Cargando…

Malfunctioning of the Iron–Sulfur Cluster Assembly Machinery in Saccharomyces cerevisiae Produces Oxidative Stress via an Iron-Dependent Mechanism, Causing Dysfunction in Respiratory Complexes

Biogenesis and recycling of iron–sulfur (Fe–S) clusters play important roles in the iron homeostasis mechanisms involved in mitochondrial function. In Saccharomyces cerevisiae, the Fe–S clusters are assembled into apoproteins by the iron–sulfur cluster machinery (ISC). The aim of the present study w...

Descripción completa

Detalles Bibliográficos
Autores principales: Gomez, Mauricio, Pérez-Gallardo, Rocío V., Sánchez, Luis A., Díaz-Pérez, Alma L., Cortés-Rojo, Christian, Meza Carmen, Victor, Saavedra-Molina, Alfredo, Lara-Romero, Javier, Jiménez-Sandoval, Sergio, Rodríguez, Francisco, Rodríguez-Zavala, José S., Campos-García, Jesús
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4214746/
https://www.ncbi.nlm.nih.gov/pubmed/25356756
http://dx.doi.org/10.1371/journal.pone.0111585
_version_ 1782342006750576640
author Gomez, Mauricio
Pérez-Gallardo, Rocío V.
Sánchez, Luis A.
Díaz-Pérez, Alma L.
Cortés-Rojo, Christian
Meza Carmen, Victor
Saavedra-Molina, Alfredo
Lara-Romero, Javier
Jiménez-Sandoval, Sergio
Rodríguez, Francisco
Rodríguez-Zavala, José S.
Campos-García, Jesús
author_facet Gomez, Mauricio
Pérez-Gallardo, Rocío V.
Sánchez, Luis A.
Díaz-Pérez, Alma L.
Cortés-Rojo, Christian
Meza Carmen, Victor
Saavedra-Molina, Alfredo
Lara-Romero, Javier
Jiménez-Sandoval, Sergio
Rodríguez, Francisco
Rodríguez-Zavala, José S.
Campos-García, Jesús
author_sort Gomez, Mauricio
collection PubMed
description Biogenesis and recycling of iron–sulfur (Fe–S) clusters play important roles in the iron homeostasis mechanisms involved in mitochondrial function. In Saccharomyces cerevisiae, the Fe–S clusters are assembled into apoproteins by the iron–sulfur cluster machinery (ISC). The aim of the present study was to determine the effects of ISC gene deletion and consequent iron release under oxidative stress conditions on mitochondrial functionality in S. cerevisiae. Reactive oxygen species (ROS) generation, caused by H(2)O(2), menadione, or ethanol, was associated with a loss of iron homeostasis and exacerbated by ISC system dysfunction. ISC mutants showed increased free Fe(2+) content, exacerbated by ROS-inducers, causing an increase in ROS, which was decreased by the addition of an iron chelator. Our study suggests that the increment in free Fe(2+) associated with ROS generation may have originated from mitochondria, probably Fe–S cluster proteins, under both normal and oxidative stress conditions, suggesting that Fe–S cluster anabolism is affected. Raman spectroscopy analysis and immunoblotting indicated that in mitochondria from SSQ1 and ISA1 mutants, the content of [Fe–S] centers was decreased, as was formation of Rieske protein-dependent supercomplex III(2)IV(2), but this was not observed in the iron-deficient ATX1 and MRS4 mutants. In addition, the activity of complexes II and IV from the electron transport chain (ETC) was impaired or totally abolished in SSQ1 and ISA1 mutants. These results confirm that the ISC system plays important roles in iron homeostasis, ROS stress, and in assembly of supercomplexes III(2)IV(2) and III(2)IV(1), thus affecting the functionality of the respiratory chain.
format Online
Article
Text
id pubmed-4214746
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-42147462014-11-05 Malfunctioning of the Iron–Sulfur Cluster Assembly Machinery in Saccharomyces cerevisiae Produces Oxidative Stress via an Iron-Dependent Mechanism, Causing Dysfunction in Respiratory Complexes Gomez, Mauricio Pérez-Gallardo, Rocío V. Sánchez, Luis A. Díaz-Pérez, Alma L. Cortés-Rojo, Christian Meza Carmen, Victor Saavedra-Molina, Alfredo Lara-Romero, Javier Jiménez-Sandoval, Sergio Rodríguez, Francisco Rodríguez-Zavala, José S. Campos-García, Jesús PLoS One Research Article Biogenesis and recycling of iron–sulfur (Fe–S) clusters play important roles in the iron homeostasis mechanisms involved in mitochondrial function. In Saccharomyces cerevisiae, the Fe–S clusters are assembled into apoproteins by the iron–sulfur cluster machinery (ISC). The aim of the present study was to determine the effects of ISC gene deletion and consequent iron release under oxidative stress conditions on mitochondrial functionality in S. cerevisiae. Reactive oxygen species (ROS) generation, caused by H(2)O(2), menadione, or ethanol, was associated with a loss of iron homeostasis and exacerbated by ISC system dysfunction. ISC mutants showed increased free Fe(2+) content, exacerbated by ROS-inducers, causing an increase in ROS, which was decreased by the addition of an iron chelator. Our study suggests that the increment in free Fe(2+) associated with ROS generation may have originated from mitochondria, probably Fe–S cluster proteins, under both normal and oxidative stress conditions, suggesting that Fe–S cluster anabolism is affected. Raman spectroscopy analysis and immunoblotting indicated that in mitochondria from SSQ1 and ISA1 mutants, the content of [Fe–S] centers was decreased, as was formation of Rieske protein-dependent supercomplex III(2)IV(2), but this was not observed in the iron-deficient ATX1 and MRS4 mutants. In addition, the activity of complexes II and IV from the electron transport chain (ETC) was impaired or totally abolished in SSQ1 and ISA1 mutants. These results confirm that the ISC system plays important roles in iron homeostasis, ROS stress, and in assembly of supercomplexes III(2)IV(2) and III(2)IV(1), thus affecting the functionality of the respiratory chain. Public Library of Science 2014-10-30 /pmc/articles/PMC4214746/ /pubmed/25356756 http://dx.doi.org/10.1371/journal.pone.0111585 Text en © 2014 Gomez 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
Gomez, Mauricio
Pérez-Gallardo, Rocío V.
Sánchez, Luis A.
Díaz-Pérez, Alma L.
Cortés-Rojo, Christian
Meza Carmen, Victor
Saavedra-Molina, Alfredo
Lara-Romero, Javier
Jiménez-Sandoval, Sergio
Rodríguez, Francisco
Rodríguez-Zavala, José S.
Campos-García, Jesús
Malfunctioning of the Iron–Sulfur Cluster Assembly Machinery in Saccharomyces cerevisiae Produces Oxidative Stress via an Iron-Dependent Mechanism, Causing Dysfunction in Respiratory Complexes
title Malfunctioning of the Iron–Sulfur Cluster Assembly Machinery in Saccharomyces cerevisiae Produces Oxidative Stress via an Iron-Dependent Mechanism, Causing Dysfunction in Respiratory Complexes
title_full Malfunctioning of the Iron–Sulfur Cluster Assembly Machinery in Saccharomyces cerevisiae Produces Oxidative Stress via an Iron-Dependent Mechanism, Causing Dysfunction in Respiratory Complexes
title_fullStr Malfunctioning of the Iron–Sulfur Cluster Assembly Machinery in Saccharomyces cerevisiae Produces Oxidative Stress via an Iron-Dependent Mechanism, Causing Dysfunction in Respiratory Complexes
title_full_unstemmed Malfunctioning of the Iron–Sulfur Cluster Assembly Machinery in Saccharomyces cerevisiae Produces Oxidative Stress via an Iron-Dependent Mechanism, Causing Dysfunction in Respiratory Complexes
title_short Malfunctioning of the Iron–Sulfur Cluster Assembly Machinery in Saccharomyces cerevisiae Produces Oxidative Stress via an Iron-Dependent Mechanism, Causing Dysfunction in Respiratory Complexes
title_sort malfunctioning of the iron–sulfur cluster assembly machinery in saccharomyces cerevisiae produces oxidative stress via an iron-dependent mechanism, causing dysfunction in respiratory complexes
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4214746/
https://www.ncbi.nlm.nih.gov/pubmed/25356756
http://dx.doi.org/10.1371/journal.pone.0111585
work_keys_str_mv AT gomezmauricio malfunctioningoftheironsulfurclusterassemblymachineryinsaccharomycescerevisiaeproducesoxidativestressviaanirondependentmechanismcausingdysfunctioninrespiratorycomplexes
AT perezgallardorociov malfunctioningoftheironsulfurclusterassemblymachineryinsaccharomycescerevisiaeproducesoxidativestressviaanirondependentmechanismcausingdysfunctioninrespiratorycomplexes
AT sanchezluisa malfunctioningoftheironsulfurclusterassemblymachineryinsaccharomycescerevisiaeproducesoxidativestressviaanirondependentmechanismcausingdysfunctioninrespiratorycomplexes
AT diazperezalmal malfunctioningoftheironsulfurclusterassemblymachineryinsaccharomycescerevisiaeproducesoxidativestressviaanirondependentmechanismcausingdysfunctioninrespiratorycomplexes
AT cortesrojochristian malfunctioningoftheironsulfurclusterassemblymachineryinsaccharomycescerevisiaeproducesoxidativestressviaanirondependentmechanismcausingdysfunctioninrespiratorycomplexes
AT mezacarmenvictor malfunctioningoftheironsulfurclusterassemblymachineryinsaccharomycescerevisiaeproducesoxidativestressviaanirondependentmechanismcausingdysfunctioninrespiratorycomplexes
AT saavedramolinaalfredo malfunctioningoftheironsulfurclusterassemblymachineryinsaccharomycescerevisiaeproducesoxidativestressviaanirondependentmechanismcausingdysfunctioninrespiratorycomplexes
AT lararomerojavier malfunctioningoftheironsulfurclusterassemblymachineryinsaccharomycescerevisiaeproducesoxidativestressviaanirondependentmechanismcausingdysfunctioninrespiratorycomplexes
AT jimenezsandovalsergio malfunctioningoftheironsulfurclusterassemblymachineryinsaccharomycescerevisiaeproducesoxidativestressviaanirondependentmechanismcausingdysfunctioninrespiratorycomplexes
AT rodriguezfrancisco malfunctioningoftheironsulfurclusterassemblymachineryinsaccharomycescerevisiaeproducesoxidativestressviaanirondependentmechanismcausingdysfunctioninrespiratorycomplexes
AT rodriguezzavalajoses malfunctioningoftheironsulfurclusterassemblymachineryinsaccharomycescerevisiaeproducesoxidativestressviaanirondependentmechanismcausingdysfunctioninrespiratorycomplexes
AT camposgarciajesus malfunctioningoftheironsulfurclusterassemblymachineryinsaccharomycescerevisiaeproducesoxidativestressviaanirondependentmechanismcausingdysfunctioninrespiratorycomplexes