Institute for Genetics, Cologne Excellence Cluster on Cellular Stress Responses in Aging-Associated Diseases (CECAD), Center for Molecular Medicine (CMMC), University of Cologne, 50931 Cologne, Germany.
Nijmegen Center for Mitochondrial Disorders, Radboud University Medical Center, 6525 GA Nijmegen, the Netherlands.
Mol Cell. 2016 Oct 6;64(1):148-162. doi: 10.1016/j.molcel.2016.08.020. Epub 2016 Sep 15.
Mutations in subunits of mitochondrial m-AAA proteases in the inner membrane cause neurodegeneration in spinocerebellar ataxia (SCA28) and hereditary spastic paraplegia (HSP7). m-AAA proteases preserve mitochondrial proteostasis, mitochondrial morphology, and efficient OXPHOS activity, but the cause for neuronal loss in disease is unknown. We have determined the neuronal interactome of m-AAA proteases in mice and identified a complex with C2ORF47 (termed MAIP1), which counteracts cell death by regulating the assembly of the mitochondrial Ca uniporter MCU. While MAIP1 assists biogenesis of the MCU subunit EMRE, the m-AAA protease degrades non-assembled EMRE and ensures efficient assembly of gatekeeper subunits with MCU. Loss of the m-AAA protease results in accumulation of constitutively active MCU-EMRE channels lacking gatekeeper subunits in neuronal mitochondria and facilitates mitochondrial Ca overload, mitochondrial permeability transition pore opening, and neuronal death. Together, our results explain neuronal loss in m-AAA protease deficiency by deregulated mitochondrial Ca homeostasis.
线粒体 m-AAA 蛋白酶亚基在细胞膜内的突变导致脊髓小脑共济失调 (SCA28) 和遗传性痉挛性截瘫 (HSP7) 的神经退行性变。m-AAA 蛋白酶维持线粒体蛋白质稳态、线粒体形态和有效的 OXPHOS 活性,但疾病中神经元丧失的原因尚不清楚。我们已经确定了小鼠中线粒体 m-AAA 蛋白酶的神经元相互作用组,并鉴定出一个与 C2ORF47(称为 MAIP1)的复合物,该复合物通过调节线粒体钙单向转运体 MCU 的组装来抵抗细胞死亡。虽然 MAIP1 协助 MCU 亚基 EMRE 的生物发生,但 m-AAA 蛋白酶会降解未组装的 EMRE,并确保与 MCU 组装有效的门控亚基。m-AAA 蛋白酶的缺失导致神经元线粒体中缺乏门控亚基的组成型活性 MCU-EMRE 通道的积累,并促进线粒体钙超载、线粒体通透性转换孔开放和神经元死亡。总之,我们的结果通过失调的线粒体钙稳态解释了 m-AAA 蛋白酶缺乏症中的神经元丧失。
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