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Palmitate Induces Insulin Resistance in H4IIEC3 Hepatocytes through Reactive Oxygen Species Produced by Mitochondria

Visceral adiposity in obesity causes excessive free fatty acid (FFA) flux into the liver via the portal vein and may cause fatty liver disease and hepatic insulin resistance. However, because animal models of insulin resistance induced by lipid infusion or a high fat diet are complex and may be acco...

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Autores principales: Nakamura, Seiji, Takamura, Toshinari, Matsuzawa-Nagata, Naoto, Takayama, Hiroaki, Misu, Hirofumi, Noda, Hiroyo, Nabemoto, Satoko, Kurita, Seiichiro, Ota, Tsuguhito, Ando, Hitoshi, Miyamoto, Ken-ichi, Kaneko, Shuichi
Formato: Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2685662/
https://www.ncbi.nlm.nih.gov/pubmed/19332540
http://dx.doi.org/10.1074/jbc.M901488200
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author Nakamura, Seiji
Takamura, Toshinari
Matsuzawa-Nagata, Naoto
Takayama, Hiroaki
Misu, Hirofumi
Noda, Hiroyo
Nabemoto, Satoko
Kurita, Seiichiro
Ota, Tsuguhito
Ando, Hitoshi
Miyamoto, Ken-ichi
Kaneko, Shuichi
author_facet Nakamura, Seiji
Takamura, Toshinari
Matsuzawa-Nagata, Naoto
Takayama, Hiroaki
Misu, Hirofumi
Noda, Hiroyo
Nabemoto, Satoko
Kurita, Seiichiro
Ota, Tsuguhito
Ando, Hitoshi
Miyamoto, Ken-ichi
Kaneko, Shuichi
author_sort Nakamura, Seiji
collection PubMed
description Visceral adiposity in obesity causes excessive free fatty acid (FFA) flux into the liver via the portal vein and may cause fatty liver disease and hepatic insulin resistance. However, because animal models of insulin resistance induced by lipid infusion or a high fat diet are complex and may be accompanied by alterations not restricted to the liver, it is difficult to determine the contribution of FFAs to hepatic insulin resistance. Therefore, we treated H4IIEC3 cells, a rat hepatocyte cell line, with a monounsaturated fatty acid (oleate) and a saturated fatty acid (palmitate) to investigate the direct and initial effects of FFAs on hepatocytes. We show that palmitate, but not oleate, inhibited insulin-stimulated tyrosine phosphorylation of insulin receptor substrate 2 and serine phosphorylation of Akt, through c-Jun NH(2)-terminal kinase (JNK) activation. Among the well established stimuli for JNK activation, reactive oxygen species (ROS) played a causal role in palmitate-induced JNK activation. In addition, etomoxir, an inhibitor of carnitine palmitoyltransferase-1, which is the rate-limiting enzyme in mitochondrial fatty acid β-oxidation, as well as inhibitors of the mitochondrial respiratory chain complex (thenoyltrifluoroacetone and carbonyl cyanide m-chlorophenylhydrazone) decreased palmitate-induced ROS production. Together, our findings in hepatocytes indicate that palmitate inhibited insulin signal transduction through JNK activation and that accelerated β-oxidation of palmitate caused excess electron flux in the mitochondrial respiratory chain, resulting in increased ROS generation. Thus, mitochondria-derived ROS induced by palmitate may be major contributors to JNK activation and cellular insulin resistance.
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spelling pubmed-26856622009-05-29 Palmitate Induces Insulin Resistance in H4IIEC3 Hepatocytes through Reactive Oxygen Species Produced by Mitochondria Nakamura, Seiji Takamura, Toshinari Matsuzawa-Nagata, Naoto Takayama, Hiroaki Misu, Hirofumi Noda, Hiroyo Nabemoto, Satoko Kurita, Seiichiro Ota, Tsuguhito Ando, Hitoshi Miyamoto, Ken-ichi Kaneko, Shuichi J Biol Chem Mechanisms of Signal Transduction Visceral adiposity in obesity causes excessive free fatty acid (FFA) flux into the liver via the portal vein and may cause fatty liver disease and hepatic insulin resistance. However, because animal models of insulin resistance induced by lipid infusion or a high fat diet are complex and may be accompanied by alterations not restricted to the liver, it is difficult to determine the contribution of FFAs to hepatic insulin resistance. Therefore, we treated H4IIEC3 cells, a rat hepatocyte cell line, with a monounsaturated fatty acid (oleate) and a saturated fatty acid (palmitate) to investigate the direct and initial effects of FFAs on hepatocytes. We show that palmitate, but not oleate, inhibited insulin-stimulated tyrosine phosphorylation of insulin receptor substrate 2 and serine phosphorylation of Akt, through c-Jun NH(2)-terminal kinase (JNK) activation. Among the well established stimuli for JNK activation, reactive oxygen species (ROS) played a causal role in palmitate-induced JNK activation. In addition, etomoxir, an inhibitor of carnitine palmitoyltransferase-1, which is the rate-limiting enzyme in mitochondrial fatty acid β-oxidation, as well as inhibitors of the mitochondrial respiratory chain complex (thenoyltrifluoroacetone and carbonyl cyanide m-chlorophenylhydrazone) decreased palmitate-induced ROS production. Together, our findings in hepatocytes indicate that palmitate inhibited insulin signal transduction through JNK activation and that accelerated β-oxidation of palmitate caused excess electron flux in the mitochondrial respiratory chain, resulting in increased ROS generation. Thus, mitochondria-derived ROS induced by palmitate may be major contributors to JNK activation and cellular insulin resistance. American Society for Biochemistry and Molecular Biology 2009-05-29 /pmc/articles/PMC2685662/ /pubmed/19332540 http://dx.doi.org/10.1074/jbc.M901488200 Text en Copyright © 2009, The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) applies to Author Choice Articles
spellingShingle Mechanisms of Signal Transduction
Nakamura, Seiji
Takamura, Toshinari
Matsuzawa-Nagata, Naoto
Takayama, Hiroaki
Misu, Hirofumi
Noda, Hiroyo
Nabemoto, Satoko
Kurita, Seiichiro
Ota, Tsuguhito
Ando, Hitoshi
Miyamoto, Ken-ichi
Kaneko, Shuichi
Palmitate Induces Insulin Resistance in H4IIEC3 Hepatocytes through Reactive Oxygen Species Produced by Mitochondria
title Palmitate Induces Insulin Resistance in H4IIEC3 Hepatocytes through Reactive Oxygen Species Produced by Mitochondria
title_full Palmitate Induces Insulin Resistance in H4IIEC3 Hepatocytes through Reactive Oxygen Species Produced by Mitochondria
title_fullStr Palmitate Induces Insulin Resistance in H4IIEC3 Hepatocytes through Reactive Oxygen Species Produced by Mitochondria
title_full_unstemmed Palmitate Induces Insulin Resistance in H4IIEC3 Hepatocytes through Reactive Oxygen Species Produced by Mitochondria
title_short Palmitate Induces Insulin Resistance in H4IIEC3 Hepatocytes through Reactive Oxygen Species Produced by Mitochondria
title_sort palmitate induces insulin resistance in h4iiec3 hepatocytes through reactive oxygen species produced by mitochondria
topic Mechanisms of Signal Transduction
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2685662/
https://www.ncbi.nlm.nih.gov/pubmed/19332540
http://dx.doi.org/10.1074/jbc.M901488200
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