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LIX1-mediated changes in mitochondrial metabolism control the fate of digestive mesenchyme-derived cells

YAP1 and TAZ are transcriptional co-activator proteins that play fundamental roles in many biological processes, from cell proliferation and cell lineage fate determination to tumorigenesis. We previously demonstrated that Limb Expression 1 (LIX1) regulates YAP1 and TAZ activity and controls digesti...

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Autores principales: Guérin, Amandine, Angebault, Claire, Kinet, Sandrina, Cazevieille, Chantal, Rojo, Manuel, Fauconnier, Jérémy, Lacampagne, Alain, Mourier, Arnaud, Taylor, Naomi, de Santa Barbara, Pascal, Faure, Sandrine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9420520/
https://www.ncbi.nlm.nih.gov/pubmed/35988446
http://dx.doi.org/10.1016/j.redox.2022.102431
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author Guérin, Amandine
Angebault, Claire
Kinet, Sandrina
Cazevieille, Chantal
Rojo, Manuel
Fauconnier, Jérémy
Lacampagne, Alain
Mourier, Arnaud
Taylor, Naomi
de Santa Barbara, Pascal
Faure, Sandrine
author_facet Guérin, Amandine
Angebault, Claire
Kinet, Sandrina
Cazevieille, Chantal
Rojo, Manuel
Fauconnier, Jérémy
Lacampagne, Alain
Mourier, Arnaud
Taylor, Naomi
de Santa Barbara, Pascal
Faure, Sandrine
author_sort Guérin, Amandine
collection PubMed
description YAP1 and TAZ are transcriptional co-activator proteins that play fundamental roles in many biological processes, from cell proliferation and cell lineage fate determination to tumorigenesis. We previously demonstrated that Limb Expression 1 (LIX1) regulates YAP1 and TAZ activity and controls digestive mesenchymal progenitor proliferation. However, LIX1 mode of action remains elusive. Here, we found that endogenous LIX1 is localized in mitochondria and is anchored to the outer mitochondrial membrane through S-palmitoylation of cysteine 84, a residue conserved in all LIX1 orthologs. LIX1 downregulation altered the mitochondrial ultrastructure, resulting in a significantly decreased respiration and attenuated production of mitochondrial reactive oxygen species (mtROS). Mechanistically, LIX1 knock-down impaired the stability of the mitochondrial proteins PHB2 and OPA1 that are found in complexes with mitochondrial-specific phospholipids and are required for cristae organization. Supplementation with unsaturated fatty acids counteracted the effects of LIX1 knock-down on mitochondrial morphology and ultrastructure and restored YAP1/TAZ signaling. Collectively, our data demonstrate that LIX1 is a key regulator of cristae organization, modulating mtROS level and subsequently regulating the signaling cascades that control fate commitment of digestive mesenchyme-derived cells.
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spelling pubmed-94205202022-08-29 LIX1-mediated changes in mitochondrial metabolism control the fate of digestive mesenchyme-derived cells Guérin, Amandine Angebault, Claire Kinet, Sandrina Cazevieille, Chantal Rojo, Manuel Fauconnier, Jérémy Lacampagne, Alain Mourier, Arnaud Taylor, Naomi de Santa Barbara, Pascal Faure, Sandrine Redox Biol Research Paper YAP1 and TAZ are transcriptional co-activator proteins that play fundamental roles in many biological processes, from cell proliferation and cell lineage fate determination to tumorigenesis. We previously demonstrated that Limb Expression 1 (LIX1) regulates YAP1 and TAZ activity and controls digestive mesenchymal progenitor proliferation. However, LIX1 mode of action remains elusive. Here, we found that endogenous LIX1 is localized in mitochondria and is anchored to the outer mitochondrial membrane through S-palmitoylation of cysteine 84, a residue conserved in all LIX1 orthologs. LIX1 downregulation altered the mitochondrial ultrastructure, resulting in a significantly decreased respiration and attenuated production of mitochondrial reactive oxygen species (mtROS). Mechanistically, LIX1 knock-down impaired the stability of the mitochondrial proteins PHB2 and OPA1 that are found in complexes with mitochondrial-specific phospholipids and are required for cristae organization. Supplementation with unsaturated fatty acids counteracted the effects of LIX1 knock-down on mitochondrial morphology and ultrastructure and restored YAP1/TAZ signaling. Collectively, our data demonstrate that LIX1 is a key regulator of cristae organization, modulating mtROS level and subsequently regulating the signaling cascades that control fate commitment of digestive mesenchyme-derived cells. Elsevier 2022-08-13 /pmc/articles/PMC9420520/ /pubmed/35988446 http://dx.doi.org/10.1016/j.redox.2022.102431 Text en © 2022 The Authors. Published by Elsevier B.V. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Paper
Guérin, Amandine
Angebault, Claire
Kinet, Sandrina
Cazevieille, Chantal
Rojo, Manuel
Fauconnier, Jérémy
Lacampagne, Alain
Mourier, Arnaud
Taylor, Naomi
de Santa Barbara, Pascal
Faure, Sandrine
LIX1-mediated changes in mitochondrial metabolism control the fate of digestive mesenchyme-derived cells
title LIX1-mediated changes in mitochondrial metabolism control the fate of digestive mesenchyme-derived cells
title_full LIX1-mediated changes in mitochondrial metabolism control the fate of digestive mesenchyme-derived cells
title_fullStr LIX1-mediated changes in mitochondrial metabolism control the fate of digestive mesenchyme-derived cells
title_full_unstemmed LIX1-mediated changes in mitochondrial metabolism control the fate of digestive mesenchyme-derived cells
title_short LIX1-mediated changes in mitochondrial metabolism control the fate of digestive mesenchyme-derived cells
title_sort lix1-mediated changes in mitochondrial metabolism control the fate of digestive mesenchyme-derived cells
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9420520/
https://www.ncbi.nlm.nih.gov/pubmed/35988446
http://dx.doi.org/10.1016/j.redox.2022.102431
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