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Using a multiomics approach to unravel a septic shock specific signature in skeletal muscle

Sepsis is defined as a dysregulated host response to infection leading to organs failure. Among them, sepsis induces skeletal muscle (SM) alterations that contribute to acquired-weakness in critically ill patients. Proteomics and metabolomics could unravel biological mechanisms in sepsis-related org...

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Autores principales: Duceau, Baptiste, Blatzer, Michael, Bardon, Jean, Chaze, Thibault, Giai Gianetto, Quentin, Castelli, Florence, Fenaille, François, Duarte, Lucie, Lescot, Thomas, Tresallet, Christophe, Riou, Bruno, Matondo, Mariette, Langeron, Olivier, Rocheteau, Pierre, Chrétien, Fabrice, Bouglé, Adrien
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9637214/
https://www.ncbi.nlm.nih.gov/pubmed/36335235
http://dx.doi.org/10.1038/s41598-022-23544-8
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author Duceau, Baptiste
Blatzer, Michael
Bardon, Jean
Chaze, Thibault
Giai Gianetto, Quentin
Castelli, Florence
Fenaille, François
Duarte, Lucie
Lescot, Thomas
Tresallet, Christophe
Riou, Bruno
Matondo, Mariette
Langeron, Olivier
Rocheteau, Pierre
Chrétien, Fabrice
Bouglé, Adrien
author_facet Duceau, Baptiste
Blatzer, Michael
Bardon, Jean
Chaze, Thibault
Giai Gianetto, Quentin
Castelli, Florence
Fenaille, François
Duarte, Lucie
Lescot, Thomas
Tresallet, Christophe
Riou, Bruno
Matondo, Mariette
Langeron, Olivier
Rocheteau, Pierre
Chrétien, Fabrice
Bouglé, Adrien
author_sort Duceau, Baptiste
collection PubMed
description Sepsis is defined as a dysregulated host response to infection leading to organs failure. Among them, sepsis induces skeletal muscle (SM) alterations that contribute to acquired-weakness in critically ill patients. Proteomics and metabolomics could unravel biological mechanisms in sepsis-related organ dysfunction. Our objective was to characterize a distinctive signature of septic shock in human SM by using an integrative multi-omics approach. Muscle biopsies were obtained as part of a multicenter non-interventional prospective study. Study population included patients in septic shock (S group, with intra-abdominal source of sepsis) and two critically ill control populations: cardiogenic shock (C group) and brain dead (BD group). The proteins and metabolites were extracted and analyzed by High-Performance Liquid Chromatography-coupled to tandem Mass Spectrometry, respectively. Fifty patients were included, 19 for the S group (53% male, 64 ± 17 years, SAPS II 45 ± 14), 12 for the C group (75% male, 63 ± 4 years, SAPS II 43 ± 15), 19 for the BD group (63% male, 58 ± 10 years, SAPS II 58 ± 9). Biopsies were performed in median 3 days [interquartile range 1–4]) after intensive care unit admission. Respectively 31 patients and 40 patients were included in the proteomics and metabolomics analyses of 2264 proteins and 259 annotated metabolites. Enrichment analysis revealed that mitochondrial pathways were significantly decreased in the S group at protein level: oxidative phosphorylation (adjusted p = 0.008); branched chained amino acids degradation (adjusted p = 0.005); citrate cycle (adjusted p = 0.005); ketone body metabolism (adjusted p = 0.003) or fatty acid degradation (adjusted p = 0.008). Metabolic reprogramming was also suggested (i) by the differential abundance of the peroxisome proliferator-activated receptors signaling pathway (adjusted p = 0.007), and (ii) by the accumulation of fatty acids like octanedioic acid dimethyl or hydroxydecanoic. Increased polyamines and depletion of mitochondrial thioredoxin or mitochondrial peroxiredoxin indicated a high level of oxidative stress in the S group. Coordinated alterations in the proteomic and metabolomic profiles reveal a septic shock signature in SM, highlighting a global impairment of mitochondria-related metabolic pathways, the depletion of antioxidant capacities, and a metabolic shift towards lipid accumulation. ClinicalTrial registration: NCT02789995. Date of first registration 03/06/2016.
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spelling pubmed-96372142022-11-07 Using a multiomics approach to unravel a septic shock specific signature in skeletal muscle Duceau, Baptiste Blatzer, Michael Bardon, Jean Chaze, Thibault Giai Gianetto, Quentin Castelli, Florence Fenaille, François Duarte, Lucie Lescot, Thomas Tresallet, Christophe Riou, Bruno Matondo, Mariette Langeron, Olivier Rocheteau, Pierre Chrétien, Fabrice Bouglé, Adrien Sci Rep Article Sepsis is defined as a dysregulated host response to infection leading to organs failure. Among them, sepsis induces skeletal muscle (SM) alterations that contribute to acquired-weakness in critically ill patients. Proteomics and metabolomics could unravel biological mechanisms in sepsis-related organ dysfunction. Our objective was to characterize a distinctive signature of septic shock in human SM by using an integrative multi-omics approach. Muscle biopsies were obtained as part of a multicenter non-interventional prospective study. Study population included patients in septic shock (S group, with intra-abdominal source of sepsis) and two critically ill control populations: cardiogenic shock (C group) and brain dead (BD group). The proteins and metabolites were extracted and analyzed by High-Performance Liquid Chromatography-coupled to tandem Mass Spectrometry, respectively. Fifty patients were included, 19 for the S group (53% male, 64 ± 17 years, SAPS II 45 ± 14), 12 for the C group (75% male, 63 ± 4 years, SAPS II 43 ± 15), 19 for the BD group (63% male, 58 ± 10 years, SAPS II 58 ± 9). Biopsies were performed in median 3 days [interquartile range 1–4]) after intensive care unit admission. Respectively 31 patients and 40 patients were included in the proteomics and metabolomics analyses of 2264 proteins and 259 annotated metabolites. Enrichment analysis revealed that mitochondrial pathways were significantly decreased in the S group at protein level: oxidative phosphorylation (adjusted p = 0.008); branched chained amino acids degradation (adjusted p = 0.005); citrate cycle (adjusted p = 0.005); ketone body metabolism (adjusted p = 0.003) or fatty acid degradation (adjusted p = 0.008). Metabolic reprogramming was also suggested (i) by the differential abundance of the peroxisome proliferator-activated receptors signaling pathway (adjusted p = 0.007), and (ii) by the accumulation of fatty acids like octanedioic acid dimethyl or hydroxydecanoic. Increased polyamines and depletion of mitochondrial thioredoxin or mitochondrial peroxiredoxin indicated a high level of oxidative stress in the S group. Coordinated alterations in the proteomic and metabolomic profiles reveal a septic shock signature in SM, highlighting a global impairment of mitochondria-related metabolic pathways, the depletion of antioxidant capacities, and a metabolic shift towards lipid accumulation. ClinicalTrial registration: NCT02789995. Date of first registration 03/06/2016. Nature Publishing Group UK 2022-11-05 /pmc/articles/PMC9637214/ /pubmed/36335235 http://dx.doi.org/10.1038/s41598-022-23544-8 Text en © The Author(s) 2022 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Duceau, Baptiste
Blatzer, Michael
Bardon, Jean
Chaze, Thibault
Giai Gianetto, Quentin
Castelli, Florence
Fenaille, François
Duarte, Lucie
Lescot, Thomas
Tresallet, Christophe
Riou, Bruno
Matondo, Mariette
Langeron, Olivier
Rocheteau, Pierre
Chrétien, Fabrice
Bouglé, Adrien
Using a multiomics approach to unravel a septic shock specific signature in skeletal muscle
title Using a multiomics approach to unravel a septic shock specific signature in skeletal muscle
title_full Using a multiomics approach to unravel a septic shock specific signature in skeletal muscle
title_fullStr Using a multiomics approach to unravel a septic shock specific signature in skeletal muscle
title_full_unstemmed Using a multiomics approach to unravel a septic shock specific signature in skeletal muscle
title_short Using a multiomics approach to unravel a septic shock specific signature in skeletal muscle
title_sort using a multiomics approach to unravel a septic shock specific signature in skeletal muscle
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9637214/
https://www.ncbi.nlm.nih.gov/pubmed/36335235
http://dx.doi.org/10.1038/s41598-022-23544-8
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