Suppressed hepatic bile acid signalling despite elevated production of primary and secondary bile acids in NAFLD

被引:524
作者
Jiao, Na [1 ]
Baker, Susan S. [2 ,3 ]
Chapa-Rodriguez, Adrian [2 ]
Liu, Wensheng [2 ]
Nugent, Colleen A. [2 ]
Tsompana, Maria [4 ,5 ]
Mastrandrea, Lucy [6 ]
Buck, Michael J. [3 ,4 ,5 ]
Baker, Robert D. [2 ]
Genco, Robert J. [3 ,7 ,8 ]
Zhu, Ruixin [1 ]
Zhu, Lixin [2 ,3 ]
机构
[1] Tongji Univ, Dept Bioinformat, Sch Life Sci & Technol, 1239 Siping Rd, Shanghai 200092, Peoples R China
[2] SUNY Buffalo, Dept Pediat, Digest Dis & Nutr Ctr, Buffalo, NY USA
[3] SUNY Buffalo, Genome Environm & Microbiome Community Excellence, Buffalo, NY USA
[4] SUNY Buffalo, Dept Biochem, Buffalo, NY USA
[5] SUNY Buffalo, Ctr Excellence Bioinformat & Life Sci, Buffalo, NY USA
[6] SUNY Buffalo, Dept Pediat, Div Endocrinol, Buffalo, NY USA
[7] SUNY Buffalo, Dept Oral Biol, Buffalo, NY USA
[8] SUNY Buffalo, Dept Microbiol & Immunol, Buffalo, NY USA
基金
上海市自然科学基金; 中国国家自然科学基金;
关键词
bile acid; bile acid metabolism; nonalcoholic steatohepatitis; intestinal microbiology; FATTY LIVER-DISEASE; FARNESOID-X-RECEPTOR; PEDIATRIC NONALCOHOLIC STEATOHEPATITIS; SALT EXPORT PUMP; NUCLEAR RECEPTOR; UNITED-STATES; DIETARY-FAT; FXR; EXPRESSION; GENE;
D O I
10.1136/gutjnl-2017-314307
中图分类号
R57 [消化系及腹部疾病];
学科分类号
摘要
Objective Bile acids are regulators of lipid and glucose metabolism, and modulate inflammation in the liver and other tissues. Primary bile acids such as cholic acid and chenodeoxycholic acid (CDCA) are produced in the liver, and converted into secondary bile acids such as deoxycholic acid (DCA) and lithocholic acid by gut microbiota. Here we investigated the possible roles of bile acids in non-alcoholic fatty liver disease (NAFLD) pathogenesis and the impact of the gut microbiome on bile acid signalling in NAFLD. Design Serum bile acid levels and fibroblast growth factor 19 (FGF19), liver gene expression profiles and gut microbiome compositions were determined in patients with NAFLD, high-fat diet-fed rats and their controls. Results Serum concentrations of primary and secondary bile acids were increased in patients with NAFLD. In per cent, the farnesoid X receptor (FXR) antagonistic DCA was increased, while the agonistic CDCA was decreased in NAFLD. Increased mRNA expression for cytochrome P450 7A1, Na+-taurocholate cotransporting polypeptide and paraoxonase 1, no change in mRNA expression for small heterodimer partner and bile salt export pump, and reduced serum FGF19 were evidence of impaired FXR and fibroblast growth factor receptor 4 (FGFR4)-mediated signalling in NAFLD. Taurine and glycine metabolising bacteria were increased in the gut of patients with NAFLD, reflecting increased secondary bile acid production. Similar changes in liver gene expression and the gut microbiome were observed in high-fat diet-fed rats. Conclusions The serum bile acid profile, the hepatic gene expression pattern and the gut microbiome composition consistently support an elevated bile acid production in NAFLD. The increased proportion of FXR antagonistic bile acid explains, at least in part, the suppression of hepatic FXR-mediated and FGFR4-mediated signalling. Our study suggests that future NAFLD intervention may target the components of FXR signalling, including the bile acid converting gut microbiome.
引用
收藏
页码:1881 / 1891
页数:11
相关论文
共 49 条
[31]   Farnesoid X receptor and bile salts are involved in transcriptional regulation of the gene encoding the human bile salt export pump [J].
Plass, JRM ;
Mol, O ;
Heegsma, J ;
Geuken, M ;
Faber, KN ;
Jansen, PLM ;
Müller, M .
HEPATOLOGY, 2002, 35 (03) :589-596
[32]   Inhibition of ileal bile acid uptake protects against nonalcoholic fatty liver disease in high-fat diet-fed mice [J].
Rao, Anuradha ;
Kosters, Astrid ;
Mells, Jamie E. ;
Zhang, Wujuan ;
Setchell, Kenneth D. R. ;
Amanso, Angelica M. ;
Wynn, Grace M. ;
Xu, Tianlei ;
Keller, Brad T. ;
Yin, Hong ;
Banton, Sophia ;
Jones, Dean P. ;
Wu, Hao ;
Dawson, Paul A. ;
Karpen, Saul J. .
SCIENCE TRANSLATIONAL MEDICINE, 2016, 8 (357)
[33]  
REDDY BS, 1977, CANCER RES, V37, P2132
[34]  
REDDY BS, 1981, CANCER RES, V41, P3766
[35]   Bile salt biotransformations by human intestinal bacteria [J].
Ridlon, JM ;
Kang, DJ ;
Hylemon, PB .
JOURNAL OF LIPID RESEARCH, 2006, 47 (02) :241-259
[36]   Gut Microbiota Regulates Bile Acid Metabolism by Reducing the Levels of Tauro-beta-muricholic Acid, a Naturally Occurring FXR Antagonist [J].
Sayin, Sama I. ;
Wahlstrom, Annika ;
Felin, Jenny ;
Jantti, Sirkku ;
Marschall, Hanns-Ulrich ;
Bamberg, Krister ;
Angelin, Bo ;
Hyotylainen, Tuulia ;
Oresic, Matej ;
Backhed, Fredrik .
CELL METABOLISM, 2013, 17 (02) :225-235
[37]   A role for FXR and human FGF-19 in the repression of paraoxonase-1 gene expression by bile acids [J].
Shih, DM ;
Kast-Woelbern, HR ;
Wong, J ;
Xia, YR ;
Edwards, PA ;
Lusis, AJ .
JOURNAL OF LIPID RESEARCH, 2006, 47 (02) :384-392
[38]   Targeted disruption of the nuclear receptor FXR/BAR impairs bile acid and lipid homeostasis [J].
Sinal, CJ ;
Tohkin, M ;
Miyata, M ;
Ward, JM ;
Lambert, G ;
Gonzalez, FJ .
CELL, 2000, 102 (06) :731-744
[39]   TGR5-Mediated Bile Acid Sensing Controls Glucose Homeostasis [J].
Thomas, Charles ;
Gioiello, Antimo ;
Noriega, Lilia ;
Strehle, Axelle ;
Oury, Julien ;
Rizzo, Giovanni ;
Macchiarulo, Antonio ;
Yamamoto, Hiroyasu ;
Mataki, Chikage ;
Pruzanski, Mark ;
Pellicciari, Roberto ;
Auwerx, Johan ;
Schoonjans, Kristina .
CELL METABOLISM, 2009, 10 (03) :167-177
[40]   Bile acids induce the expression of the human peroxisome proliferator-activated receptor α gene via activation of the farnesoid X receptor [J].
Torra, IP ;
Claudel, T ;
Duval, C ;
Kosykh, V ;
Fruchart, JC ;
Staels, B .
MOLECULAR ENDOCRINOLOGY, 2003, 17 (02) :259-272