Mitochondrial structure, function and dynamics are temporally controlled by c-Myc.

Although the c-Myc (Myc) oncoprotein controls mitochondrial biogenesis and multiple enzymes involved in oxidative phosphorylation (OXPHOS), the coordination of these events and the mechanistic underpinnings of their regulation remain largely unexplored. We show here that re-expression of Myc in myc-...

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Main Authors: J Anthony Graves, Yudong Wang, Sunder Sims-Lucas, Edward Cherok, Kristi Rothermund, Maria F Branca, Jennifer Elster, Donna Beer-Stolz, Bennett Van Houten, Jerry Vockley, Edward V Prochownik
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3357432?pdf=render
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spelling doaj-0d1be3b02bfb4271b501c310e31c86fc2020-11-25T02:32:14ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0175e3769910.1371/journal.pone.0037699Mitochondrial structure, function and dynamics are temporally controlled by c-Myc.J Anthony GravesYudong WangSunder Sims-LucasEdward CherokKristi RothermundMaria F BrancaJennifer ElsterDonna Beer-StolzBennett Van HoutenJerry VockleyEdward V ProchownikAlthough the c-Myc (Myc) oncoprotein controls mitochondrial biogenesis and multiple enzymes involved in oxidative phosphorylation (OXPHOS), the coordination of these events and the mechanistic underpinnings of their regulation remain largely unexplored. We show here that re-expression of Myc in myc-/- fibroblasts is accompanied by a gradual accumulation of mitochondrial biomass and by increases in membrane polarization and mitochondrial fusion. A correction of OXPHOS deficiency is also seen, although structural abnormalities in electron transport chain complexes (ETC) are not entirely normalized. Conversely, the down-regulation of Myc leads to a gradual decrease in mitochondrial mass and a more rapid loss of fusion and membrane potential. Increases in the levels of proteins specifically involved in mitochondrial fission and fusion support the idea that Myc affects mitochondrial mass by influencing both of these processes, albeit favoring the latter. The ETC defects that persist following Myc restoration may represent metabolic adaptations, as mitochondrial function is re-directed away from producing ATP to providing a source of metabolic precursors demanded by the transformed cell.http://europepmc.org/articles/PMC3357432?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author J Anthony Graves
Yudong Wang
Sunder Sims-Lucas
Edward Cherok
Kristi Rothermund
Maria F Branca
Jennifer Elster
Donna Beer-Stolz
Bennett Van Houten
Jerry Vockley
Edward V Prochownik
spellingShingle J Anthony Graves
Yudong Wang
Sunder Sims-Lucas
Edward Cherok
Kristi Rothermund
Maria F Branca
Jennifer Elster
Donna Beer-Stolz
Bennett Van Houten
Jerry Vockley
Edward V Prochownik
Mitochondrial structure, function and dynamics are temporally controlled by c-Myc.
PLoS ONE
author_facet J Anthony Graves
Yudong Wang
Sunder Sims-Lucas
Edward Cherok
Kristi Rothermund
Maria F Branca
Jennifer Elster
Donna Beer-Stolz
Bennett Van Houten
Jerry Vockley
Edward V Prochownik
author_sort J Anthony Graves
title Mitochondrial structure, function and dynamics are temporally controlled by c-Myc.
title_short Mitochondrial structure, function and dynamics are temporally controlled by c-Myc.
title_full Mitochondrial structure, function and dynamics are temporally controlled by c-Myc.
title_fullStr Mitochondrial structure, function and dynamics are temporally controlled by c-Myc.
title_full_unstemmed Mitochondrial structure, function and dynamics are temporally controlled by c-Myc.
title_sort mitochondrial structure, function and dynamics are temporally controlled by c-myc.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2012-01-01
description Although the c-Myc (Myc) oncoprotein controls mitochondrial biogenesis and multiple enzymes involved in oxidative phosphorylation (OXPHOS), the coordination of these events and the mechanistic underpinnings of their regulation remain largely unexplored. We show here that re-expression of Myc in myc-/- fibroblasts is accompanied by a gradual accumulation of mitochondrial biomass and by increases in membrane polarization and mitochondrial fusion. A correction of OXPHOS deficiency is also seen, although structural abnormalities in electron transport chain complexes (ETC) are not entirely normalized. Conversely, the down-regulation of Myc leads to a gradual decrease in mitochondrial mass and a more rapid loss of fusion and membrane potential. Increases in the levels of proteins specifically involved in mitochondrial fission and fusion support the idea that Myc affects mitochondrial mass by influencing both of these processes, albeit favoring the latter. The ETC defects that persist following Myc restoration may represent metabolic adaptations, as mitochondrial function is re-directed away from producing ATP to providing a source of metabolic precursors demanded by the transformed cell.
url http://europepmc.org/articles/PMC3357432?pdf=render
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