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Crif1 Deficiency Reduces Adipose OXPHOS Capacity and Triggers Inflammation and Insulin Resistance in Mice

Impaired mitochondrial oxidative phosphorylation (OXPHOS) has been proposed as an etiological mechanism underlying insulin resistance. However, the initiating organ of OXPHOS dysfunction during the development of systemic insulin resistance has yet to be identified. To determine whether adipose OXPH...

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Autores principales: Ryu, Min Jeong, Kim, Soung Jung, Kim, Yong Kyung, Choi, Min Jeong, Tadi, Surendar, Lee, Min Hee, Lee, Seong Eun, Chung, Hyo Kyun, Jung, Saet Byel, Kim, Hyun-Jin, Jo, Young Suk, Kim, Koon Soon, Lee, Sang-Hee, Kim, Jin Man, Kweon, Gi Ryang, Park, Ki Cheol, Lee, Jung Uee, Kong, Young Yun, Lee, Chul-Ho, Chung, Jongkyeong, Shong, Minho
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3597503/
https://www.ncbi.nlm.nih.gov/pubmed/23516375
http://dx.doi.org/10.1371/journal.pgen.1003356
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author Ryu, Min Jeong
Kim, Soung Jung
Kim, Yong Kyung
Choi, Min Jeong
Tadi, Surendar
Lee, Min Hee
Lee, Seong Eun
Chung, Hyo Kyun
Jung, Saet Byel
Kim, Hyun-Jin
Jo, Young Suk
Kim, Koon Soon
Lee, Sang-Hee
Kim, Jin Man
Kweon, Gi Ryang
Park, Ki Cheol
Lee, Jung Uee
Kong, Young Yun
Lee, Chul-Ho
Chung, Jongkyeong
Shong, Minho
author_facet Ryu, Min Jeong
Kim, Soung Jung
Kim, Yong Kyung
Choi, Min Jeong
Tadi, Surendar
Lee, Min Hee
Lee, Seong Eun
Chung, Hyo Kyun
Jung, Saet Byel
Kim, Hyun-Jin
Jo, Young Suk
Kim, Koon Soon
Lee, Sang-Hee
Kim, Jin Man
Kweon, Gi Ryang
Park, Ki Cheol
Lee, Jung Uee
Kong, Young Yun
Lee, Chul-Ho
Chung, Jongkyeong
Shong, Minho
author_sort Ryu, Min Jeong
collection PubMed
description Impaired mitochondrial oxidative phosphorylation (OXPHOS) has been proposed as an etiological mechanism underlying insulin resistance. However, the initiating organ of OXPHOS dysfunction during the development of systemic insulin resistance has yet to be identified. To determine whether adipose OXPHOS deficiency plays an etiological role in systemic insulin resistance, the metabolic phenotype of mice with OXPHOS–deficient adipose tissue was examined. Crif1 is a protein required for the intramitochondrial production of mtDNA–encoded OXPHOS subunits; therefore, Crif1 haploinsufficient deficiency in mice results in a mild, but specific, failure of OXPHOS capacity in vivo. Although adipose-specific Crif1-haploinsufficient mice showed normal growth and development, they became insulin-resistant. Crif1-silenced adipocytes showed higher expression of chemokines, the expression of which is dependent upon stress kinases and antioxidant. Accordingly, examination of adipose tissue from Crif1-haploinsufficient mice revealed increased secretion of MCP1 and TNFα, as well as marked infiltration by macrophages. These findings indicate that the OXPHOS status of adipose tissue determines its metabolic and inflammatory responses, and may cause systemic inflammation and insulin resistance.
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spelling pubmed-35975032013-03-20 Crif1 Deficiency Reduces Adipose OXPHOS Capacity and Triggers Inflammation and Insulin Resistance in Mice Ryu, Min Jeong Kim, Soung Jung Kim, Yong Kyung Choi, Min Jeong Tadi, Surendar Lee, Min Hee Lee, Seong Eun Chung, Hyo Kyun Jung, Saet Byel Kim, Hyun-Jin Jo, Young Suk Kim, Koon Soon Lee, Sang-Hee Kim, Jin Man Kweon, Gi Ryang Park, Ki Cheol Lee, Jung Uee Kong, Young Yun Lee, Chul-Ho Chung, Jongkyeong Shong, Minho PLoS Genet Research Article Impaired mitochondrial oxidative phosphorylation (OXPHOS) has been proposed as an etiological mechanism underlying insulin resistance. However, the initiating organ of OXPHOS dysfunction during the development of systemic insulin resistance has yet to be identified. To determine whether adipose OXPHOS deficiency plays an etiological role in systemic insulin resistance, the metabolic phenotype of mice with OXPHOS–deficient adipose tissue was examined. Crif1 is a protein required for the intramitochondrial production of mtDNA–encoded OXPHOS subunits; therefore, Crif1 haploinsufficient deficiency in mice results in a mild, but specific, failure of OXPHOS capacity in vivo. Although adipose-specific Crif1-haploinsufficient mice showed normal growth and development, they became insulin-resistant. Crif1-silenced adipocytes showed higher expression of chemokines, the expression of which is dependent upon stress kinases and antioxidant. Accordingly, examination of adipose tissue from Crif1-haploinsufficient mice revealed increased secretion of MCP1 and TNFα, as well as marked infiltration by macrophages. These findings indicate that the OXPHOS status of adipose tissue determines its metabolic and inflammatory responses, and may cause systemic inflammation and insulin resistance. Public Library of Science 2013-03-14 /pmc/articles/PMC3597503/ /pubmed/23516375 http://dx.doi.org/10.1371/journal.pgen.1003356 Text en © 2013 Ryu 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
Ryu, Min Jeong
Kim, Soung Jung
Kim, Yong Kyung
Choi, Min Jeong
Tadi, Surendar
Lee, Min Hee
Lee, Seong Eun
Chung, Hyo Kyun
Jung, Saet Byel
Kim, Hyun-Jin
Jo, Young Suk
Kim, Koon Soon
Lee, Sang-Hee
Kim, Jin Man
Kweon, Gi Ryang
Park, Ki Cheol
Lee, Jung Uee
Kong, Young Yun
Lee, Chul-Ho
Chung, Jongkyeong
Shong, Minho
Crif1 Deficiency Reduces Adipose OXPHOS Capacity and Triggers Inflammation and Insulin Resistance in Mice
title Crif1 Deficiency Reduces Adipose OXPHOS Capacity and Triggers Inflammation and Insulin Resistance in Mice
title_full Crif1 Deficiency Reduces Adipose OXPHOS Capacity and Triggers Inflammation and Insulin Resistance in Mice
title_fullStr Crif1 Deficiency Reduces Adipose OXPHOS Capacity and Triggers Inflammation and Insulin Resistance in Mice
title_full_unstemmed Crif1 Deficiency Reduces Adipose OXPHOS Capacity and Triggers Inflammation and Insulin Resistance in Mice
title_short Crif1 Deficiency Reduces Adipose OXPHOS Capacity and Triggers Inflammation and Insulin Resistance in Mice
title_sort crif1 deficiency reduces adipose oxphos capacity and triggers inflammation and insulin resistance in mice
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3597503/
https://www.ncbi.nlm.nih.gov/pubmed/23516375
http://dx.doi.org/10.1371/journal.pgen.1003356
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