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Nuclear genomic control of naturally occurring variation in mitochondrial function in Drosophila melanogaster

BACKGROUND: Mitochondria are organelles found in nearly all eukaryotic cells that play a crucial role in cellular survival and function. Mitochondrial function is under the control of nuclear and mitochondrial genomes. While the latter has been the focus of most genetic research, we remain largely i...

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Autores principales: Jumbo-Lucioni, Patricia, Bu, Su, Harbison, Susan T, Slaughter, Juanita C, Mackay, Trudy FC, Moellering, Douglas R, De Luca, Maria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3526424/
https://www.ncbi.nlm.nih.gov/pubmed/23171078
http://dx.doi.org/10.1186/1471-2164-13-659
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author Jumbo-Lucioni, Patricia
Bu, Su
Harbison, Susan T
Slaughter, Juanita C
Mackay, Trudy FC
Moellering, Douglas R
De Luca, Maria
author_facet Jumbo-Lucioni, Patricia
Bu, Su
Harbison, Susan T
Slaughter, Juanita C
Mackay, Trudy FC
Moellering, Douglas R
De Luca, Maria
author_sort Jumbo-Lucioni, Patricia
collection PubMed
description BACKGROUND: Mitochondria are organelles found in nearly all eukaryotic cells that play a crucial role in cellular survival and function. Mitochondrial function is under the control of nuclear and mitochondrial genomes. While the latter has been the focus of most genetic research, we remain largely ignorant about the nuclear-encoded genomic control of inter-individual variability in mitochondrial function. Here, we used Drosophila melanogaster as our model organism to address this question. RESULTS: We quantified mitochondrial state 3 and state 4 respiration rates and P:O ratio in mitochondria isolated from the thoraces of 40 sequenced inbred lines of the Drosophila Genetic Reference Panel. We found significant within-population genetic variability for all mitochondrial traits. Hence, we performed genome-wide association mapping and identified 141 single nucleotide polymorphisms (SNPs) associated with differences in mitochondrial respiration and efficiency (P ≤1 × 10(-5)). Gene-centered regression models showed that 2–3 SNPs can explain 31, 13, and 18% of the phenotypic variation in state 3, state 4, and P:O ratio, respectively. Most of the genes tagged by the SNPs are involved in organ development, second messenger-mediated signaling pathways, and cytoskeleton remodeling. One of these genes, sallimus (sls), encodes a component of the muscle sarcomere. We confirmed the direct effect of sls on mitochondrial respiration using two viable mutants and their coisogenic wild-type strain. Furthermore, correlation network analysis revealed that sls functions as a transcriptional hub in a co-regulated module associated with mitochondrial respiration and is connected to CG7834, which is predicted to encode a protein with mitochondrial electron transfer flavoprotein activity. This latter finding was also verified in the sls mutants. CONCLUSIONS: Our results provide novel insights into the genetic factors regulating natural variation in mitochondrial function in D. melanogaster. The integrative genomic approach used in our study allowed us to identify sls as a novel hub gene responsible for the regulation of mitochondrial respiration in muscle sarcomere and to provide evidence that sls might act via the electron transfer flavoprotein/ubiquinone oxidoreductase complex.
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spelling pubmed-35264242012-12-20 Nuclear genomic control of naturally occurring variation in mitochondrial function in Drosophila melanogaster Jumbo-Lucioni, Patricia Bu, Su Harbison, Susan T Slaughter, Juanita C Mackay, Trudy FC Moellering, Douglas R De Luca, Maria BMC Genomics Research Article BACKGROUND: Mitochondria are organelles found in nearly all eukaryotic cells that play a crucial role in cellular survival and function. Mitochondrial function is under the control of nuclear and mitochondrial genomes. While the latter has been the focus of most genetic research, we remain largely ignorant about the nuclear-encoded genomic control of inter-individual variability in mitochondrial function. Here, we used Drosophila melanogaster as our model organism to address this question. RESULTS: We quantified mitochondrial state 3 and state 4 respiration rates and P:O ratio in mitochondria isolated from the thoraces of 40 sequenced inbred lines of the Drosophila Genetic Reference Panel. We found significant within-population genetic variability for all mitochondrial traits. Hence, we performed genome-wide association mapping and identified 141 single nucleotide polymorphisms (SNPs) associated with differences in mitochondrial respiration and efficiency (P ≤1 × 10(-5)). Gene-centered regression models showed that 2–3 SNPs can explain 31, 13, and 18% of the phenotypic variation in state 3, state 4, and P:O ratio, respectively. Most of the genes tagged by the SNPs are involved in organ development, second messenger-mediated signaling pathways, and cytoskeleton remodeling. One of these genes, sallimus (sls), encodes a component of the muscle sarcomere. We confirmed the direct effect of sls on mitochondrial respiration using two viable mutants and their coisogenic wild-type strain. Furthermore, correlation network analysis revealed that sls functions as a transcriptional hub in a co-regulated module associated with mitochondrial respiration and is connected to CG7834, which is predicted to encode a protein with mitochondrial electron transfer flavoprotein activity. This latter finding was also verified in the sls mutants. CONCLUSIONS: Our results provide novel insights into the genetic factors regulating natural variation in mitochondrial function in D. melanogaster. The integrative genomic approach used in our study allowed us to identify sls as a novel hub gene responsible for the regulation of mitochondrial respiration in muscle sarcomere and to provide evidence that sls might act via the electron transfer flavoprotein/ubiquinone oxidoreductase complex. BioMed Central 2012-11-22 /pmc/articles/PMC3526424/ /pubmed/23171078 http://dx.doi.org/10.1186/1471-2164-13-659 Text en Copyright ©2012 Jumbo-Lucioni et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Jumbo-Lucioni, Patricia
Bu, Su
Harbison, Susan T
Slaughter, Juanita C
Mackay, Trudy FC
Moellering, Douglas R
De Luca, Maria
Nuclear genomic control of naturally occurring variation in mitochondrial function in Drosophila melanogaster
title Nuclear genomic control of naturally occurring variation in mitochondrial function in Drosophila melanogaster
title_full Nuclear genomic control of naturally occurring variation in mitochondrial function in Drosophila melanogaster
title_fullStr Nuclear genomic control of naturally occurring variation in mitochondrial function in Drosophila melanogaster
title_full_unstemmed Nuclear genomic control of naturally occurring variation in mitochondrial function in Drosophila melanogaster
title_short Nuclear genomic control of naturally occurring variation in mitochondrial function in Drosophila melanogaster
title_sort nuclear genomic control of naturally occurring variation in mitochondrial function in drosophila melanogaster
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3526424/
https://www.ncbi.nlm.nih.gov/pubmed/23171078
http://dx.doi.org/10.1186/1471-2164-13-659
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