DDX53的功能丧失突变与遗传性痉挛性截瘫样疾病相关

Xiangshu Yuan, Ya Wang, Xiyuan Li, Sheng Zhong, Danyi Zhou, Xianlong Lin, Maofeng Wang, Yanling Yang, Hezhi Fang
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摘要

DEAD-box解旋酶53 (DDX53)是DEAD-box蛋白RNA解旋酶家族的一员。与其他负责RNA代谢的家族成员不同,DDX53的生物学功能及其对人类状况的影响尚不清楚。在本研究中,我们发现21例DDX53位点的功能丧失变异患者,其中19例表现出神经系统疾病。值得注意的是,一名DDX53全长缺失突变的本地患者具有遗传性痉挛性截瘫样(hsp样)临床表现,包括下肢痉挛、智力残疾、行走障碍、视力障碍和侧脑室白质病变。生物信息学分析显示,DDX53主要在小脑皮层表达,可能是一种组织特异性RNA解旋酶。转录组分析显示,DDX53缺失影响了突触组织、神经元功能和神经肌肉连接等多个脑相关基因的表达。此外,RNA免疫沉淀测序(RIP-seq)分析显示,DDX53与176个基因相互作用,其中97个基因与神经功能的执行有关,特别是在细胞投射组织和神经系统发育的调节中。总的来说,虽然需要更具体的细胞或动物模型来充分了解DDX53在人脑中的功能作用,但我们首次报道了DDX53是维持神经元功能所必需的,并且DDX53的功能缺失突变可能由于神经系统中RNA代谢受损而导致HSP。
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Loss-of-function mutation in DDX53 associated with hereditary spastic paraplegia-like disorder
Abstract DEAD-box helicase 53 (DDX53) is a member of the DEAD-box protein family of RNA helicases. Unlike other family members that are responsible for RNA metabolism, the biological function of DDX53 and its impact on the human condition are unclear. Herein, We found 21 patients with loss-of-function variants at DDX53, of whom 19 patients exhibited neurological disorders. Notably, a local patient with a full-length DDX53 deletion mutation had hereditary spastic paraplegia-like (HSP-like) clinical manifestation with lower extremity spasticity, intellectual disability, walking disorder, visual impairment, and lateral ventricular white matter lesions. Bioinformatic analysis revealed that DDX53 was mainly expressed in the cerebellar cortex and may function as a tissue-specific RNA helicase. Transcriptome analysis showed that the expression of multiple brain-associated genes involved in synapse organization, neuron function, and neuromuscular junctions was affected by DDX53 depletion. Moreover, RNA immunoprecipitation sequencing (RIP-seq) analysis showed that DDX53 interacted with 176 genes, and 97 of these genes were associated with the execution of neurofunction, particularly in the regulation of cell projection organization and nervous system development. Collectively, although a more specified cell or animal model is required to fully understand the functional role of DDX53 in the human brain, we report for the first time that DDX53 is required for the maintenance of neuronal function and that loss-of-function mutations in DDX53 may cause HSP due to impaired RNA metabolism in the nervous system.
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