Literature DB >> 32896622

12α-Hydroxylated bile acid induces hepatic steatosis with dysbiosis in rats.

Ja-Young Lee1, Hidehisa Shimizu2, Masahito Hagio1, Satoru Fukiya1, Masamichi Watanabe1, Yasutake Tanaka1, Ga-Hyun Joe1, Hitoshi Iwaya1, Reika Yoshitsugu1, Keidai Kikuchi1, Misaki Tsuji1, Nanako Baba1, Takuma Nose1, Koji Tada1, Taketo Hanai1, Shota Hori1, Akari Takeuchi1, Yumiko Furukawa3, Bungo Shirouchi3, Masao Sato3, Tadasuke Ooka4, Yoshitoshi Ogura5, Tetsuya Hayashi5, Atsushi Yokota6, Satoshi Ishizuka7.   

Abstract

There is an increasing need to explore the mechanism of the progression of non-alcoholic fatty liver disease. Steroid metabolism is closely linked to hepatic steatosis and steroids are excreted as bile acids (BAs). Here, we demonstrated that feeding WKAH/HkmSlc inbred rats a diet supplemented with cholic acid (CA) at 0.5 g/kg for 13 weeks induced simple steatosis without obesity. Liver triglyceride and cholesterol levels were increased accompanied by mild elevation of aminotransferase activities. There were no signs of inflammation, insulin resistance, oxidative stress, or fibrosis. CA supplementation increased levels of CA and taurocholic acid (TCA) in enterohepatic circulation and deoxycholic acid (DCA) levels in cecum with an increased ratio of 12α-hydroxylated BAs to non-12α-hydroxylated BAs. Analyses of hepatic gene expression revealed no apparent feedback control of BA and cholesterol biosynthesis. CA feeding induced dysbiosis in cecal microbiota with enrichment of DCA producers, which underlines the increased cecal DCA levels. The mechanism of steatosis was increased expression of Srebp1 (positive regulator of liver lipogenesis) through activation of the liver X receptor by increased oxysterols in the CA-fed rats, especially 4β-hydroxycholesterol (4βOH) formed by upregulated expression of hepatic Cyp3a2, responsible for 4βOH formation. Multiple regression analyses identified portal TCA and cecal DCA as positive predictors for liver 4βOH levels. The possible mechanisms linking these predictors and upregulated expression of Cyp3a2 are discussed. Overall, our observations highlight the role of 12α-hydroxylated BAs in triggering liver lipogenesis and allow us to explore the mechanisms of hepatic steatosis onset, focusing on cholesterol and BA metabolism.
Copyright © 2020 The Authors. Published by Elsevier B.V. All rights reserved.

Entities:  

Keywords:  4β-Hydroxycholesterol; Cholic acid; Deoxycholic acid; Dysbiosis; Non-alcoholic fatty liver disease; Simple hepatic steatosis

Mesh:

Substances:

Year:  2020        PMID: 32896622     DOI: 10.1016/j.bbalip.2020.158811

Source DB:  PubMed          Journal:  Biochim Biophys Acta Mol Cell Biol Lipids        ISSN: 1388-1981            Impact factor:   4.698


  4 in total

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Authors:  Fei-Fei Ding; Miao Li; Tong Wang; Nan-Nan Zhou; Fang Qiao; Zhen-Yu Du; Mei-Ling Zhang
Journal:  Fish Physiol Biochem       Date:  2022-08-31       Impact factor: 3.014

2.  Dietary Macroalgae Saccharina japonica Ameliorates Liver Injury Induced by a High-Carbohydrate Diet in Swamp Eel (Monopterus albus).

Authors:  Chuanqi Yu; Lu Wang; Wanghe Cai; Wenping Zhang; Zhonghua Hu; Zirui Wang; Zhuqing Yang; Mo Peng; Huanhuan Huo; Yazhou Zhang; Qiubai Zhou
Journal:  Front Vet Sci       Date:  2022-06-14

3.  The ratio of 12α to non-12-hydroxylated bile acids reflects hepatic triacylglycerol accumulation in high-fat diet-fed C57BL/6J mice.

Authors:  Wakana Iwasaki; Ryo Yoshida; Hongxia Liu; Shota Hori; Yuki Otsubo; Yasutake Tanaka; Masao Sato; Satoshi Ishizuka
Journal:  Sci Rep       Date:  2022-10-06       Impact factor: 4.996

4.  12α-Hydroxylated bile acid enhances accumulation of adiponectin and immunoglobulin A in the rat ileum.

Authors:  Reika Yoshitsugu; Hongxia Liu; Yoshie Kamo; Akari Takeuchi; Ga-Hyun Joe; Koji Tada; Keidai Kikuchi; Nobuyuki Fujii; Shinri Kitta; Shota Hori; Manami Takatsuki; Hitoshi Iwaya; Yasutake Tanaka; Hidehisa Shimizu; Satoshi Ishizuka
Journal:  Sci Rep       Date:  2021-06-21       Impact factor: 4.379

  4 in total

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