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GSK3beta-Mediated Drp1 Phosphorylation Induced Elongated Mitochondrial Morphology against Oxidative Stress

Multiple phosphorylation sites of Drp1 have been characterized for their functional importance. However, the functional consequence of GSK3beta-mediated phosphorylation of Drp1 remains unclear. In this report, we pinpointed 11 Serine/Threonine sites spanning from residue 634∼736 of the GED domain an...

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Autores principales: Chou, Chia-Hua, Lin, Ching-Chih, Yang, Ming-Chang, Wei, Chih-Chang, Liao, Huei-De, Lin, Run-Chin, Tu, Wen-Yu, Kao, Tsung-Chieh, Hsu, Ching-Mei, Cheng, Jiin-Tsuey, Chou, An-Kuo, Lee, Chu-I, Loh, Joon-Khim, Howng, Shen-Long, Hong, Yi-Ren
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3502545/
https://www.ncbi.nlm.nih.gov/pubmed/23185298
http://dx.doi.org/10.1371/journal.pone.0049112
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author Chou, Chia-Hua
Lin, Ching-Chih
Yang, Ming-Chang
Wei, Chih-Chang
Liao, Huei-De
Lin, Run-Chin
Tu, Wen-Yu
Kao, Tsung-Chieh
Hsu, Ching-Mei
Cheng, Jiin-Tsuey
Chou, An-Kuo
Lee, Chu-I
Loh, Joon-Khim
Howng, Shen-Long
Hong, Yi-Ren
author_facet Chou, Chia-Hua
Lin, Ching-Chih
Yang, Ming-Chang
Wei, Chih-Chang
Liao, Huei-De
Lin, Run-Chin
Tu, Wen-Yu
Kao, Tsung-Chieh
Hsu, Ching-Mei
Cheng, Jiin-Tsuey
Chou, An-Kuo
Lee, Chu-I
Loh, Joon-Khim
Howng, Shen-Long
Hong, Yi-Ren
author_sort Chou, Chia-Hua
collection PubMed
description Multiple phosphorylation sites of Drp1 have been characterized for their functional importance. However, the functional consequence of GSK3beta-mediated phosphorylation of Drp1 remains unclear. In this report, we pinpointed 11 Serine/Threonine sites spanning from residue 634∼736 of the GED domain and robustly confirmed Drp1 Ser693 as a novel GSK3beta phosphorylation site. Our results suggest that GSK3beta-mediated phosphorylation at Ser693 does cause a dramatic decrease of GTPase activity; in contrast, GSK3beta-mediated phosphorylation at Ser693 appears not to affect Drp1 inter-/intra-molecular interactions. After identifying Ser693 as a GSK3beta phosphorylation site, we also determined that K679 is crucial for GSK3beta-binding, which strongly suggests that Drp1 is a novel substrate for GSK3beta. Thereafter, we found that overexpressed S693D, but not S693A mutant, caused an elongated mitochondrial morphology which is similar to that of K38A, S637D and K679A mutants. Interestedly, using H89 and LiCl to inhibit PKA and GSK3beta signaling, respectively, it appears that a portion of the elongated mitochondria switched to a fragmented phenotype. In investigating the biofunctionality of phosphorylation sites within the GED domain, cells overexpressing Drp1 S693D and S637D, but not S693A, showed an acquired resistance to H(2)O(2)-induced mitochondrial fragmentation and ensuing apoptosis, which affected cytochrome c, capase-3, -7, and PARP, but not LC3B, Atg-5, Beclin-1 and Bcl2 expressions. These results also showed that the S693D group is more effective in protecting both non-neuronal and neuronal cells from apoptotic death than the S637D group. Altogether, our data suggest that GSK3beta-mediated phosphorylation at Ser693 of Drp1 may be associated with mitochondrial elongation via down-regulating apoptosis, but not autophagy upon H(2)O(2) insult.
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spelling pubmed-35025452012-11-26 GSK3beta-Mediated Drp1 Phosphorylation Induced Elongated Mitochondrial Morphology against Oxidative Stress Chou, Chia-Hua Lin, Ching-Chih Yang, Ming-Chang Wei, Chih-Chang Liao, Huei-De Lin, Run-Chin Tu, Wen-Yu Kao, Tsung-Chieh Hsu, Ching-Mei Cheng, Jiin-Tsuey Chou, An-Kuo Lee, Chu-I Loh, Joon-Khim Howng, Shen-Long Hong, Yi-Ren PLoS One Research Article Multiple phosphorylation sites of Drp1 have been characterized for their functional importance. However, the functional consequence of GSK3beta-mediated phosphorylation of Drp1 remains unclear. In this report, we pinpointed 11 Serine/Threonine sites spanning from residue 634∼736 of the GED domain and robustly confirmed Drp1 Ser693 as a novel GSK3beta phosphorylation site. Our results suggest that GSK3beta-mediated phosphorylation at Ser693 does cause a dramatic decrease of GTPase activity; in contrast, GSK3beta-mediated phosphorylation at Ser693 appears not to affect Drp1 inter-/intra-molecular interactions. After identifying Ser693 as a GSK3beta phosphorylation site, we also determined that K679 is crucial for GSK3beta-binding, which strongly suggests that Drp1 is a novel substrate for GSK3beta. Thereafter, we found that overexpressed S693D, but not S693A mutant, caused an elongated mitochondrial morphology which is similar to that of K38A, S637D and K679A mutants. Interestedly, using H89 and LiCl to inhibit PKA and GSK3beta signaling, respectively, it appears that a portion of the elongated mitochondria switched to a fragmented phenotype. In investigating the biofunctionality of phosphorylation sites within the GED domain, cells overexpressing Drp1 S693D and S637D, but not S693A, showed an acquired resistance to H(2)O(2)-induced mitochondrial fragmentation and ensuing apoptosis, which affected cytochrome c, capase-3, -7, and PARP, but not LC3B, Atg-5, Beclin-1 and Bcl2 expressions. These results also showed that the S693D group is more effective in protecting both non-neuronal and neuronal cells from apoptotic death than the S637D group. Altogether, our data suggest that GSK3beta-mediated phosphorylation at Ser693 of Drp1 may be associated with mitochondrial elongation via down-regulating apoptosis, but not autophagy upon H(2)O(2) insult. Public Library of Science 2012-11-20 /pmc/articles/PMC3502545/ /pubmed/23185298 http://dx.doi.org/10.1371/journal.pone.0049112 Text en © 2012 Chou et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Chou, Chia-Hua
Lin, Ching-Chih
Yang, Ming-Chang
Wei, Chih-Chang
Liao, Huei-De
Lin, Run-Chin
Tu, Wen-Yu
Kao, Tsung-Chieh
Hsu, Ching-Mei
Cheng, Jiin-Tsuey
Chou, An-Kuo
Lee, Chu-I
Loh, Joon-Khim
Howng, Shen-Long
Hong, Yi-Ren
GSK3beta-Mediated Drp1 Phosphorylation Induced Elongated Mitochondrial Morphology against Oxidative Stress
title GSK3beta-Mediated Drp1 Phosphorylation Induced Elongated Mitochondrial Morphology against Oxidative Stress
title_full GSK3beta-Mediated Drp1 Phosphorylation Induced Elongated Mitochondrial Morphology against Oxidative Stress
title_fullStr GSK3beta-Mediated Drp1 Phosphorylation Induced Elongated Mitochondrial Morphology against Oxidative Stress
title_full_unstemmed GSK3beta-Mediated Drp1 Phosphorylation Induced Elongated Mitochondrial Morphology against Oxidative Stress
title_short GSK3beta-Mediated Drp1 Phosphorylation Induced Elongated Mitochondrial Morphology against Oxidative Stress
title_sort gsk3beta-mediated drp1 phosphorylation induced elongated mitochondrial morphology against oxidative stress
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3502545/
https://www.ncbi.nlm.nih.gov/pubmed/23185298
http://dx.doi.org/10.1371/journal.pone.0049112
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