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oxLDL-Induced Trained Immunity Is Dependent on Mitochondrial Metabolic Reprogramming

Following brief exposure to endogenous atherogenic particles, such as oxidized low-density lipoprotein (oxLDL), monocytes/macrophages can adopt a long-term pro-inflammatory phenotype, which is called trained immunity. This mechanism might contribute to the chronic low-grade inflammation that charact...

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Autores principales: Groh, Laszlo A., Ferreira, Anaisa V., Helder, Leonie, van der Heijden, Charlotte D. C. C., Novakovic, Boris, van de Westerlo, Els, Matzaraki, Vasiliki, Moorlag, Simone J. C. F. M., de Bree, L. Charlotte, Koeken, Valerie A. C. M., Mourits, Vera P., Keating, Samuel T., van Puffelen, Jelmer H., Hoischen, Alexander, Joosten, Leo A. B., Netea, Mihai G., Koopman, Werner J. H., Riksen, Niels P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7611242/
https://www.ncbi.nlm.nih.gov/pubmed/34267957
http://dx.doi.org/10.20900/immunometab20210025
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author Groh, Laszlo A.
Ferreira, Anaisa V.
Helder, Leonie
van der Heijden, Charlotte D. C. C.
Novakovic, Boris
van de Westerlo, Els
Matzaraki, Vasiliki
Moorlag, Simone J. C. F. M.
de Bree, L. Charlotte
Koeken, Valerie A. C. M.
Mourits, Vera P.
Keating, Samuel T.
van Puffelen, Jelmer H.
Hoischen, Alexander
Joosten, Leo A. B.
Netea, Mihai G.
Koopman, Werner J. H.
Riksen, Niels P.
author_facet Groh, Laszlo A.
Ferreira, Anaisa V.
Helder, Leonie
van der Heijden, Charlotte D. C. C.
Novakovic, Boris
van de Westerlo, Els
Matzaraki, Vasiliki
Moorlag, Simone J. C. F. M.
de Bree, L. Charlotte
Koeken, Valerie A. C. M.
Mourits, Vera P.
Keating, Samuel T.
van Puffelen, Jelmer H.
Hoischen, Alexander
Joosten, Leo A. B.
Netea, Mihai G.
Koopman, Werner J. H.
Riksen, Niels P.
author_sort Groh, Laszlo A.
collection PubMed
description Following brief exposure to endogenous atherogenic particles, such as oxidized low-density lipoprotein (oxLDL), monocytes/macrophages can adopt a long-term pro-inflammatory phenotype, which is called trained immunity. This mechanism might contribute to the chronic low-grade inflammation that characterizes atherosclerosis. In this study, we aim to elucidate immunometabolic pathways that drive oxLDL-induced trained immunity. Primary isolated human monocytes were exposed to oxLDL for 24 h, and after five days stimulated with LPS to measure the cytokine production capacity. RNA-sequencing revealed broad increases in genes enriched in mitochondrial pathways after 24 h of oxLDL exposure. Further omics profiling of oxLDL-trained macrophages via intracellular metabolomics showed an enrichment for tricarboxylic acid (TCA) cycle metabolites. Single cell analysis revealed that oxLDL-trained macrophages contain larger mitochondria, potentially likely linked to increased oxidative phosphorylation (OXPHOS) activity. Co-incubation with pharmacological blockers of OXPHOS inhibited oxLDL-induced trained immunity. The relevance of OXPHOS was confirmed in a cohort of 243 healthy subjects showing that genetic variation in genes coding for enzymes relevant to OXPHOS correlated with the capacity of monocytes to be trained with oxLDL. Interestingly, OXPHOS appears to play an important role in the increased cytokine hyperresponsiveness by oxLDL-trained macrophages. The TCA-cycle can also be fuelled by glutamine and free fatty acids, and pharmacological blockade of these pathways could prevent oxLDL-induced trained immunity. This study demonstrates that the mitochondria of oxLDL-trained macrophages undergo changes to their function and form with OXPHOS being an important mechanism for trained immunity, which could unveil novel pharmacological targets to prevent atherogenesis.
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spelling pubmed-76112422021-07-14 oxLDL-Induced Trained Immunity Is Dependent on Mitochondrial Metabolic Reprogramming Groh, Laszlo A. Ferreira, Anaisa V. Helder, Leonie van der Heijden, Charlotte D. C. C. Novakovic, Boris van de Westerlo, Els Matzaraki, Vasiliki Moorlag, Simone J. C. F. M. de Bree, L. Charlotte Koeken, Valerie A. C. M. Mourits, Vera P. Keating, Samuel T. van Puffelen, Jelmer H. Hoischen, Alexander Joosten, Leo A. B. Netea, Mihai G. Koopman, Werner J. H. Riksen, Niels P. Immunometabolism Article Following brief exposure to endogenous atherogenic particles, such as oxidized low-density lipoprotein (oxLDL), monocytes/macrophages can adopt a long-term pro-inflammatory phenotype, which is called trained immunity. This mechanism might contribute to the chronic low-grade inflammation that characterizes atherosclerosis. In this study, we aim to elucidate immunometabolic pathways that drive oxLDL-induced trained immunity. Primary isolated human monocytes were exposed to oxLDL for 24 h, and after five days stimulated with LPS to measure the cytokine production capacity. RNA-sequencing revealed broad increases in genes enriched in mitochondrial pathways after 24 h of oxLDL exposure. Further omics profiling of oxLDL-trained macrophages via intracellular metabolomics showed an enrichment for tricarboxylic acid (TCA) cycle metabolites. Single cell analysis revealed that oxLDL-trained macrophages contain larger mitochondria, potentially likely linked to increased oxidative phosphorylation (OXPHOS) activity. Co-incubation with pharmacological blockers of OXPHOS inhibited oxLDL-induced trained immunity. The relevance of OXPHOS was confirmed in a cohort of 243 healthy subjects showing that genetic variation in genes coding for enzymes relevant to OXPHOS correlated with the capacity of monocytes to be trained with oxLDL. Interestingly, OXPHOS appears to play an important role in the increased cytokine hyperresponsiveness by oxLDL-trained macrophages. The TCA-cycle can also be fuelled by glutamine and free fatty acids, and pharmacological blockade of these pathways could prevent oxLDL-induced trained immunity. This study demonstrates that the mitochondria of oxLDL-trained macrophages undergo changes to their function and form with OXPHOS being an important mechanism for trained immunity, which could unveil novel pharmacological targets to prevent atherogenesis. 2021-06-30 /pmc/articles/PMC7611242/ /pubmed/34267957 http://dx.doi.org/10.20900/immunometab20210025 Text en https://creativecommons.org/licenses/by/4.0/Licensee Hapres, London, United Kingdom. This is an open access article distributed under the terms and conditions of Creative Commons Attribution 4.0 International License (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Groh, Laszlo A.
Ferreira, Anaisa V.
Helder, Leonie
van der Heijden, Charlotte D. C. C.
Novakovic, Boris
van de Westerlo, Els
Matzaraki, Vasiliki
Moorlag, Simone J. C. F. M.
de Bree, L. Charlotte
Koeken, Valerie A. C. M.
Mourits, Vera P.
Keating, Samuel T.
van Puffelen, Jelmer H.
Hoischen, Alexander
Joosten, Leo A. B.
Netea, Mihai G.
Koopman, Werner J. H.
Riksen, Niels P.
oxLDL-Induced Trained Immunity Is Dependent on Mitochondrial Metabolic Reprogramming
title oxLDL-Induced Trained Immunity Is Dependent on Mitochondrial Metabolic Reprogramming
title_full oxLDL-Induced Trained Immunity Is Dependent on Mitochondrial Metabolic Reprogramming
title_fullStr oxLDL-Induced Trained Immunity Is Dependent on Mitochondrial Metabolic Reprogramming
title_full_unstemmed oxLDL-Induced Trained Immunity Is Dependent on Mitochondrial Metabolic Reprogramming
title_short oxLDL-Induced Trained Immunity Is Dependent on Mitochondrial Metabolic Reprogramming
title_sort oxldl-induced trained immunity is dependent on mitochondrial metabolic reprogramming
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7611242/
https://www.ncbi.nlm.nih.gov/pubmed/34267957
http://dx.doi.org/10.20900/immunometab20210025
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