Autophagy compensates for defects in mitochondrial dynamics.
Compromising mitochondrial fusion or fission disrupts cellular homeostasis; however, the underlying mechanism(s) are not fully understood. The loss of C. elegans fzo-1MFN results in mitochondrial fragmentation, decreased mitochondrial membrane potential and the induction of the mitochondrial unfolde...
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doaj-5eb7912696fe4e9a82e7cd058c0493d62021-04-21T13:52:05ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042020-03-01163e100863810.1371/journal.pgen.1008638Autophagy compensates for defects in mitochondrial dynamics.Simon HaeusslerFabian KöhlerMichael WittingMadeleine F PremmStéphane G RollandChristian FischerLaetitia ChauveOlivia CasanuevaBarbara ConradtCompromising mitochondrial fusion or fission disrupts cellular homeostasis; however, the underlying mechanism(s) are not fully understood. The loss of C. elegans fzo-1MFN results in mitochondrial fragmentation, decreased mitochondrial membrane potential and the induction of the mitochondrial unfolded protein response (UPRmt). We performed a genome-wide RNAi screen for genes that when knocked-down suppress fzo-1MFN(lf)-induced UPRmt. Of the 299 genes identified, 143 encode negative regulators of autophagy, many of which have previously not been implicated in this cellular quality control mechanism. We present evidence that increased autophagic flux suppresses fzo-1MFN(lf)-induced UPRmt by increasing mitochondrial membrane potential rather than restoring mitochondrial morphology. Furthermore, we demonstrate that increased autophagic flux also suppresses UPRmt induction in response to a block in mitochondrial fission, but not in response to the loss of spg-7AFG3L2, which encodes a mitochondrial metalloprotease. Finally, we found that blocking mitochondrial fusion or fission leads to increased levels of certain types of triacylglycerols and that this is at least partially reverted by the induction of autophagy. We propose that the breakdown of these triacylglycerols through autophagy leads to elevated metabolic activity, thereby increasing mitochondrial membrane potential and restoring mitochondrial and cellular homeostasis.https://doi.org/10.1371/journal.pgen.1008638 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Simon Haeussler Fabian Köhler Michael Witting Madeleine F Premm Stéphane G Rolland Christian Fischer Laetitia Chauve Olivia Casanueva Barbara Conradt |
spellingShingle |
Simon Haeussler Fabian Köhler Michael Witting Madeleine F Premm Stéphane G Rolland Christian Fischer Laetitia Chauve Olivia Casanueva Barbara Conradt Autophagy compensates for defects in mitochondrial dynamics. PLoS Genetics |
author_facet |
Simon Haeussler Fabian Köhler Michael Witting Madeleine F Premm Stéphane G Rolland Christian Fischer Laetitia Chauve Olivia Casanueva Barbara Conradt |
author_sort |
Simon Haeussler |
title |
Autophagy compensates for defects in mitochondrial dynamics. |
title_short |
Autophagy compensates for defects in mitochondrial dynamics. |
title_full |
Autophagy compensates for defects in mitochondrial dynamics. |
title_fullStr |
Autophagy compensates for defects in mitochondrial dynamics. |
title_full_unstemmed |
Autophagy compensates for defects in mitochondrial dynamics. |
title_sort |
autophagy compensates for defects in mitochondrial dynamics. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS Genetics |
issn |
1553-7390 1553-7404 |
publishDate |
2020-03-01 |
description |
Compromising mitochondrial fusion or fission disrupts cellular homeostasis; however, the underlying mechanism(s) are not fully understood. The loss of C. elegans fzo-1MFN results in mitochondrial fragmentation, decreased mitochondrial membrane potential and the induction of the mitochondrial unfolded protein response (UPRmt). We performed a genome-wide RNAi screen for genes that when knocked-down suppress fzo-1MFN(lf)-induced UPRmt. Of the 299 genes identified, 143 encode negative regulators of autophagy, many of which have previously not been implicated in this cellular quality control mechanism. We present evidence that increased autophagic flux suppresses fzo-1MFN(lf)-induced UPRmt by increasing mitochondrial membrane potential rather than restoring mitochondrial morphology. Furthermore, we demonstrate that increased autophagic flux also suppresses UPRmt induction in response to a block in mitochondrial fission, but not in response to the loss of spg-7AFG3L2, which encodes a mitochondrial metalloprotease. Finally, we found that blocking mitochondrial fusion or fission leads to increased levels of certain types of triacylglycerols and that this is at least partially reverted by the induction of autophagy. We propose that the breakdown of these triacylglycerols through autophagy leads to elevated metabolic activity, thereby increasing mitochondrial membrane potential and restoring mitochondrial and cellular homeostasis. |
url |
https://doi.org/10.1371/journal.pgen.1008638 |
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