolamide challenge with ASL has been performed to measure cerebrovascular reserve, but Xe-133 CT is gold standard
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# DIFFERENTIAL DIAGNOSIS
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- ## Ivy Sign
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- Leptomeningeal metastases, subarachnoid hemorrhage, meningitis, ↑ inspired oxygen, collateral veins of Sturge-Weber or other chronic venous occlusion
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- [Large Vessel Inflammatory Vasculitis](/document/miscellaneous-vasculitis/5a4d4cbd-67e3-4722-8a44-8d411cbb98f0)
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- Postvaricella vasculitis, lupus, & other CNS vasculitides
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- May be reversible with treatment
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- [Cerebral Arterial Atherosclerosis](/document/intracranial-atherosclerosis/8d21d962-9c43-47bd-b995-c73f20e46b47)
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- Very rare in children & young adults
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- ## Severely Attenuated Circle of Willis
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- Subarachnoid hemorrhage (spasm), meningitis, tumor encasement
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# PATHOLOGY
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- ## General Features
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- ### Etiology
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- Moyamoya disease
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- Inherited polygenic or autosomal dominant
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- Low penetrance
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- Gene loci: 3p26-p24.2, 17q25, 8q23
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- ↑ in growth factors, cytokines, adhesion molecules in CSF implicates inflammation
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- Moyamoya arteriopathy (a.k.a. moyamoya syndrome or secondary moyamoya)
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- Sickle cell disease, neurofibromatosis type 1 (NF1), radiation therapy, trisomy 21, Alagille syndrome, morning glory syndrome, tuberculous meningitis, many others
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- NF1 + suprasellar tumor + radiation can be disastrous
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- Epidemiology: Moyamoya disease
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- Incidence in Japan: 1:100,000
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- Incidence in North America, Europe: 0.1:100,000
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- 10-15% familial
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- ## Staging, Grading, & Classification
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- Staging criteria (Suzuki)
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- Stage 1: Narrowing of ICA bifurcation
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- Stage 2: Anterior, middle, and posterior cerebral arteries (ACA, MCA, PCA) dilated
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- Stage 3: Maximal basal collaterals; small ACA/MCA
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- Stage 4: Fewer collaterals (vessels); small PCA
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- Stage 5: Further ↓ in collaterals; absent ACA/MCA/PCA
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- Stage 6: Extensive ECA-pial collaterals
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- ## Gross Pathologic & Surgical Features
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- ↑ perforating (early) & ECA-ICA (late) collaterals in atrophic brain
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- Hemorrhage (subarachnoid, intraventricular > parenchymal) in adults
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- ↑ saccular aneurysms in adults (especially basilar)
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- ## Microscopic Features
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- Intimal thickening & hyperplasia
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- Excessive infolding & thickening of internal elastic lamina
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- Periventricular pseudoaneurysms (cause of hemorrhage)
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# CLINICAL ISSUES
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- ## Presentation
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- ### Most common signs/symptoms
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- Children: Transient ischemic attacks (TIAs), alternating hemiplegia (exacerbated by crying), headache
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- Adults: TIAs, hemorrhage (~ 30%), cerebral infarct
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- Hemorrhagic presentation more common in Asian adults
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- ### Other signs/symptoms
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- Children: Developmental delay, poor feeding, chorea
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- ## Demographics
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- ### Age
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- Bimodal age peaks
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- Japan, Korea: 6 years > 35 years
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- North America, Europe: 35 years > 6 years
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- ### Sex
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- M:F = 1:1.8; in familial cases, M:F = 1:5
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- ### Epidemiology
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- Most frequent cause of stroke in Asian children
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- ## Natural History & Prognosis
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- Progressive narrowing, collateralization, & ischemia
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- Prognosis depends on etiology, ability to form collaterals, age/stage at diagnosis
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- Pediatric cases usually advance to stage 5 in < 10 years
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- Infantile moyamoya progresses faster
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- Hemorrhagic moyamoya more common in older patients
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- May be due to large collateral vessels
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- Has poorer outcome
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- ## Treatment
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- Aspirin therapy
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- Direct bypass: Superficial temporal artery (STA)-MCA more common in adults
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- Indirect bypass
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- Pial synangiosis & encephaloduroarteriosynangiosis with STA more common in children
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- 5-year risk of ipsilateral stroke post encephaloduroarteriosynangiosis = 15%
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- Dural inversion with middle meningeal artery
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- Correct/control prothrombotic states & inflammatory etiologies
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- Transfusion therapy for sickle cell-related moyamoya
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# DIAGNOSTIC CHECKLIST
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- ## Consider
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- Seek underlying causes of secondary moyamoya
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- ## Image Interpretation Pearls
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- Enhanced asymmetric atrophy found on childhood CT; look for abnormal vascular pattern
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- Adult moyamoya can present with intracranial hemorrhage
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- ## Reporting Tips
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- Successful revascularization = ↓ basal collaterals, ↑ flow in MCA branches, ↑ caliber of STA (direct bypass)
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4447a660-ce0e-4510-a9b1-a3c441465e85
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## References
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# Selected References
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1. [Larson AS et al: Vessel wall imaging features of moyamoya disease in a North American population: patterns of negative remodelling, contrast enhancement, wall thickening, and stenosis. BMC Med Imaging. 22(1):198, 2022](http://www.ncbi.nlm.nih.gov/pubmed/?term=36397005%5Bpmid%5D)
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1. [Larson AS et al: Implementation and rationale for a unified clinical and imaging protocol for evaluation and treatment of moyamoya angiopathy: a single institutional experience. Front Neurol. 12:662393, 2021](http://www.ncbi.nlm.nih.gov/pubmed/?term=34079514%5Bpmid%5D)
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1. [Wang LX et al: Ivy sign in moyamoya disease: a comparative study of the FLAIR vascular hyperintensity sign against contrast-enhanced MRI. AJNR Am J Neuroradiol. 42(4):694-700, 2021](http://www.ncbi.nlm.nih.gov/pubmed/?term=33664105%5Bpmid%5D)
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1. [Fan AP et al: Identifying hypoperfusion in moyamoya disease with arterial spin labeling and an [15O]-water positron emission tomography/magnetic resonance imaging normative database. Stroke. 50(2):373-80, 2019](http://www.ncbi.nlm.nih.gov/pubmed/?term=30636572%5Bpmid%5D)
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1. [Lehman VT et al: Contemporary and emerging magnetic resonance imaging methods for evaluation of moyamoya disease. Neurosurg Focus. 47(6):E6, 2019](http://www.ncbi.nlm.nih.gov/pubmed/?term=31786551%5Bpmid%5D)
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1. [Lee S et al: Monitoring cerebral perfusion changes after revascularization in patients with moyamoya disease by using arterial spin-labeling MR imaging. Radiology. 288(2):565-72, 2018](http://www.ncbi.nlm.nih.gov/pubmed/?term=29714677%5Bpmid%5D)
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1. [Kim DY et al: Infarct pattern and collateral status in adult moyamoya disease: a multimodal magnetic resonance imaging study. Stroke. 48(1):111-6, 2017](http://www.ncbi.nlm.nih.gov/pubmed/?term=27909201%5Bpmid%5D)
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1. [Qiao PG et al: Clinical assessment of cerebral hemodynamics in moyamoya disease via multiple inversion time arterial spin labeling and dynamic susceptibility contrast-magnetic resonance imaging: a comparative study. J Neuroradiol. 44(4):273-80, 2017](http://www.ncbi.nlm.nih.gov/pubmed/?term=28168990%5Bpmid%5D)
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1. [Blauwblomme T et al: Cerebral blood flow improvement after indirect revascularization for pediatric moyamoya disease: a statistical analysis of arterial spin-labeling MRI. AJNR Am J Neuroradiol. 37(4):706-12, 2016](http://www.ncbi.nlm.nih.gov/pubmed/?term=26585258%5Bpmid%5D)
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1. [Kim JS: Moyamoya disease: epidemiology, clinical features, and diagnosis. J Stroke. 18(1):2-11, 2016](http://www.ncbi.nlm.nih.gov/pubmed/?term=26846755%5Bpmid%5D)
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1. [Mossa-Basha M et al: Added value of vessel wall magnetic resonance imaging in the differentiation of moyamoya vasculopathies in a non-Asian cohort. Stroke. 47(7):1782-8, 2016](http://www.ncbi.nlm.nih.gov/pubmed/?term=27272486%5Bpmid%5D)
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1. [Takagi Y et al: Histopathological characteristics of distal middle cerebral artery in adult and pediatric patients with moyamoya disease. Neurol Med Chir (Tokyo). 56(6):345-9, 2016](http://www.ncbi.nlm.nih.gov/pubmed/?term=27087193%5Bpmid%5D)
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1. [Titsworth WL et al: National analysis of 2454 pediatric moyamoya admissions and the effect of hospital volume on outcomes. Stroke. 47(5):1303-11, 2016](http://www.ncbi.nlm.nih.gov/pubmed/?term=27048697%5Bpmid%5D)
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1. [Griessenauer CJ et al: Encephaloduroarteriosynangiosis and encephalomyoarteriosynangiosis for treatment of moyamoya syndrome in pediatric patients with sickle cell disease. J Neurosurg Pediatr. 16(1):64-73, 2015](http://www.ncbi.nlm.nih.gov/pubmed/?term=25837886%5Bpmid%5D)
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1. [Derdeyn CP: Direct bypass reduces the risk of recurrent hemorrhage in moyamoya syndrome, but effect on functional outcome is less certain. Stroke. 45(5):1245-6, 2014](http://www.ncbi.nlm.nih.gov/pubmed/?term=24668205%5Bpmid%5D)
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1. [Ryoo S et al: High-resolution magnetic resonance wall imaging findings of moyamoya disease. Stroke. 45(8):2457-60, 2014](http://www.ncbi.nlm.nih.gov/pubmed/?term=24947295%5Bpmid%5D)
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1. [Hishikawa T et al: Assessment of the difference in posterior circulation involvement between pediatric and adult patients with moyamoya disease. J Neurosurg. 119(4):961-5, 2013](http://www.ncbi.nlm.nih.gov/pubmed/?term=23909250%5Bpmid%5D)
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1. [Noguchi T et al: Arterial spin-labeling MR imaging in moyamoya disease compared with clinical assessments and other MR imaging findings. Eur J Radiol. 82(12):e840-7, 2013](http://www.ncbi.nlm.nih.gov/pubmed/?term=24055185%5Bpmid%5D)
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1. [Currie S et al: Childhood moyamoya disease and moyamoya syndrome: a pictorial review. Pediatr Neurol. 44(6):401-13, 2011](http://www.ncbi.nlm.nih.gov/pubmed/?term=21555050%5Bpmid%5D)
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1. [Mugikura S et al: Posterior circulation and high prevalence of ischemic stroke among young pediatric patients with Moyamoya disease: evidence of angiography-based differences by age at diagnosis. AJNR Am J Neuroradiol. 32(1):192-8, 2011](http://www.ncbi.nlm.nih.gov/pubmed/?term=20801761%5Bpmid%5D)
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1. [Ibrahimi DM et al: Moyamoya disease in children. Childs Nerv Syst. 26(10):1297-308, 2010](http://www.ncbi.nlm.nih.gov/pubmed/?term=20607248%5Bpmid%5D)
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1. [Kim SK et al: Pediatric moyamoya disease: an analysis of 410 consecutive cases. Ann Neurol. 68(1):92-101, 2010](http://www.ncbi.nlm.nih.gov/pubmed/?term=20582955%5Bpmid%5D)
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1. [Mori N et al: The leptomeningeal "ivy sign" on fluid-attenuated inversion recovery MR imaging in moyamoya disease: a sign of decreased cerebral vascular reserve? AJNR Am J Neuroradiol. 30(5):930-5, 2009](http://www.ncbi.nlm.nih.gov/pubmed/?term=19246527%5Bpmid%5D)
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1. [Park TS: Moyamoya disease in children. Neurosurg Focus. 24(2):E16a; discussion E16a, 2008](http://www.ncbi.nlm.nih.gov/pubmed/?term=18275293%5Bpmid%5D)
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## Images
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### Selected Images
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*Axial DWI MR in a 13-month-old with increasing seizures shows left MCA distribution ischemia as well as a remote infarct in the right MCA territory. This is a typical acute on chronic ischemic pattern of moyamoya.*
|
||||
|
||||

|
||||
*Axial DWI MR in a 13-month-old with increasing seizures shows left MCA distribution ischemia as well as a remote infarct in the right MCA territory. This is a typical acute on chronic ischemic pattern of moyamoya.*
|
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|
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||||
*Anterior 3D TOF MRA in the same patient at 8 years of age shows occlusions of the terminal ICAs <img src='img/arrows/CS.png'/>, absence of the MCAs, & numerous lenticulostriate collaterals <img src='img/arrows/WS.png'/> forming a "puff of smoke." The PCAs are also occluded. Note the enlarged ECA collaterals <img src='img/arrows/CO.png'/> status post synangiosis & dural inversion.*
|
||||
|
||||

|
||||
*Axial 3D TOF MRA in a 5-year-old with idiopathic moyamoya arteriopathy shows multiple small lenticulostriate <img src='img/arrows/CS.png'/> and thalamostriate <img src='img/arrows/CC.png'/> vessels within the deep nuclear structures.*
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||||
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||||

|
||||
*Axial FLAIR MR in the same patient shows areas of gliosis <img src='img/arrows/CO.png'/> from vascular insufficiency, linear hyperintensities <img src='img/arrows/WS.png'/> representing deep medullary collateral vessels, and hyperintensities <img src='img/arrows/CC.png'/> conforming to the surface of the sulci representing pial collaterals (the leptomeningeal ivy sign).*
|
||||
|
||||

|
||||
*Axial TOF MRA in a 14-year-old with neurofibromatosis type 1 shows absence of the right internal carotid terminus & MCA. In the expected location of the carotid terminus & MCA, there are multiple small leptomeningeal collaterals <img src='img/arrows/CS.png'/>.*
|
||||
|
||||

|
||||
*Axial FLAIR MR in a 21-year-old with sickle cell disease shows high signal <img src='img/arrows/CS.png'/> within the right MCA distribution sulci, the so-called ivy sign. This abnormal signal corresponds to engorged pial collateral vessels & is often seen in moyamoya.*
|
||||
|
||||

|
||||
*Frontal 3D TOF MRA in a 10-year-old with history of nasal rhabdomyosarcoma at age 3 treated with XRT shows absence of flow in the left distal ICA <img src='img/arrows/CO.png'/>, severe narrowing of the right MCA <img src='img/arrows/CS.png'/>, & absent right ACA. Terminal ICA & proximal MCA are the most common locations for moyamoya arteriopathy.*
|
||||
|
||||

|
||||
*Axial T1 C+ MR in the same patient shows extensive leptomeningeal enhancement <img src='img/arrows/CO.png'/> in the bilateral ICA territories with prominent vessel enhancement <img src='img/arrows/CS.png'/> in the basal ganglia.*
|
||||
|
||||

|
||||
*3D TOF MRA in a 6-year-old with trisomy 21 and severe moyamoya arteriopathy shows marked narrowing of the left ICA terminus <img src='img/arrows/CS.png'/> & complete occlusion of the right MCA origin <img src='img/arrows/CO.png'/>. Deep moyamoya collaterals <img src='img/arrows/CC.png'/> have formed in the left basal ganglia.*
|
||||
|
||||

|
||||
*Axial ASL MR perfusion in the same patient shows near absence of signal <img src='img/arrows/CS.png'/> in the right MCA territory, consistent with dramatically reduced blood flow, corroborating the findings on MRA.*
|
||||
|
||||
|
||||
### Additional Images
|
||||
|
||||

|
||||
*Coronal graphic shows severe tapering of both distal ICAs <img src='img/arrows/WS.png'/> & strikingly enlarged lenticulostriate arteries <img src='img/arrows/WO.png'/> coursing through the basal ganglia. This is the characteristic puff of smoke (moyamoya) pattern.*
|
||||
|
||||

|
||||
*Axial FLAIR MR in an 8-year-old boy with Alagille syndrome shows confluent gliosis <img src='img/arrows/CS.png'/> in the right frontal region & more patchy gliosis <img src='img/arrows/WS.png'/> in the left deep white matter. Also note the serpentine collateral vessels <img src='img/arrows/CO.png'/> near the midline. Moyamoya arteriopathy can be seen with Alagille syndrome.*
|
||||
|
||||

|
||||
*Axial TOF MRA in an 8-year-old boy with Alagille syndrome shows absent signal in the region of the carotid termini & major ICA branch vessels. There are, however, small leptomeningeal collateral vessels in the midline inferior frontal <img src='img/arrows/CO.png'/> & right anterior temporal regions <img src='img/arrows/CS.png'/> & basilar cisterns <img src='img/arrows/CC.png'/>. The findings are compatible with moyamoya arteriopathy.*
|
||||
|
||||

|
||||
*Anterior projection from a left ICA DSA injection shows no opacification of the expected ACA branches with multiple leptomeningeal collaterals seen in the midline subfrontal region <img src='img/arrows/CS.png'/>. Also note the enlarged left middle meningeal artery <img src='img/arrows/CO.png'/>, which supplies portions of the right ACA territory. This is an example of an ICA to ECA collateral pathway.*
|
||||
|
||||

|
||||
*Axial T2 MR in a 21-year-old man with sickle cell disease shows absence of the carotid termini & major branches. Note the numerous small leptomeningeal collateral vessels <img src='img/arrows/CS.png'/> within the basilar cisterns, typical of moyamoya arteriopathy.*
|
||||
|
||||

|
||||
*Axial MRA in a 21-year-old man with sickle cell disease shows multiple punctate foci of flow-related signal <img src='img/arrows/CS.png'/> within the basal ganglia & thalami, consistent with typical lenticulostriate & thalamoperforator collateral vessels of moyamoya arteriopathy.*
|
||||
|
||||

|
||||
*Axial T1 C+ MR in a 21-year-old man with sickle cell disease shows abnormal leptomeningeal enhancement <img src='img/arrows/CS.png'/> in the right MCA distribution. This is the equivalent of the ivy sign on FLAIR & represents slow-flowing leptomeningeal collaterals that develop in areas of decreased cerebrovascular reserve (secondary to moyamoya arteriopathy).*
|
||||
|
||||

|
||||
*3D MRA in a 16-year-old boy with moyamoya arteriopathy demonstrates severe stenosis/occlusion of the right carotid terminus <img src='img/arrows/WO.png'/>. The patient is status post revascularization using a direct bypass. Note the prominent right superficial temporal artery <img src='img/arrows/CS.png'/>, which is anastomosed to a distal right MCA branch <img src='img/arrows/CO.png'/>.*
|
||||
|
||||

|
||||
*Lateral view of a selective internal carotid DSA shows severe stenosis of the supraclinoid ICA <img src='img/arrows/BS.png'/> with a "puff of smoke" <img src='img/arrows/BO.png'/> from the collateral lenticulostriate vessels.*
|
||||
|
||||

|
||||
*Axial TOF MRA shows occlusion of both distal ICAs <img src='img/arrows/BS.png'/>, nonvisualization of the MCAs & ACAs, & stenosis of the PCAs <img src='img/arrows/BO.png'/> in an 8-year-old with hemiparetic migraines. This patient had an idiopathic arteriopathy of childhood.*
|
||||
|
||||

|
||||
*Axial TOF MRA in another patient with idiopathic progressive arteriopathy of childhood shows occluded supraclinoid ICAs <img src='img/arrows/WS.png'/>. Note the bilateral synangiosis <img src='img/arrows/BO.png'/>.*
|
||||
|
||||

|
||||
*Axial T1 MR shows right frontal & left temporooccipital atrophy <img src='img/arrows/WO.png'/> from remote ischemia. There are multiple small basal ganglia flow voids <img src='img/arrows/WS.png'/> from lenticulostriate collaterals.*
|
||||
|
||||

|
||||
*Axial T1 C+ MR in the same patient shows multifocal white "dots" <img src='img/arrows/WS.png'/> due to slow flow in multiple enlarged lenticulostriate collaterals.*
|
||||
|
||||

|
||||
*Axial TOF MRA in a 2-year-old boy with moyamoya and multiple infarcts shows proliferation of small vessels in the thalamus.*
|
||||
|
||||

|
||||
*Axial FLAIR MR in the same patient shows multiple wedge-shaped areas of cortical signal abnormality <img src='img/arrows/CS.png'/>, consistent with multifocal infarcts.*
|
||||
|
||||
Reference in New Issue
Block a user