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1.
Dev Med Child Neurol ; 64(4): 509-517, 2022 04.
Article in English | MEDLINE | ID: mdl-35726608

ABSTRACT

AIM: To characterize the cortical structure, developmental, and cognitive profiles of patients with WD repeat domain 62 (WDR62)-related primary microcephaly. METHOD: In this observational study, we describe the developmental, neurological, cognitive, and brain imaging characteristics of 17 patients (six males, 11 females; mean age 12y 3mo standard deviation [SD] 5y 8mo, range 5y-24y 6mo) and identify 14 new variants of WDR62. We similarly analyse the phenotypes and genotypes of the 59 previously reported families. RESULTS: Brain malformations, including pachygyria, neuronal heterotopia, schizencephaly, and microlissencephaly, were present in 11 out of 15 patients. The mean full-scale IQ of the 11 assessed patients was 51.8 (standard deviation [SD] 12.6, range 40-70). Intellectual disability was severe in four patients, moderate in four, and mild in three. Scores on the Vineland Adaptive Behavior Scales obtained from 10 patients were low for communication and motor skills (mean 38.29, SD 7.74, and 37.71, SD 5.74 respectively). The socialization score was higher (mean 47.14, SD 12.39). We found a significant difference between scores for communication and daily living skills (mean 54.43, SD 11.6; p=0.001, one-way analysis of variance). One patient displayed progressive ataxia. INTERPRETATION: WDR62-related cognitive consequences may be less severe than expected because 3 out of 11 of the assessed patients had only mild intellectual disability and relatively preserved abilities of autonomy in daily life. We identified progressive ataxia in the second decade of life in one patient, which should encourage clinicians to follow up patients in the long term.


Subject(s)
Cell Cycle Proteins , Intellectual Disability , Microcephaly , Nerve Tissue Proteins , Adolescent , Ataxia , Cell Cycle Proteins/genetics , Child , Child, Preschool , Female , Humans , Intellectual Disability/diagnosis , Intellectual Disability/genetics , Male , Microcephaly/diagnosis , Microcephaly/genetics , Nerve Tissue Proteins/genetics , Young Adult
2.
J Med Genet ; 57(6): 389-399, 2020 06.
Article in English | MEDLINE | ID: mdl-32015000

ABSTRACT

BACKGROUND: Primary hereditary microcephaly (MCPH) comprises a large group of autosomal recessive disorders mainly affecting cortical development and resulting in a congenital impairment of brain growth. Despite the identification of >25 causal genes so far, it remains a challenge to distinguish between different MCPH forms at the clinical level. METHODS: 7 patients with newly identified mutations in CDK5RAP2 (MCPH3) were investigated by performing prospective, extensive and systematic clinical, MRI, psychomotor, neurosensory and cognitive examinations under similar conditions. RESULTS: All patients displayed neurosensory defects in addition to microcephaly. Small cochlea with incomplete partition type II was found in all cases and was associated with progressive deafness in 4 of them. Furthermore, the CDK5RAP2 protein was specifically identified in the developing cochlea from human fetal tissues. Microphthalmia was also present in all patients along with retinal pigmentation changes and lipofuscin deposits. Finally, hypothalamic anomalies consisting of interhypothalamic adhesions, a congenital midline defect usually associated with holoprosencephaly, was detected in 5 cases. CONCLUSION: This is the first report indicating that CDK5RAP2 not only governs brain size but also plays a role in ocular and cochlear development and is necessary for hypothalamic nuclear separation at the midline. Our data indicate that CDK5RAP2 should be considered as a potential gene associated with deafness and forme fruste of holoprosencephaly. These children should be given neurosensory follow-up to prevent additional comorbidities and allow them reaching their full educational potential. TRIAL REGISTRATION NUMBER: NCT01565005.


Subject(s)
Cell Cycle Proteins/genetics , Cochlear Diseases/genetics , Microcephaly/genetics , Nerve Tissue Proteins/genetics , Child , Child, Preschool , Cochlea/diagnostic imaging , Cochlea/metabolism , Cochlea/pathology , Cochlear Diseases/diagnostic imaging , Cochlear Diseases/pathology , Fanconi Anemia/genetics , Fanconi Anemia/pathology , Female , Humans , Hypothalamus/diagnostic imaging , Hypothalamus/pathology , Infant , Magnetic Resonance Imaging , Male , Microcephaly/diagnostic imaging , Microcephaly/pathology , Mutation , Neurogenesis/genetics , Pedigree , Retina/diagnostic imaging , Retina/pathology
3.
Hum Mutat ; 39(3): 319-332, 2018 03.
Article in English | MEDLINE | ID: mdl-29243349

ABSTRACT

Autosomal recessive microcephaly or microcephaly primary hereditary (MCPH) is a genetically heterogeneous neurodevelopmental disorder characterized by a reduction in brain volume, indirectly measured by an occipitofrontal circumference (OFC) 2 standard deviations or more below the age- and sex-matched mean (-2SD) at birth and -3SD after 6 months, and leading to intellectual disability of variable severity. The abnormal spindle-like microcephaly gene (ASPM), the human ortholog of the Drosophila melanogaster "abnormal spindle" gene (asp), encodes ASPM, a protein localized at the centrosome of apical neuroprogenitor cells and involved in spindle pole positioning during neurogenesis. Loss-of-function mutations in ASPM cause MCPH5, which affects the majority of all MCPH patients worldwide. Here, we report 47 unpublished patients from 39 families carrying 28 new ASPM mutations, and conduct an exhaustive review of the molecular, clinical, neuroradiological, and neuropsychological features of the 282 families previously reported (with 161 distinct ASPM mutations). Furthermore, we show that ASPM-related microcephaly is not systematically associated with intellectual deficiency and discuss the association between the structural brain defects (strong reduction in cortical volume and surface area) that modify the cortical map of these patients and their cognitive abilities.


Subject(s)
Microcephaly/genetics , Mutation/genetics , Nerve Tissue Proteins/genetics , Child, Preschool , Cognition , Cohort Studies , Family , Female , Genetic Association Studies , Geography , Humans , Infant , Magnetic Resonance Imaging , Male , Microcephaly/epidemiology
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