Department of Cell and Developmental Biology, Vanderbilt University, Nashville, TN 37232-8240, USA.
Proc Natl Acad Sci U S A. 2010 Aug 10;107(32):14460-5. doi: 10.1073/pnas.0910630107. Epub 2010 Jul 27.
Mitochondria are key regulators of cell viability and provide essential functions that protect against neurodegenerative disease. To develop a model for mitochondrial-dependent neurodegeneration in Caenorhabditis elegans, we used RNA interference (RNAi) and genetic ablation to knock down expression of enzymes in the Coenzyme Q (CoQ) biosynthetic pathway. CoQ is a required component of the ATP-producing electron transport chain in mitochondria. We found that reduced levels of CoQ result in a progressive uncoordinated (Unc) phenotype that is correlated with the appearance of degenerating GABA neurons. Both the Unc and degenerative phenotypes emerge during late larval development and progress in adults. Neuron classes in motor and sensory circuits that use other neurotransmitters (dopamine, acetylcholine, glutamate, serotonin) and body muscle cells were less sensitive to CoQ depletion. Our results indicate that the mechanism of GABA neuron degeneration is calcium-dependent and requires activation of the apoptotic gene, ced-4 (Apaf-1). A molecular cascade involving mitochondrial-initiated cell death is also consistent with our finding that GABA neuron degeneration requires the mitochondrial fission gene, drp-1. We conclude that the cell selectivity and developmental progression of CoQ deficiency in C. elegans indicate that this model may be useful for delineating the role of mitochondrial dysfunction in neurodegenerative disease.
线粒体是细胞活力的关键调节者,提供了对抗神经退行性疾病的基本功能。为了在秀丽隐杆线虫中建立一个依赖线粒体的神经退行性变模型,我们使用 RNA 干扰(RNAi)和遗传消融来敲低辅酶 Q(CoQ)生物合成途径中的酶的表达。CoQ 是线粒体中产生 ATP 的电子传递链所必需的组成部分。我们发现 CoQ 水平的降低导致进行性不协调(Unc)表型,这与退化的 GABA 神经元的出现有关。Unc 和退行性表型都在晚期幼虫发育过程中出现,并在成虫中进展。使用其他神经递质(多巴胺、乙酰胆碱、谷氨酸、血清素)的运动和感觉回路中的神经元类群以及身体肌肉细胞对 CoQ 耗竭的敏感性较低。我们的结果表明,GABA 神经元退化的机制是钙依赖性的,需要凋亡基因 ced-4(Apaf-1)的激活。涉及线粒体起始的细胞死亡的分子级联反应也与我们的发现一致,即 GABA 神经元退化需要线粒体分裂基因 drp-1。我们得出结论,秀丽隐杆线虫中 CoQ 缺乏的细胞选择性和发育进展表明,该模型可能有助于阐明线粒体功能障碍在神经退行性疾病中的作用。