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Mfn1 structures reveal nucleotide-triggered dimerization critical for mitochondrial fusion

Mitochondria are double-membrane organelles with varying shapes influenced by metabolic conditions, developmental stage, and environmental stimuli(1–4). Their dynamic morphology is realized through regulated and balanced fusion and fission processes(5, 6). Fusion is crucial for the health and physio...

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Autores principales: Cao, Yu-Lu, Meng, Shuxia, Chen, Yang, Feng, Jian-Xiong, Gu, Dong-Dong, Yu, Bing, Li, Yu-Jie, Yang, Jin-Yu, Liao, Shuang, Chan, David C., Gao, Song
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5319402/
https://www.ncbi.nlm.nih.gov/pubmed/28114303
http://dx.doi.org/10.1038/nature21077
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author Cao, Yu-Lu
Meng, Shuxia
Chen, Yang
Feng, Jian-Xiong
Gu, Dong-Dong
Yu, Bing
Li, Yu-Jie
Yang, Jin-Yu
Liao, Shuang
Chan, David C.
Gao, Song
author_facet Cao, Yu-Lu
Meng, Shuxia
Chen, Yang
Feng, Jian-Xiong
Gu, Dong-Dong
Yu, Bing
Li, Yu-Jie
Yang, Jin-Yu
Liao, Shuang
Chan, David C.
Gao, Song
author_sort Cao, Yu-Lu
collection PubMed
description Mitochondria are double-membrane organelles with varying shapes influenced by metabolic conditions, developmental stage, and environmental stimuli(1–4). Their dynamic morphology is realized through regulated and balanced fusion and fission processes(5, 6). Fusion is crucial for the health and physiological functions of mitochondria, including complementation of damaged mitochondrial DNAs and maintenance of membrane potential(6–8). Mitofusins (Mfns) are dynamin-related GTPases essential for mitochondrial fusion(9, 10). They are embedded in the mitochondrial outer membrane and thought to fuse adjacent mitochondria via concerted oligomerization and GTP hydrolysis(11–13). However, the molecular mechanisms behind this process remains elusive. Here we present crystal structures of engineered human Mfn1 containing the GTPase domain and a helical domain in different stages of GTP hydrolysis. The helical domain is composed of elements from widely dispersed sequence regions of Mfn1 and resembles the Neck of the bacterial dynamin-like protein. The structures reveal unique features of its catalytic machinery and explain how GTP binding induces conformational changes to promote G domain dimerization in the transition state. Disruption of G domain dimerization abolishes the fusogenic activity of Mfn1. Moreover, a conserved aspartate trigger was found in Mfn1 to affect mitochondrial elongation, likely through a GTP-loading-dependent domain rearrangement. Based on these results, we propose a mechanistic model for Mfn1-mediated mitochondrial tethering. Our study provides important insights in the molecular basis of mitochondrial fusion and mitofusin-related human neuromuscular disorders(14).
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spelling pubmed-53194022017-07-23 Mfn1 structures reveal nucleotide-triggered dimerization critical for mitochondrial fusion Cao, Yu-Lu Meng, Shuxia Chen, Yang Feng, Jian-Xiong Gu, Dong-Dong Yu, Bing Li, Yu-Jie Yang, Jin-Yu Liao, Shuang Chan, David C. Gao, Song Nature Article Mitochondria are double-membrane organelles with varying shapes influenced by metabolic conditions, developmental stage, and environmental stimuli(1–4). Their dynamic morphology is realized through regulated and balanced fusion and fission processes(5, 6). Fusion is crucial for the health and physiological functions of mitochondria, including complementation of damaged mitochondrial DNAs and maintenance of membrane potential(6–8). Mitofusins (Mfns) are dynamin-related GTPases essential for mitochondrial fusion(9, 10). They are embedded in the mitochondrial outer membrane and thought to fuse adjacent mitochondria via concerted oligomerization and GTP hydrolysis(11–13). However, the molecular mechanisms behind this process remains elusive. Here we present crystal structures of engineered human Mfn1 containing the GTPase domain and a helical domain in different stages of GTP hydrolysis. The helical domain is composed of elements from widely dispersed sequence regions of Mfn1 and resembles the Neck of the bacterial dynamin-like protein. The structures reveal unique features of its catalytic machinery and explain how GTP binding induces conformational changes to promote G domain dimerization in the transition state. Disruption of G domain dimerization abolishes the fusogenic activity of Mfn1. Moreover, a conserved aspartate trigger was found in Mfn1 to affect mitochondrial elongation, likely through a GTP-loading-dependent domain rearrangement. Based on these results, we propose a mechanistic model for Mfn1-mediated mitochondrial tethering. Our study provides important insights in the molecular basis of mitochondrial fusion and mitofusin-related human neuromuscular disorders(14). 2017-01-23 2017-02-16 /pmc/articles/PMC5319402/ /pubmed/28114303 http://dx.doi.org/10.1038/nature21077 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Cao, Yu-Lu
Meng, Shuxia
Chen, Yang
Feng, Jian-Xiong
Gu, Dong-Dong
Yu, Bing
Li, Yu-Jie
Yang, Jin-Yu
Liao, Shuang
Chan, David C.
Gao, Song
Mfn1 structures reveal nucleotide-triggered dimerization critical for mitochondrial fusion
title Mfn1 structures reveal nucleotide-triggered dimerization critical for mitochondrial fusion
title_full Mfn1 structures reveal nucleotide-triggered dimerization critical for mitochondrial fusion
title_fullStr Mfn1 structures reveal nucleotide-triggered dimerization critical for mitochondrial fusion
title_full_unstemmed Mfn1 structures reveal nucleotide-triggered dimerization critical for mitochondrial fusion
title_short Mfn1 structures reveal nucleotide-triggered dimerization critical for mitochondrial fusion
title_sort mfn1 structures reveal nucleotide-triggered dimerization critical for mitochondrial fusion
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5319402/
https://www.ncbi.nlm.nih.gov/pubmed/28114303
http://dx.doi.org/10.1038/nature21077
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