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The Mitochondria-to-Cytosol H(2)O(2) Gradient Is Caused by Peroxiredoxin-Dependent Cytosolic Scavenging

Fluorescent protein-based reporters used to measure intracellular H(2)O(2) were developed to overcome the limitations of small permeable dyes. The two major families of genetically encoded redox reporters are the reduction-oxidation sensitive green fluorescent protein (roGFP)-based proteins fused to...

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Autores principales: de Cubas, Laura, Pak, Valeriy V., Belousov, Vsevolod V., Ayté, José, Hidalgo, Elena
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8148214/
https://www.ncbi.nlm.nih.gov/pubmed/34066375
http://dx.doi.org/10.3390/antiox10050731
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author de Cubas, Laura
Pak, Valeriy V.
Belousov, Vsevolod V.
Ayté, José
Hidalgo, Elena
author_facet de Cubas, Laura
Pak, Valeriy V.
Belousov, Vsevolod V.
Ayté, José
Hidalgo, Elena
author_sort de Cubas, Laura
collection PubMed
description Fluorescent protein-based reporters used to measure intracellular H(2)O(2) were developed to overcome the limitations of small permeable dyes. The two major families of genetically encoded redox reporters are the reduction-oxidation sensitive green fluorescent protein (roGFP)-based proteins fused to peroxiredoxins and HyPer and derivatives. We have used the most sensitive probes of each family, roGFP2-Tpx1.C169S and HyPer7, to monitor steady-state and fluctuating levels of peroxides in fission yeast. While both are able to monitor the nanomolar fluctuations of intracellular H(2)O(2), the former is two-five times more sensitive than HyPer7, and roGFP2-Tpx1.C169S is partially oxidized in the cytosol of wild-type cells while HyPer7 is fully reduced. We have successfully expressed HyPer7 in the mitochondrial matrix, and it is ~40% oxidized, suggesting higher steady-state levels of peroxides, in the low micromolar range, than in the cytosol. Cytosolic HyPer7 can detect negligible H(2)O(2) in the cytosol from mitochondrial origin unless the main H(2)O(2) scavenger, the cytosolic peroxiredoxin Tpx1, is absent, while mitochondrial HyPer7 is oxidized to the same extent in wild-type and ∆tpx1 cells. We conclude that there is a bidirectional flux of H(2)O(2) across the matrix and the cytosol, but Tpx1 rapidly and efficiently scavenges mitochondrial-generated peroxides and stops their steady-state cytosolic levels rising.
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spelling pubmed-81482142021-05-26 The Mitochondria-to-Cytosol H(2)O(2) Gradient Is Caused by Peroxiredoxin-Dependent Cytosolic Scavenging de Cubas, Laura Pak, Valeriy V. Belousov, Vsevolod V. Ayté, José Hidalgo, Elena Antioxidants (Basel) Article Fluorescent protein-based reporters used to measure intracellular H(2)O(2) were developed to overcome the limitations of small permeable dyes. The two major families of genetically encoded redox reporters are the reduction-oxidation sensitive green fluorescent protein (roGFP)-based proteins fused to peroxiredoxins and HyPer and derivatives. We have used the most sensitive probes of each family, roGFP2-Tpx1.C169S and HyPer7, to monitor steady-state and fluctuating levels of peroxides in fission yeast. While both are able to monitor the nanomolar fluctuations of intracellular H(2)O(2), the former is two-five times more sensitive than HyPer7, and roGFP2-Tpx1.C169S is partially oxidized in the cytosol of wild-type cells while HyPer7 is fully reduced. We have successfully expressed HyPer7 in the mitochondrial matrix, and it is ~40% oxidized, suggesting higher steady-state levels of peroxides, in the low micromolar range, than in the cytosol. Cytosolic HyPer7 can detect negligible H(2)O(2) in the cytosol from mitochondrial origin unless the main H(2)O(2) scavenger, the cytosolic peroxiredoxin Tpx1, is absent, while mitochondrial HyPer7 is oxidized to the same extent in wild-type and ∆tpx1 cells. We conclude that there is a bidirectional flux of H(2)O(2) across the matrix and the cytosol, but Tpx1 rapidly and efficiently scavenges mitochondrial-generated peroxides and stops their steady-state cytosolic levels rising. MDPI 2021-05-06 /pmc/articles/PMC8148214/ /pubmed/34066375 http://dx.doi.org/10.3390/antiox10050731 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
de Cubas, Laura
Pak, Valeriy V.
Belousov, Vsevolod V.
Ayté, José
Hidalgo, Elena
The Mitochondria-to-Cytosol H(2)O(2) Gradient Is Caused by Peroxiredoxin-Dependent Cytosolic Scavenging
title The Mitochondria-to-Cytosol H(2)O(2) Gradient Is Caused by Peroxiredoxin-Dependent Cytosolic Scavenging
title_full The Mitochondria-to-Cytosol H(2)O(2) Gradient Is Caused by Peroxiredoxin-Dependent Cytosolic Scavenging
title_fullStr The Mitochondria-to-Cytosol H(2)O(2) Gradient Is Caused by Peroxiredoxin-Dependent Cytosolic Scavenging
title_full_unstemmed The Mitochondria-to-Cytosol H(2)O(2) Gradient Is Caused by Peroxiredoxin-Dependent Cytosolic Scavenging
title_short The Mitochondria-to-Cytosol H(2)O(2) Gradient Is Caused by Peroxiredoxin-Dependent Cytosolic Scavenging
title_sort mitochondria-to-cytosol h(2)o(2) gradient is caused by peroxiredoxin-dependent cytosolic scavenging
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8148214/
https://www.ncbi.nlm.nih.gov/pubmed/34066375
http://dx.doi.org/10.3390/antiox10050731
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