Novel in vivo models of autosomal optic atrophy reveal conserved pathological changes in neuronal mitochondrial structure and function

IF 4.4 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Elin L. Strachan, Eugene T. Dillon, Mairéad Sullivan, Jeffrey C. Glennon, Amandine Peyrel, Jérôme Sarniguet, Kevin Dubois, Benjamin Delprat, Breandán N. Kennedy, Niamh C. O'Sullivan
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Abstract

Autosomal optic atrophy (AOA) is a form of hereditary optic neuropathy characterized by the irreversible and progressive degermation of the retinal ganglion cells. Most cases of AOA are associated with a single dominant mutation in OPA1, which encodes a protein required for fusion of the inner mitochondrial membrane. It is unclear how loss of OPA1 leads to neuronal death, and despite ubiquitous expression appears to disproportionately affect the RGCs. This study introduces two novel in vivo models of OPA1-mediated AOA, including the first developmentally viable vertebrate Opa1 knockout (KO). These models allow for the study of Opa1 loss in neurons, specifically RGCs. Though survival is significantly reduced in Opa1 deficient zebrafish and Drosophila, both models permit the study of viable larvae. Moreover, zebrafish Opa1 KO larvae show impaired visual function but unchanged locomotor function, indicating that retinal neurons are particularly sensitive to Opa1 loss. Proteomic profiling of both models reveals marked disruption in protein expression associated with mitochondrial function, consistent with an observed decrease in mitochondrial respiratory function. Similarly, mitochondrial fragmentation and disordered cristae organization were observed in neuronal axons in both models highlighting Opa1's highly conserved role in regulating mitochondrial morphology and function in neuronal axons. Importantly, in Opa1 deficient zebrafish, mitochondrial disruption and visual impairment precede degeneration of RGCs. These novel models mimic key features of AOA and provide valuable tools for therapeutic screening. Our findings suggest that therapies enhancing mitochondrial function may offer a potential treatment strategy for AOA.

Abstract Image

新的常染色体视神经萎缩的体内模型揭示了神经元线粒体结构和功能的保守病理变化
常染色体视神经萎缩(AOA)是遗传性视神经病变的一种形式,其特征是视网膜神经节细胞的不可逆和进行性变性。大多数AOA病例与单一显性突变的OPA1有关,该突变编码线粒体内膜融合所需的蛋白质。目前尚不清楚OPA1的缺失是如何导致神经元死亡的,尽管无处不在的表达似乎不成比例地影响了rgc。本研究介绍了两种新的Opa1介导的AOA体内模型,包括第一个发育可行的脊椎动物Opa1敲除(KO)。这些模型允许研究神经元,特别是RGCs中的Opa1缺失。尽管存在Opa1缺陷的斑马鱼和果蝇的存活率显著降低,但这两种模型都允许对可存活的幼虫进行研究。此外,斑马鱼Opa1 KO幼虫表现出视觉功能受损,但运动功能不变,这表明视网膜神经元对Opa1缺失特别敏感。两种模型的蛋白质组学分析显示,与线粒体功能相关的蛋白质表达明显中断,与观察到的线粒体呼吸功能下降一致。同样,在两种模型中,神经元轴突均观察到线粒体断裂和嵴组织紊乱,这表明Opa1在调节神经元轴突线粒体形态和功能方面具有高度保守性。重要的是,在缺乏Opa1的斑马鱼中,线粒体破坏和视力损害先于RGCs变性。这些新模型模拟了AOA的关键特征,并为治疗筛选提供了有价值的工具。我们的研究结果表明,增强线粒体功能的疗法可能为AOA提供一种潜在的治疗策略。
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来源期刊
The FASEB Journal
The FASEB Journal 生物-生化与分子生物学
CiteScore
9.20
自引率
2.10%
发文量
6243
审稿时长
3 months
期刊介绍: The FASEB Journal publishes international, transdisciplinary research covering all fields of biology at every level of organization: atomic, molecular, cell, tissue, organ, organismic and population. While the journal strives to include research that cuts across the biological sciences, it also considers submissions that lie within one field, but may have implications for other fields as well. The journal seeks to publish basic and translational research, but also welcomes reports of pre-clinical and early clinical research. In addition to research, review, and hypothesis submissions, The FASEB Journal also seeks perspectives, commentaries, book reviews, and similar content related to the life sciences in its Up Front section.
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