| Literature DB >> 22027213 |
Hans H Jung1, Adrian Danek, Ruth H Walker.
Abstract
Neuroacanthocytosis (NA) syndromes are a group of genetically defined diseases characterized by the association of red blood cell acanthocytosis and progressive degeneration of the basal ganglia. NA syndromes are exceptionally rare with an estimated prevalence of less than 1 to 5 per 1'000'000 inhabitants for each disorder. The core NA syndromes include autosomal recessive chorea-acanthocytosis and X-linked McLeod syndrome which have a Huntington's disease-like phenotype consisting of a choreatic movement disorder, psychiatric manifestations and cognitive decline, and additional multi-system features including myopathy and axonal neuropathy. In addition, cardiomyopathy may occur in McLeod syndrome. Acanthocytes are also found in a proportion of patients with autosomal dominant Huntington's disease-like 2, autosomal recessive pantothenate kinase-associated neurodegeneration and several inherited disorders of lipoprotein metabolism, namely abetalipoproteinemia (Bassen-Kornzweig syndrome) and hypobetalipoproteinemia leading to vitamin E malabsorption. The latter disorders are characterized by a peripheral neuropathy and sensory ataxia due to dorsal column degeneration, but movement disorders and cognitive impairment are not present. NA syndromes are caused by disease-specific genetic mutations. The mechanism by which these mutations cause neurodegeneration is not known. The association of the acanthocytic membrane abnormality with selective degeneration of the basal ganglia, however, suggests a common pathogenetic pathway. Laboratory tests include blood smears to detect acanthocytosis and determination of serum creatine kinase. Cerebral magnetic resonance imaging may demonstrate striatal atrophy. Kell and Kx blood group antigens are reduced or absent in McLeod syndrome. Western blot for chorein demonstrates absence of this protein in red blood cells of chorea-acanthocytosis patients. Specific genetic testing is possible in all NA syndromes. Differential diagnoses include Huntington disease and other causes of progressive hyperkinetic movement disorders. There are no curative therapies for NA syndromes. Regular cardiologic studies and avoidance of transfusion complications are mandatory in McLeod syndrome. The hyperkinetic movement disorder may be treated as in Huntington disease. Other symptoms including psychiatric manifestations should be managed in a symptom-oriented manner. NA syndromes have a relentlessly progressive course usually over two to three decades.Entities:
Mesh:
Year: 2011 PMID: 22027213 PMCID: PMC3212896 DOI: 10.1186/1750-1172-6-68
Source DB: PubMed Journal: Orphanet J Rare Dis ISSN: 1750-1172 Impact factor: 4.123
Figure 1Acanthocytes. Peripheral blood smear showing acanthocytosis in a patient with McLeod syndrome (May Gruenwald-Giemsa; x100; scale bar = 10 μm).
Neuroacanthocytosis syndromes
| Core neuroacanthocytosis syndromes | Neuroacanthocytosis with lipoprotein disorders | Acanthocytosis in systemic diseases where neurological findings may also be present |
|---|---|---|
| Chorea-acanthocytosis (ChAc) | Abetalipoproteinemia (Bassen-Kornzweig syndrome) | Severe malnutrition (e.g. anorexia nervosa) |
| McLeod syndrome (MLS) | Familial hypobetalipoproteinemia | Cancers, sarcoma |
| Huntington's disease-like 2 (HDL2) | Anderson disease | Thyroid disorders, myxoedema |
| Pantothenate kinase associated neurodegeneration (PKAN) | Atypical Wolman disease | Splenectomy |
| Liver cirrhosis, hepatic encephalopathy | ||
| MELAS | ||
| Psoriasis | ||
| Eales' disease (angiopathia retinae juvenilis) |
MELAS, mitochondrial encephalopathy with lactic acidosis and stroke-like episodes.
Comparative Features
| Disorder | ChAc | MLS | HDL2 | PKAN |
|---|---|---|---|---|
| Gene | ||||
| Protein | Chorein | XK protein | Junctophilin-3 | Panthothenate kinase 2 |
| Inheritance | Autosomal recessive | X-linked | Autosomal dominant | Autosomal recessive |
| Acanthocytes | +++ | +++ | +/- | +/- |
| Serum CK (U/L) | 300 - 3000 | 300 - 3000 | Normal | Normal |
| Neuroimaging | Striatal atrophy | Striatal | Striatal and cortical atrophy | "Eye of the tiger" sign |
| Usual onset | 20 - 30 | 25 - 60 | 20 - 40 | Childhood |
| Chorea | +++ | +++ | +++ | +++ |
| Other movement disorders | Feeding and gait dystonia, tongue and lip biting, parkinsonism | Vocalizations | Dystonia, parkinsonism | Dystonia, parkinsonism, spasticity |
| Seizures | Generalized, partial-complex | Generalized | None | None |
| Neuromuscular manifestations | Areflexia, weakness, atrophy | Areflexia, weakness, atrophy | None | None |
| Cardiac manifestations | None | Atrial fibrillation, malignant arrhythmias, dilative cardiomyopathy | None | None |
Figure 2Neuroimaging. ChAc. Coronal FLAIR- (A) and axial T1-weighted (B) images demonstrate moderate atrophy of the caudate nucleus. MLS. Axial T2-weighted images demonstrate moderate atrophy of caudate nucleus and putamen (C) but no relevant cortical atrophy (D). HDL2. Axial FLAIR- (E) and coronal T1-weighted images (F) demonstrate atrophy of the caudate nucleus and the fronto-temporal cortex. In addition, FLAIR images show periventricular white matter hyperintensities (courtesy of Nora Chan, MD, UCLA, Los Angeles, USA). PKAN. T2-weighted fast spin echo (G) and T1-weighted (H) brain MRI scans from a child with PKAN demonstrating the "eye of the tiger" sign (courtesy of Susan J. Hayflick, MD, Oregon Health and Science University, Portland, Oregon, USA)