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Vimar是一种通过Miro调控线粒体分裂的新型调节因子。

Vimar Is a Novel Regulator of Mitochondrial Fission through Miro.

作者信息

Ding Lianggong, Lei Ye, Han Yanping, Li Yuhong, Ji Xunming, Liu Lei

机构信息

State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University, Beijing, China.

Aging and Disease lab of Xuanwu Hospital and Beijing Institute for Brain Disorders, Capital Medical University, Youanmen, Beijing, China.

出版信息

PLoS Genet. 2016 Oct 7;12(10):e1006359. doi: 10.1371/journal.pgen.1006359. eCollection 2016 Oct.

Abstract

As fundamental processes in mitochondrial dynamics, mitochondrial fusion, fission and transport are regulated by several core components, including Miro. As an atypical Rho-like small GTPase with high molecular mass, the exchange of GDP/GTP in Miro may require assistance from a guanine nucleotide exchange factor (GEF). However, the GEF for Miro has not been identified. While studying mitochondrial morphology in Drosophila, we incidentally observed that the loss of vimar, a gene encoding an atypical GEF, enhanced mitochondrial fission under normal physiological conditions. Because Vimar could co-immunoprecipitate with Miro in vitro, we speculated that Vimar might be the GEF of Miro. In support of this hypothesis, a loss-of-function (LOF) vimar mutant rescued mitochondrial enlargement induced by a gain-of-function (GOF) Miro transgene; whereas a GOF vimar transgene enhanced Miro function. In addition, vimar lost its effect under the expression of a constitutively GTP-bound or GDP-bound Miro mutant background. These results indicate a genetic dependence of vimar on Miro. Moreover, we found that mitochondrial fission played a functional role in high-calcium induced necrosis, and a LOF vimar mutant rescued the mitochondrial fission defect and cell death. This result can also be explained by vimar's function through Miro, because Miro's effect on mitochondrial morphology is altered upon binding with calcium. In addition, a PINK1 mutant, which induced mitochondrial enlargement and had been considered as a Drosophila model of Parkinson's disease (PD), caused fly muscle defects, and the loss of vimar could rescue these defects. Furthermore, we found that the mammalian homolog of Vimar, RAP1GDS1, played a similar role in regulating mitochondrial morphology, suggesting a functional conservation of this GEF member. The Miro/Vimar complex may be a promising drug target for diseases in which mitochondrial fission and fusion are dysfunctional.

摘要

作为线粒体动力学的基本过程,线粒体融合、裂变和运输受包括米罗(Miro)在内的几个核心组件调控。作为一种非典型的高分子量类Rho小GTP酶,米罗中GDP/GTP的交换可能需要鸟嘌呤核苷酸交换因子(GEF)的协助。然而,米罗的GEF尚未被鉴定出来。在研究果蝇的线粒体形态时,我们偶然观察到,编码非典型GEF的基因vimar缺失会在正常生理条件下增强线粒体裂变。因为Vimar在体外能与米罗进行共免疫沉淀,我们推测Vimar可能是米罗的GEF。为支持这一假设,功能丧失(LOF)的vimar突变体能挽救功能获得(GOF)的米罗转基因诱导的线粒体肿大;而功能获得的vimar转基因增强了米罗的功能。此外,在组成型结合GTP或结合GDP的米罗突变体背景表达下,vimar失去了其作用。这些结果表明vimar在基因上依赖于米罗。此外,我们发现线粒体裂变在高钙诱导的坏死中起作用,功能丧失的vimar突变体能挽救线粒体裂变缺陷和细胞死亡。这个结果也可以通过vimar通过米罗发挥的功能来解释,因为米罗与钙结合后对线粒体形态的影响会改变。此外,一个诱导线粒体肿大且被认为是帕金森病(PD)果蝇模型的PINK1突变体导致果蝇肌肉缺陷,而vimar缺失能挽救这些缺陷。此外,我们发现Vimar的哺乳动物同源物RAP1GDS1在调节线粒体形态方面发挥了类似作用,表明这个GEF成员具有功能保守性。米罗/ Vimar复合物可能是线粒体裂变和融合功能失调疾病的一个有前景的药物靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6a80/5065127/7d6713b16c32/pgen.1006359.g001.jpg

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