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Respiratory Chain Complexes in Dynamic Mitochondria Display a Patchy Distribution in Life Cells

BACKGROUND: Mitochondria, the main suppliers of cellular energy, are dynamic organelles that fuse and divide frequently. Constraining these processes impairs mitochondrial is closely linked to certain neurodegenerative diseases. It is proposed that functional mitochondrial dynamics allows the exchan...

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Autores principales: Muster, Britta, Kohl, Wladislaw, Wittig, Ilka, Strecker, Valentina, Joos, Friederike, Haase, Winfried, Bereiter-Hahn, Jürgen, Busch, Karin
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2912852/
https://www.ncbi.nlm.nih.gov/pubmed/20689601
http://dx.doi.org/10.1371/journal.pone.0011910
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author Muster, Britta
Kohl, Wladislaw
Wittig, Ilka
Strecker, Valentina
Joos, Friederike
Haase, Winfried
Bereiter-Hahn, Jürgen
Busch, Karin
author_facet Muster, Britta
Kohl, Wladislaw
Wittig, Ilka
Strecker, Valentina
Joos, Friederike
Haase, Winfried
Bereiter-Hahn, Jürgen
Busch, Karin
author_sort Muster, Britta
collection PubMed
description BACKGROUND: Mitochondria, the main suppliers of cellular energy, are dynamic organelles that fuse and divide frequently. Constraining these processes impairs mitochondrial is closely linked to certain neurodegenerative diseases. It is proposed that functional mitochondrial dynamics allows the exchange of compounds thereby providing a rescue mechanism. METHODOLOGY/PRINCIPAL FINDINGS: The question discussed in this paper is whether fusion and fission of mitochondria in different cell lines result in re-localization of respiratory chain (RC) complexes and of the ATP synthase. This was addressed by fusing cells containing mitochondria with respiratory complexes labelled with different fluorescent proteins and resolving their time dependent re-localization in living cells. We found a complete reshuffling of RC complexes throughout the entire chondriome in single HeLa cells within 2–3 h by organelle fusion and fission. Polykaryons of fused cells completely re-mixed their RC complexes in 10–24 h in a progressive way. In contrast to the recently described homogeneous mixing of matrix-targeted proteins or outer membrane proteins, the distribution of RC complexes and ATP synthase in fused hybrid mitochondria, however, was not homogeneous but patterned. Thus, complete equilibration of respiratory chain complexes as integral inner mitochondrial membrane complexes is a slow process compared with matrix proteins probably limited by complete fusion. In co-expressing cells, complex II is more homogenously distributed than complex I and V, resp. Indeed, this result argues for higher mobility and less integration in supercomplexes. CONCLUSION/SIGNIFICANCE: Our results clearly demonstrate that mitochondrial fusion and fission dynamics favours the re-mixing of all RC complexes within the chondriome. This permanent mixing avoids a static situation with a fixed composition of RC complexes per mitochondrion.
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spelling pubmed-29128522010-08-04 Respiratory Chain Complexes in Dynamic Mitochondria Display a Patchy Distribution in Life Cells Muster, Britta Kohl, Wladislaw Wittig, Ilka Strecker, Valentina Joos, Friederike Haase, Winfried Bereiter-Hahn, Jürgen Busch, Karin PLoS One Research Article BACKGROUND: Mitochondria, the main suppliers of cellular energy, are dynamic organelles that fuse and divide frequently. Constraining these processes impairs mitochondrial is closely linked to certain neurodegenerative diseases. It is proposed that functional mitochondrial dynamics allows the exchange of compounds thereby providing a rescue mechanism. METHODOLOGY/PRINCIPAL FINDINGS: The question discussed in this paper is whether fusion and fission of mitochondria in different cell lines result in re-localization of respiratory chain (RC) complexes and of the ATP synthase. This was addressed by fusing cells containing mitochondria with respiratory complexes labelled with different fluorescent proteins and resolving their time dependent re-localization in living cells. We found a complete reshuffling of RC complexes throughout the entire chondriome in single HeLa cells within 2–3 h by organelle fusion and fission. Polykaryons of fused cells completely re-mixed their RC complexes in 10–24 h in a progressive way. In contrast to the recently described homogeneous mixing of matrix-targeted proteins or outer membrane proteins, the distribution of RC complexes and ATP synthase in fused hybrid mitochondria, however, was not homogeneous but patterned. Thus, complete equilibration of respiratory chain complexes as integral inner mitochondrial membrane complexes is a slow process compared with matrix proteins probably limited by complete fusion. In co-expressing cells, complex II is more homogenously distributed than complex I and V, resp. Indeed, this result argues for higher mobility and less integration in supercomplexes. CONCLUSION/SIGNIFICANCE: Our results clearly demonstrate that mitochondrial fusion and fission dynamics favours the re-mixing of all RC complexes within the chondriome. This permanent mixing avoids a static situation with a fixed composition of RC complexes per mitochondrion. Public Library of Science 2010-07-30 /pmc/articles/PMC2912852/ /pubmed/20689601 http://dx.doi.org/10.1371/journal.pone.0011910 Text en Muster 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
Muster, Britta
Kohl, Wladislaw
Wittig, Ilka
Strecker, Valentina
Joos, Friederike
Haase, Winfried
Bereiter-Hahn, Jürgen
Busch, Karin
Respiratory Chain Complexes in Dynamic Mitochondria Display a Patchy Distribution in Life Cells
title Respiratory Chain Complexes in Dynamic Mitochondria Display a Patchy Distribution in Life Cells
title_full Respiratory Chain Complexes in Dynamic Mitochondria Display a Patchy Distribution in Life Cells
title_fullStr Respiratory Chain Complexes in Dynamic Mitochondria Display a Patchy Distribution in Life Cells
title_full_unstemmed Respiratory Chain Complexes in Dynamic Mitochondria Display a Patchy Distribution in Life Cells
title_short Respiratory Chain Complexes in Dynamic Mitochondria Display a Patchy Distribution in Life Cells
title_sort respiratory chain complexes in dynamic mitochondria display a patchy distribution in life cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2912852/
https://www.ncbi.nlm.nih.gov/pubmed/20689601
http://dx.doi.org/10.1371/journal.pone.0011910
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