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形态学、行为学和细胞分析揭示了 Wolfram 综合征 wfs1a 和 wfs1b 斑马鱼突变系的不同表型。

Morphological, behavioral and cellular analyses revealed different phenotypes in Wolfram syndrome wfs1a and wfs1b zebrafish mutant lines.

机构信息

MMDN, Université Montpellier, EPHE, INSERM, Montpellier, France.

IES, Université Montpellier, CNRS, Montpellier, France.

出版信息

Hum Mol Genet. 2022 Aug 23;31(16):2711-2727. doi: 10.1093/hmg/ddac065.

Abstract

Wolfram syndrome (WS) is a rare genetic disease characterized by diabetes, optic atrophy and deafness. Patients die at 35 years of age, mainly from respiratory failure or dysphagia. Unfortunately, there is no treatment to block the progression of symptoms and there is an urgent need for adequate research models. Here, we report on the phenotypical characterization of two loss-of-function zebrafish mutant lines: wfs1aC825X and wfs1bW493X. We observed that wfs1a deficiency altered the size of the ear and the retina of the fish. We also documented a decrease in the expression level of unfolded protein response (UPR) genes in basal condition and in stress condition, i.e. after tunicamycin treatment. Interestingly, both mutants lead to a decrease in their visual function measured behaviorally. These deficits were associated with a decrease in the expression level of UPR genes in basal and stress conditions. Interestingly, basal, ATP-linked and maximal mitochondrial respirations were transiently decreased in the wfs1b mutant. Taken together, these zebrafish lines highlight the critical role of wfs1a and wfs1b in UPR, mitochondrial function and visual physiology. These models will be useful tools to better understand the cellular function of Wfs1 and to develop novel therapeutic approaches for WS.

摘要

沃尔夫勒姆综合征(WS)是一种罕见的遗传性疾病,其特征为糖尿病、视神经萎缩和耳聋。患者通常在 35 岁时因呼吸衰竭或吞咽困难而死亡。不幸的是,目前尚无治疗方法可以阻止症状的进展,因此迫切需要合适的研究模型。在这里,我们报告了两种功能丧失的斑马鱼突变体系:wfs1aC825X 和 wfs1bW493X 的表型特征。我们观察到 wfs1a 的缺失改变了鱼的耳朵和视网膜的大小。我们还记录了在基础条件和应激条件(即经衣霉素处理后)下未折叠蛋白反应(UPR)基因的表达水平降低。有趣的是,这两种突变体都导致其视觉功能在行为上的下降。这些缺陷与 UPR 基因在基础和应激条件下的表达水平降低有关。有趣的是,wfs1b 突变体的基础、ATP 连接和最大线粒体呼吸在短期内下降。总之,这些斑马鱼模型强调了 wfs1a 和 wfs1b 在 UPR、线粒体功能和视觉生理学中的关键作用。这些模型将是更好地理解 Wfs1 细胞功能和开发 WS 新治疗方法的有用工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/74b0/9402244/0157a8e55706/ddac065f1.jpg

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