Regulation of ER-mitochondria contacts by Parkin via Mfn2

粒体自噬 帕金 MFN2型 细胞生物学 线粒体 泛素连接酶 线粒体融合 泛素 内质网 生物 线粒体分裂 自噬 化学 生物化学 线粒体DNA 疾病 帕金森病 细胞凋亡 病理 基因 医学
作者
Valentina Basso,Elena Marchesan,Caterina Peggion,Joy Chakraborty,Sophia von Stockum,Marta Giacomello,Denis Ottolini,Valentina Debattisti,Federico Caicci,Elisabetta Tasca,Valentina Pegoraro,C. Angelini,Angelo Antonini,Alessandro Bertoli,Marisa Brini,Elena Ziviani
出处
期刊:Pharmacological Research [Elsevier]
卷期号:138: 43-56 被引量:146
标识
DOI:10.1016/j.phrs.2018.09.006
摘要

Parkin, an E3 ubiquitin ligase and a Parkinson's disease (PD) related gene, translocates to impaired mitochondria and drives their elimination via autophagy, a process known as mitophagy. Mitochondrial pro-fusion protein Mitofusins (Mfn1 and Mfn2) were found to be a target for Parkin mediated ubiquitination. Mfns are transmembrane GTPase embedded in the outer membrane of mitochondria, which are required on adjacent mitochondria to mediate fusion. In mammals, Mfn2 also forms complexes that are capable of tethering mitochondria to endoplasmic reticulum (ER), a structural feature essential for mitochondrial energy metabolism, calcium (Ca2+) transfer between the organelles and Ca2+ dependent cell death. Despite its fundamental physiological role, the molecular mechanisms that control ER-mitochondria cross talk are obscure. Ubiquitination has recently emerged as a powerful tool to modulate protein function, via regulation of protein subcellular localization and protein ability to interact with other proteins. Ubiquitination is also a reversible mechanism, which can be actively controlled by opposing ubiquitination-deubiquitination events. In this work we found that in Parkin deficient cells and parkin mutant human fibroblasts, the tether between ER and mitochondria is decreased. We identified the site of Parkin dependent ubiquitination and showed that the non-ubiquitinatable Mfn2 mutant fails to restore ER-mitochondria physical and functional interaction. Finally, we took advantage of an established in vivo model of PD to demonstrate that manipulation of ER-mitochondria tethering by expressing an ER-mitochondria synthetic linker is sufficient to rescue the locomotor deficit associated to an in vivo Drosophila model of PD.

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