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Redox regulation of GRPEL2 nucleotide exchange factor for mitochondrial HSP70 chaperone

Mitochondria are central organelles to cellular metabolism. Their function relies largely on nuclear-encoded proteins that must be imported from the cytosol, and thus the protein import pathways are important for the maintenance of mitochondrial proteostasis. Mitochondrial HSP70 (mtHsp70) is a key c...

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Autores principales: Konovalova, Svetlana, Liu, Xiaonan, Manjunath, Pooja, Baral, Sundar, Neupane, Nirajan, Hilander, Taru, Yang, Yang, Balboa, Diego, Terzioglu, Mügen, Euro, Liliya, Varjosalo, Markku, Tyynismaa, Henna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6089081/
https://www.ncbi.nlm.nih.gov/pubmed/30098457
http://dx.doi.org/10.1016/j.redox.2018.07.024
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author Konovalova, Svetlana
Liu, Xiaonan
Manjunath, Pooja
Baral, Sundar
Neupane, Nirajan
Hilander, Taru
Yang, Yang
Balboa, Diego
Terzioglu, Mügen
Euro, Liliya
Varjosalo, Markku
Tyynismaa, Henna
author_facet Konovalova, Svetlana
Liu, Xiaonan
Manjunath, Pooja
Baral, Sundar
Neupane, Nirajan
Hilander, Taru
Yang, Yang
Balboa, Diego
Terzioglu, Mügen
Euro, Liliya
Varjosalo, Markku
Tyynismaa, Henna
author_sort Konovalova, Svetlana
collection PubMed
description Mitochondria are central organelles to cellular metabolism. Their function relies largely on nuclear-encoded proteins that must be imported from the cytosol, and thus the protein import pathways are important for the maintenance of mitochondrial proteostasis. Mitochondrial HSP70 (mtHsp70) is a key component in facilitating the translocation of proteins through the inner membrane into the mitochondrial matrix. Its protein folding cycle is regulated by the nucleotide-exchange factor GrpE, which triggers the release of folded proteins by ATP rebinding. Vertebrates have two mitochondrial GrpE paralogs, GRPEL1 and 2, but without clearly defined roles. Using BioID proximity labeling to identify potential binding partners of the GRPELs in the mitochondrial matrix, we obtained results supporting a model where both GRPELs regulate mtHsp70 as homodimers. We show that GRPEL2 is not essential in human cultured cells, and its absence does not prevent mitochondrial protein import. Instead we find that GRPEL2 is redox regulated in oxidative stress. In the presence of hydrogen peroxide, GRPEL2 forms dimers through intermolecular disulfide bonds in which Cys87 is the thiol switch. We propose that the dimerization of GRPEL2 may activate the folding machinery responsible for protein import into mitochondrial matrix or enhance the chaperone activity of mtHSP70, thus protecting mitochondrial proteostasis in oxidative stress.
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spelling pubmed-60890812018-08-14 Redox regulation of GRPEL2 nucleotide exchange factor for mitochondrial HSP70 chaperone Konovalova, Svetlana Liu, Xiaonan Manjunath, Pooja Baral, Sundar Neupane, Nirajan Hilander, Taru Yang, Yang Balboa, Diego Terzioglu, Mügen Euro, Liliya Varjosalo, Markku Tyynismaa, Henna Redox Biol Research Paper Mitochondria are central organelles to cellular metabolism. Their function relies largely on nuclear-encoded proteins that must be imported from the cytosol, and thus the protein import pathways are important for the maintenance of mitochondrial proteostasis. Mitochondrial HSP70 (mtHsp70) is a key component in facilitating the translocation of proteins through the inner membrane into the mitochondrial matrix. Its protein folding cycle is regulated by the nucleotide-exchange factor GrpE, which triggers the release of folded proteins by ATP rebinding. Vertebrates have two mitochondrial GrpE paralogs, GRPEL1 and 2, but without clearly defined roles. Using BioID proximity labeling to identify potential binding partners of the GRPELs in the mitochondrial matrix, we obtained results supporting a model where both GRPELs regulate mtHsp70 as homodimers. We show that GRPEL2 is not essential in human cultured cells, and its absence does not prevent mitochondrial protein import. Instead we find that GRPEL2 is redox regulated in oxidative stress. In the presence of hydrogen peroxide, GRPEL2 forms dimers through intermolecular disulfide bonds in which Cys87 is the thiol switch. We propose that the dimerization of GRPEL2 may activate the folding machinery responsible for protein import into mitochondrial matrix or enhance the chaperone activity of mtHSP70, thus protecting mitochondrial proteostasis in oxidative stress. Elsevier 2018-08-04 /pmc/articles/PMC6089081/ /pubmed/30098457 http://dx.doi.org/10.1016/j.redox.2018.07.024 Text en © 2018 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Paper
Konovalova, Svetlana
Liu, Xiaonan
Manjunath, Pooja
Baral, Sundar
Neupane, Nirajan
Hilander, Taru
Yang, Yang
Balboa, Diego
Terzioglu, Mügen
Euro, Liliya
Varjosalo, Markku
Tyynismaa, Henna
Redox regulation of GRPEL2 nucleotide exchange factor for mitochondrial HSP70 chaperone
title Redox regulation of GRPEL2 nucleotide exchange factor for mitochondrial HSP70 chaperone
title_full Redox regulation of GRPEL2 nucleotide exchange factor for mitochondrial HSP70 chaperone
title_fullStr Redox regulation of GRPEL2 nucleotide exchange factor for mitochondrial HSP70 chaperone
title_full_unstemmed Redox regulation of GRPEL2 nucleotide exchange factor for mitochondrial HSP70 chaperone
title_short Redox regulation of GRPEL2 nucleotide exchange factor for mitochondrial HSP70 chaperone
title_sort redox regulation of grpel2 nucleotide exchange factor for mitochondrial hsp70 chaperone
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6089081/
https://www.ncbi.nlm.nih.gov/pubmed/30098457
http://dx.doi.org/10.1016/j.redox.2018.07.024
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