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Dymeclin deficiency causes postnatal microcephaly, hypomyelination and reticulum-to-Golgi trafficking defects in mice and humans

小头畸形 生物 高尔基体 内质网 髓鞘 少突胶质细胞 胼胝体 细胞生物学 突变体 内分泌学 神经科学 内科学 中枢神经系统 遗传学 基因 医学
作者
Nina Dupuis,Assia Fafouri,Aurélien Bayot,Manoj Kumar,Tifenn Lecharpentier,Gareth Ball,A. David Edwards,Véronique Bernard,Pascal Dournaud,Séverine Drunat,Marie Vermelle-Andrzejewski,Catheline Vilain,Marc Abramowicz,Julie Désir,Jacky Bonaventure,Nelly Gareil,Gaëlle Boncompain,Zsolt Csaba,Franck Perez,Sandrine Passemard,Pierre Gressèns,Vincent El Ghouzzi
出处
期刊:Human Molecular Genetics [Oxford University Press]
卷期号:24 (10): 2771-2783 被引量:28
标识
DOI:10.1093/hmg/ddv038
摘要

Dymeclin is a Golgi-associated protein whose deficiency causes Dyggve–Melchior–Clausen syndrome (DMC, MIM #223800), a rare recessively inherited spondyloepimetaphyseal dysplasia consistently associated with postnatal microcephaly and intellectual disability. While the skeletal phenotype of DMC patients has been extensively described, very little is known about their cerebral anomalies, which result in brain growth defects and cognitive dysfunction. We used Dymeclin-deficient mice to determine the cause of microcephaly and to identify defective mechanisms at the cellular level. Brain weight and volume were reduced in all mutant mice from postnatal day 5 onward. Mutant mice displayed a narrowing of the frontal cortex, although cortical layers were normally organized. Interestingly, the corpus callosum was markedly thinner, a characteristic we also identified in DMC patients. Consistent with this, the myelin sheath was thinner, less compact and not properly rolled, while the number of mature oligodendrocytes and their ability to produce myelin basic protein were significantly decreased. Finally, cortical neurons from mutant mice and primary fibroblasts from DMC patients displayed substantially delayed endoplasmic reticulum to Golgi trafficking, which could be fully rescued upon Dymeclin re-expression. These findings indicate that Dymeclin is crucial for proper myelination and anterograde neuronal trafficking, two processes that are highly active during postnatal brain maturation.

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