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1.
J Neuroradiol ; 37(4): 220-30, 2010 Oct.
Article in English | MEDLINE | ID: mdl-20378176

ABSTRACT

OBJECTIFS: To propose a MRI cerebellar algorithm that may be applied to guide genetic/malformative or biochemical investigations for patients with cerebellar ataxia. PATIENTS AND METHODS: Cerebral MRI of 158 patients with cerebellar ataxia and no supratentorial abnormality were examined according to a new categorization system based on posterior fossa imaging. The clinical and radiological findings were confronted to biochemical and/or genetic results using the MR cerebellar algorithm. Seven groups of cerebellar MRI pattern were described: vermian dysgenesis (n=27), cerebellar hypoplasia (n=15), hemispheric cerebellar dysgenesis (n=6), unilateral hemispheric atrophy (n=5), global cerebellar atrophy (n=84), signal abnormalities (n=11) and normal MRI (n=10). Cerebellar hypoplasia, vermian dysgenesis and hemispheric cerebellar dysgenesis groups were classified as malformative disorders. Global atrophy and signal abnormality groups were classified as metabolic disorders. RESULTS: In the vermian dysgenesis group, a specific genetic diagnosis was obtained in eight children (8/27) and all of the mutated genes (AHI1 (JBS3), CEP290 (JBS5), TMEM67 (JBS6), and RPGRIP1L (JBS7)) are involved in primary cilia function. In the group of pontocerebellar hypoplasia specific genetic diagnosis was obtained in one patient (PCH2) (1/15). Thus, nine of 42 children classified as malformative disorder had a molecular diagnosis. Global atrophy and signal abnormality groups were classified as metabolic disorders, specific biochemical was obtained in 46/95 children. In global atrophy group, respiratory chain deficiency was diagnosed in 18 children (18/84). In 21 children a congenital disorders of glycosylation type 1a (CDG Ia) was diagnosed (21/84) and infantile neuroaxonale dystrophy (INAD) was diagnosed in one child. In signal abnormalities group, specific biochemical diagnosis was obtained in six out of 11 children, five children with respiratory chain deficiency and one child with sulphite oxidase deficiency. In hemispheric cerebellar dysgenesis and normal MRI groups, no biological diagnosis was found for any of the patients. In the group of unilateral hemispheric atrophy, we hypothesized a clastic prenatal injury. CONCLUSION: The proposed MR cerebellar algorithm was useful to guide genetic/malformative or biochemical investigations, allowing an etiological diagnosis in 55 children.


Subject(s)
Cerebellar Ataxia/pathology , Cerebellum/pathology , Cranial Fossa, Posterior/pathology , Adolescent , Algorithms , Cerebellum/abnormalities , Child , Child, Preschool , Cranial Fossa, Posterior/abnormalities , Female , Humans , Magnetic Resonance Imaging , Male , Patient Selection
2.
J Med Genet ; 45(10): 647-53, 2008 Oct.
Article in English | MEDLINE | ID: mdl-18728072

ABSTRACT

OBJECTIVE: We have recently shown that de novo mutations in the TUBA1A gene are responsible for a wide spectrum of neuronal migration disorders. To better define the range of these abnormalities, we searched for additional mutations in a cohort of 100 patients with lissencephaly spectrum for whom no mutation was identified in DCX, LIS1 and ARX genes and compared these data to five previously described patients with TUBA1A mutations. RESULTS: We detected de novo TUBA1A mutations in six patients and highlight the existence of a prominent form of TUBA1A related lissencephaly. In four patients, the mutations identified, c.1190T>C (p.L397P), c.1265G>A (p.R422H), c.1264C>T (p.R422C), c.1306G>T (p.G436R), have not been reported before and in two others, the mutation corresponds to a recurrent missense mutation, c.790C>T (p.R264C), likely to be a hot spot of mutation. All together, it emerges that the TUBA1A related lissencephaly spectrum ranges from perisylvian pachygyria, in the less severe form, to posteriorly predominant pachygyria in the most severe, associated with dysgenesis of the anterior limb of the internal capsule and mild to severe cerebellar hypoplasia. When compared with a large series of lissencephaly of other origins (ILS17, ILSX or unknown origin), these features appear to be specific to TUBA1A related lissencephaly. In addition, TUBA1A mutated patients share a common clinical phenotype that consists of congenital microcephaly, mental retardation and diplegia/tetraplegia. CONCLUSIONS: Our data highlight the presence of consistent and specific abnormalities that should allow the differentiation of TUBA1A related lissencephalies from those related to LIS1, DCX and ARX genes.


Subject(s)
Lissencephaly/genetics , Tubulin/genetics , Child , Child, Preschool , Female , Heterozygote , Humans , Infant , Lissencephaly/pathology , Magnetic Resonance Imaging , Male , Mutation, Missense , Phenotype , Tubulin/chemistry
3.
J Med Genet ; 44(11): 739-44, 2007 Nov.
Article in English | MEDLINE | ID: mdl-17617514

ABSTRACT

Fried syndrome, first described in 1972, is a rare X-linked mental retardation that has been mapped by linkage to Xp22. Clinical characteristics include mental retardation, mild facial dysmorphism, calcifications of basal ganglia and hydrocephalus. A large four-generation family in which the affected males have striking clinical features of Fried syndrome were investigated for linkage to X-chromosome markers; the results showed that the gene for this condition lies within the interval DXS7109-DXS7593 in Xp22.2. In total, 60 candidate genes located in this region, including AP1S2, which was recently shown to be involved in mental retardation, were screened for mutations. A mutation in the third intron of AP1S2 was found in all affected male subjects in this large French family. The mutation resulted in skipping of exon 3, predicting a protein with three novel amino-acids and with termination at codon 64. In addition, the first known large Scottish family affected by Fried syndrome was reinvestigated, and a new nonsense mutation, p.Gln66X, was found in exon 3. Using CT, both affected patients from the French family who were analysed had marked calcifications of the basal ganglia, as previously observed in the first Scottish family, suggesting that the presence of distinctive basal ganglia calcification is an essential parameter to recognise this syndromic disorder. It may be possible to use this feature to identify families with X-linked mental retardation that should be screened for mutations in AP1S2.


Subject(s)
Adaptor Protein Complex sigma Subunits/genetics , Basal Ganglia Diseases/genetics , Calcinosis/genetics , Exons/genetics , Hydrocephalus/genetics , Mental Retardation, X-Linked/genetics , Adaptor Protein Complex sigma Subunits/chemistry , Adaptor Protein Complex sigma Subunits/deficiency , Basal Ganglia Diseases/epidemiology , Brain/embryology , Brain/pathology , Calcinosis/epidemiology , Cerebellar Nuclei/pathology , Codon, Nonsense , Face/abnormalities , France/epidemiology , Humans , Hydrocephalus/epidemiology , Infant, Newborn , Male , Mental Retardation, X-Linked/epidemiology , Optic Atrophies, Hereditary/genetics , Pedigree , Protein Transport/genetics , RNA Splice Sites/genetics , Scotland/epidemiology , Syndrome
4.
Rev Neurol (Paris) ; 164(12): 995-1009, 2008 Dec.
Article in French | MEDLINE | ID: mdl-18808783

ABSTRACT

Malformations of cortical development (MCD) represent a major cause of developmental disabilities and severe epilepsy. Advances in imaging and genetics have improved the diagnosis and classification of these conditions. Up to now, eight genes have been involved in different types of MCD. Lissencephaly-pachygyria and subcortical band heterotopia (SBH) represent a malformative spectrum resulting from mutations of either LIS1 or DCX genes. LIS1 mutations cause a more severe malformation in the posterior brain regions. DCX mutations usually cause anteriorly predominant lissencephaly in males and SBH in female patients. Additional forms are X-linked lissencephaly with corpus callosum agenesis and ambiguous genitalia associated with mutations of the ARX gene. Lissencephaly with cerebellar hypoplasia (LCH) encompass heterogeneous disorders named LCH type a to d. LCHa are related with mutation in LIS1 or DCX, LCHb with mutation of RELN gene, and LCHd could be related with TUBA1A gene. Polymicrogyria encompass a wide range of clinical, aetiological and histological findings. Among several syndromes, recessive bilateral fronto-parietal polymicrogyria has been associated with mutations of the GPR56 gene. Bilateral perisylvian polymicrogyria showed a linkage to chromosome Xq28 in some pedigrees, and mutations in SRPX2 gene in others conditions. X-linked bilateral periventricular nodular heterotopia (BPNH) consists of BPNH with focal epilepsy in females and prenatal lethality in males. Filamin A (FLNA) mutations have been reported in some families and in sporadic patients. It is possible to infer the most likely causative gene by brain imaging studies and other clinical findings. Based on this experience, a detailed phenotype analysis is needed to develop the most efficient research on MCD in the future.


Subject(s)
Epilepsy/pathology , Malformations of Cortical Development/pathology , Adult , Cerebellum/diagnostic imaging , Cerebellum/pathology , Classical Lissencephalies and Subcortical Band Heterotopias/diagnostic imaging , Classical Lissencephalies and Subcortical Band Heterotopias/genetics , Classical Lissencephalies and Subcortical Band Heterotopias/pathology , Contractile Proteins/genetics , Epilepsy/diagnostic imaging , Epilepsy/genetics , Female , Filamins , Humans , Lissencephaly/diagnostic imaging , Lissencephaly/genetics , Lissencephaly/pathology , Male , Malformations of Cortical Development/diagnostic imaging , Malformations of Cortical Development/genetics , Microfilament Proteins/genetics , Mutation/physiology , Pregnancy , Prenatal Diagnosis , Radiography , Reelin Protein
5.
Neurology ; 65(9): 1364-9, 2005 Nov 08.
Article in English | MEDLINE | ID: mdl-16221952

ABSTRACT

BACKGROUND: Mutations of oligophrenin 1, one of the first genes identified in nonspecific X-linked mental retardation (MRX), have been described in patients with moderate to severe cognitive impairment and predominant cerebellar hypoplasia, in the vermis. OBJECTIVE: To further delineate the phenotypic and mutational spectrum of the syndrome, by screening oligophrenin 1 in two cohorts of male patients with mental retardation (MR) with or without known posterior fossa anomalies. METHODS: Clinical examination, cognitive testing, MRI studies, and mutational analysis (denaturing gradient gel electrophoresis and direct sequencing) on blood lymphocytes were performed in 213 unrelated affected individuals: 196 patients classified as MRX and 17 patients with MR and previously detected cerebellar anomalies. RESULTS: Four novel oligophrenin 1 mutations were identified. In the MRX group, two nonsense mutations were detected. In the MR group, two mutations were found: a deletion of exons 16 to 17 and a splice site mutation. All patients shared characteristic clinical, radiologic, and distinctive features with a degree of intrafamilial variability in motor and cognitive deficits. CONCLUSIONS: Oligophrenin 1 mutations were found in 12% (2/17) of individuals with mental retardatin and known cerebellar anomalies and in 1% (2/196) of the X-linked mental retardation group.


Subject(s)
Cerebellar Diseases/genetics , Cerebellum/abnormalities , Cytoskeletal Proteins/genetics , GTPase-Activating Proteins/genetics , Mental Retardation, X-Linked/complications , Mental Retardation, X-Linked/genetics , Nervous System Malformations/genetics , Nuclear Proteins/genetics , Adolescent , Adult , Alternative Splicing/genetics , Cerebellar Diseases/diagnosis , Cerebellar Diseases/physiopathology , Cerebellum/metabolism , Cerebellum/physiopathology , Child , Child, Preschool , Codon, Nonsense/genetics , Cohort Studies , DNA Mutational Analysis , Facial Asymmetry/diagnosis , Facial Asymmetry/genetics , Gene Deletion , Genetic Testing , Genotype , Humans , Magnetic Resonance Imaging , Male , Mental Retardation, X-Linked/physiopathology , Mutation/genetics , Nervous System Malformations/diagnosis , Nervous System Malformations/physiopathology , Pedigree , Phenotype , RNA Splice Sites/genetics
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