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Gluconeogenesis, lipogenesis, and HBV replication are commonly regulated by PGC-1α-dependent pathway

PGC-1α, a major metabolic regulator of gluconeogenesis and lipogenesis, is strongly induced to coactivate Hepatitis B virus (HBV) gene expression in the liver of fasting mice. We found that 8-Br-cAMP and glucocorticoids synergistically induce PGC-1α and its downstream targets, including PEPCK and G6...

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Autores principales: Jhuang, Hong-Jhih, Hsu, Wei-Hsiang, Lin, Kuan-Ting, Hsu, Shih-Lan, Wang, Feng-Sheng, Chou, Chen-Kung, Lee, Kuen-Haur, Tsou, Ann-Ping, Lai, Jin-Mei, Yeh, Sheau-Farn, Huang, Chi-Ying F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4480716/
https://www.ncbi.nlm.nih.gov/pubmed/25762623
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author Jhuang, Hong-Jhih
Hsu, Wei-Hsiang
Lin, Kuan-Ting
Hsu, Shih-Lan
Wang, Feng-Sheng
Chou, Chen-Kung
Lee, Kuen-Haur
Tsou, Ann-Ping
Lai, Jin-Mei
Yeh, Sheau-Farn
Huang, Chi-Ying F.
author_facet Jhuang, Hong-Jhih
Hsu, Wei-Hsiang
Lin, Kuan-Ting
Hsu, Shih-Lan
Wang, Feng-Sheng
Chou, Chen-Kung
Lee, Kuen-Haur
Tsou, Ann-Ping
Lai, Jin-Mei
Yeh, Sheau-Farn
Huang, Chi-Ying F.
author_sort Jhuang, Hong-Jhih
collection PubMed
description PGC-1α, a major metabolic regulator of gluconeogenesis and lipogenesis, is strongly induced to coactivate Hepatitis B virus (HBV) gene expression in the liver of fasting mice. We found that 8-Br-cAMP and glucocorticoids synergistically induce PGC-1α and its downstream targets, including PEPCK and G6Pase. Also, HBV core promoter activity was synergistically enhanced by 8-Br-cAMP and glucocorticoids. Graptopetalum paraguayense (GP), a herbal medicine, is commonly used in Taiwan to treat liver disorders. Partially purified fraction of GP (named HH-F3) suppressed 8-Br-cAMP/glucocorticoid-induced G6Pase, PEPCK and PGC-1α expression and suppressed HBV core promoter activity. HH-F3 blocked HBV core promoter activity via inhibition of PGC-1α expression. Ectopically expressed PGC-1α rescued HH-F3-inhibited HBV surface antigen expression, HBV mRNA production, core protein levels, and HBV replication. HH-F3 also inhibited fatty acid synthase (FASN) expression and decreased lipid accumulation by down-regulating PGC-1α. Thus, HH-F3 can inhibit HBV replication, gluconeogenesis and lipogenesis by down-regulating PGC-1α. Our study indicates that targeting PGC-1α may be a therapeutic strategy for treatment of HBV infections. HH-F3 may have potential use for the treatment of chronic hepatitis B patients with associated metabolic syndrome.
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spelling pubmed-44807162015-06-26 Gluconeogenesis, lipogenesis, and HBV replication are commonly regulated by PGC-1α-dependent pathway Jhuang, Hong-Jhih Hsu, Wei-Hsiang Lin, Kuan-Ting Hsu, Shih-Lan Wang, Feng-Sheng Chou, Chen-Kung Lee, Kuen-Haur Tsou, Ann-Ping Lai, Jin-Mei Yeh, Sheau-Farn Huang, Chi-Ying F. Oncotarget Research Paper PGC-1α, a major metabolic regulator of gluconeogenesis and lipogenesis, is strongly induced to coactivate Hepatitis B virus (HBV) gene expression in the liver of fasting mice. We found that 8-Br-cAMP and glucocorticoids synergistically induce PGC-1α and its downstream targets, including PEPCK and G6Pase. Also, HBV core promoter activity was synergistically enhanced by 8-Br-cAMP and glucocorticoids. Graptopetalum paraguayense (GP), a herbal medicine, is commonly used in Taiwan to treat liver disorders. Partially purified fraction of GP (named HH-F3) suppressed 8-Br-cAMP/glucocorticoid-induced G6Pase, PEPCK and PGC-1α expression and suppressed HBV core promoter activity. HH-F3 blocked HBV core promoter activity via inhibition of PGC-1α expression. Ectopically expressed PGC-1α rescued HH-F3-inhibited HBV surface antigen expression, HBV mRNA production, core protein levels, and HBV replication. HH-F3 also inhibited fatty acid synthase (FASN) expression and decreased lipid accumulation by down-regulating PGC-1α. Thus, HH-F3 can inhibit HBV replication, gluconeogenesis and lipogenesis by down-regulating PGC-1α. Our study indicates that targeting PGC-1α may be a therapeutic strategy for treatment of HBV infections. HH-F3 may have potential use for the treatment of chronic hepatitis B patients with associated metabolic syndrome. Impact Journals LLC 2015-02-03 /pmc/articles/PMC4480716/ /pubmed/25762623 Text en Copyright: © 2015 Jhuang et al. http://creativecommons.org/licenses/by/2.5/ 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 credited.
spellingShingle Research Paper
Jhuang, Hong-Jhih
Hsu, Wei-Hsiang
Lin, Kuan-Ting
Hsu, Shih-Lan
Wang, Feng-Sheng
Chou, Chen-Kung
Lee, Kuen-Haur
Tsou, Ann-Ping
Lai, Jin-Mei
Yeh, Sheau-Farn
Huang, Chi-Ying F.
Gluconeogenesis, lipogenesis, and HBV replication are commonly regulated by PGC-1α-dependent pathway
title Gluconeogenesis, lipogenesis, and HBV replication are commonly regulated by PGC-1α-dependent pathway
title_full Gluconeogenesis, lipogenesis, and HBV replication are commonly regulated by PGC-1α-dependent pathway
title_fullStr Gluconeogenesis, lipogenesis, and HBV replication are commonly regulated by PGC-1α-dependent pathway
title_full_unstemmed Gluconeogenesis, lipogenesis, and HBV replication are commonly regulated by PGC-1α-dependent pathway
title_short Gluconeogenesis, lipogenesis, and HBV replication are commonly regulated by PGC-1α-dependent pathway
title_sort gluconeogenesis, lipogenesis, and hbv replication are commonly regulated by pgc-1α-dependent pathway
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4480716/
https://www.ncbi.nlm.nih.gov/pubmed/25762623
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