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A Select Subset of Electron Transport Chain Genes Associated with Optic Atrophy Link Mitochondria to Axon Regeneration in Caenorhabditis elegans

机译:秀丽隐杆线虫视神经萎缩链接线粒体与轴突再生相关的电子转运链基因的选择子集。

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摘要

The role of mitochondria within injured neurons is an area of active interest since these organelles are vital for the production of cellular energy in the form of ATP. Using mechanosensory neurons of the nematode Caenorhabditis elegans to test regeneration after neuronal injury in vivo, we surveyed genes related to mitochondrial function for effects on axon regrowth after laser axotomy. Genes involved in mitochondrial transport, calcium uptake, mitophagy, or fission and fusion were largely dispensable for axon regrowth, with the exception of eat-3/Opa1. Surprisingly, many genes encoding components of the electron transport chain were dispensable for regrowth, except for the iron-sulfur proteins gas-1, nduf-2.2, nduf-7, and isp-1, and the putative oxidoreductase rad-8. In these mutants, axonal development was essentially normal and axons responded normally to injury by forming regenerative growth cones, but were impaired in subsequent axon extension. Overexpression of nduf-2.2 or isp-1 was sufficient to enhance regrowth, suggesting that mitochondrial function is rate-limiting in axon regeneration. Moreover, loss of function in isp-1 reduced the enhanced regeneration caused by either a gain-of-function mutation in the calcium channel EGL-19 or overexpression of the MAP kinase DLK-1. While the cellular function of RAD-8 remains unclear, our genetic analyses place rad-8 in the same pathway as other electron transport genes in axon regeneration. Unexpectedly, rad-8 regrowth defects were suppressed by altered function in the ubiquinone biosynthesis gene clk-1. Furthermore, we found that inhibition of the mitochondrial unfolded protein response via deletion of atfs-1 suppressed the defective regrowth in nduf-2.2 mutants. Together, our data indicate that while axon regeneration is not significantly affected by general dysfunction of cellular respiration, it is sensitive to the proper functioning of a select subset of electron transport chain genes, or to the cellular adaptations used by neurons under conditions of injury.
机译:线粒体在受损神经元中的作用是一个令人感兴趣的领域,因为这些细胞器对于以ATP形式产生细胞能量至关重要。使用线虫秀丽隐杆线虫的机械感觉神经元测试体内神经元损伤后的再生,我们调查了与线粒体功能相关的基因对激光轴切术后轴突再生的影响。除eat-3 / Opa1外,参与线粒体运输,钙摄取,线粒体分裂或融合的基因在轴突再生中是非常重要的。出乎意料的是,除了铁硫蛋白gas-1,nduf-2.2,nduf-7和isp-1以及假定的氧化还原酶rad-8外,许多编码电子传输链成分的基因都可再生。在这些突变体中,轴突发育基本上是正常的,并且轴突通过形成再生性生长锥而对损伤做出正常反应,但是在随后的轴突延伸中受损。 nduf-2.2或isp-1的过表达足以增强再生长,表明线粒体功能在轴突再生中是限速的。此外,isp-1中的功能丧失减少了钙通道EGL-19中功能获得性突变或MAP激酶DLK-1过表达引起的增强再生。虽然尚不清楚RA​​D-8的细胞功能,但我们的遗传分析将rad-8与轴突再生中的其他电子转运基因置于相同的途径。出乎意料的是,rad-8再生缺陷被泛醌生物合成基因clk-1的功能改变所抑制。此外,我们发现通过删除atfs-1抑制线粒体未折叠的蛋白应答,可抑制nduf-2.2突变体中有缺陷的再生长。在一起,我们的数据表明虽然轴突再生不受细胞呼吸的一般功能障碍的显着影响,但对电子转运链基因的选定子集的正常功能或损伤条件下神经元使用的细胞适应性敏感。

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