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DARS2 对于浦肯野细胞的存活是不可或缺的,并且可以预防小脑共济失调。

DARS2 is indispensable for Purkinje cell survival and protects against cerebellar ataxia.

机构信息

Institute for Mitochondrial Diseases and Aging, Medical Faculty, Cologne Excellence Cluster on Cellular Stress Responses in Aging-Associated Diseases (CECAD) and Centre for Molecular Medicine (CMMC), University of Cologne, Cologne D-50931 , Germany.

Department of Mitochondrial Biology, Max Planck Institute for Biology of Ageing, Cologne D-50931, Germany.

出版信息

Hum Mol Genet. 2020 Oct 10;29(17):2845-2854. doi: 10.1093/hmg/ddaa176.

Abstract

Leukoencephalopathy with brain stem and spinal cord involvement and lactate elevation disorder (LBSL) arises from mutations in mitochondrial aspartyl-tRNA synthetase (DARS2) gene. The disease has a childhood or juvenile-onset and is clinically characterized by cerebellar ataxia, cognitive decline and distinct morphological abnormalities upon magnetic resonance imaging. We previously demonstrated that neurons and not adult myelin-producing cells are specifically sensitive to DARS2 loss, hence likely the primary culprit in LBSL disorder. We used conditional Purkinje cell (PCs)-specific Dars2 deletion to elucidate further the cell-type-specific contribution of this class of neurons to the cerebellar impairment observed in LBSL. We show that DARS2 depletion causes a severe mitochondrial dysfunction concomitant with a massive loss of PCs by the age of 15 weeks, thereby rapidly deteriorating motor skills. Our findings conclusively show that DARS2 is indispensable for PC survival and highlights the central role of neuroinflammation in DARS2-related PC degeneration.

摘要

脑和脊髓受累伴乳酸性酸中毒和酮症的脑白质病(LBSL)是由线粒体天冬氨酰-tRNA 合成酶(DARS2)基因突变引起的。这种疾病在儿童或青少年期发病,临床上表现为小脑共济失调、认知能力下降以及磁共振成像上存在独特的形态学异常。我们之前的研究表明,神经元而不是产生髓鞘的成年细胞对 DARS2 的缺失特别敏感,因此可能是 LBSL 紊乱的主要罪魁祸首。我们使用条件性浦肯野细胞(PCs)特异性 Dars2 缺失进一步阐明了这类神经元对 LBSL 中观察到的小脑损伤的细胞类型特异性贡献。我们发现 DARS2 的耗竭导致严重的线粒体功能障碍,同时在 15 周龄时大量 PC 丢失,从而导致运动技能迅速恶化。我们的研究结果明确表明 DARS2 对 PC 的存活是不可或缺的,并强调了神经炎症在 DARS2 相关的 PC 变性中的核心作用。

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