Biotechnology Bulletin ›› 2026, Vol. 42 ›› Issue (9): 276-285.doi: 10.13560/j.cnki.biotech.bull.1985.2026-0004
TONG Xin1,2,3, JIANG Xian-zhe1, WANG Bing1(
)
Received:2026-01-04
Online:2026-09-26
Published:2026-09-16
Contact:
WANG Bing
E-mail:wangb@cau.edu.cn
TONG Xin, JIANG Xian-zhe, WANG Bing. Mechanisms and Applications of Bile Acids in Regulating Adipose Tissue Function and Lipid Metabolism[J]. Biotechnology Bulletin, 2026, 42(9): 276-285.
| [1] | Collins SL, Stine JG, Bisanz JE, et al. Bile acids and the gut microbiota: metabolic interactions and impacts on disease [J]. Nat Rev Microbiol, 2023, 21(4): 236-247. |
| [2] | Funabashi M, Grove TL, Wang M, et al. A metabolic pathway for bile acid dehydroxylation by the gut microbiome [J]. Nature, 2020, 582(7813): 566-570. |
| [3] | Zhang BY, Jiang XZ, Yu Y, et al. Rumen microbiome-driven insight into bile acid metabolism and host metabolic regulation [J]. ISME J, 2024, 18(1): wrae098. |
| [4] | Schmid A, Karrasch T, Schäffler A. The emerging role of bile acids in white adipose tissue [J]. Trends Endocrinol Metab, 2023, 34(11): 718-734. |
| [5] | Li X, Yang J, Zhou XF, et al. Ketogenic diet-induced bile acids protect against obesity through reduced calorie absorption [J]. Nat Metab, 2024, 6(7): 1397-1414. |
| [6] | Lun WJ, Yan QH, Guo XH, et al. Mechanism of action of the bile acid receptor TGR5 in obesity [J]. Acta Pharm Sin B, 2024, 14(2): 468-491. |
| [7] | Yang J, de Vries HD, Mayeuf-Louchart A, et al. Role of bile acid receptor FXR in development and function of brown adipose tissue [J]. BBA Mol Cell Biol Lipds, 2023, 1868(2): 159257. |
| [8] | Chávez-Talavera O, Tailleux A, Lefebvre P, et al. Bile acid control of metabolism and inflammation in obesity, type 2 diabetes, dyslipidemia, and nonalcoholic fatty liver disease [J]. Gastroenterology, 2017, 152(7): 1679-1694.e3. |
| [9] | Schumacher M, DelCurto-Wyffels H, Thomson J, et al. Fat deposition and fat effects on meat quality—a review [J]. Animals, 2022, 12(12): 1550. |
| [10] | Fried SK, Lee MJ, Karastergiou K. Shaping fat distribution: New insights into the molecular determinants of depot- and sex-dependent adipose biology [J]. Obesity, 2015, 23(7): 1345-1352. |
| [11] | Nedergaard J, Bengtsson T, Cannon B. Unexpected evidence for active brown adipose tissue in adult humans [J]. Am J Physiol Endocrinol Metab, 2007, 293(2): E444-E452. |
| [12] | Scheja L, Heeren J. The endocrine function of adipose tissues in health and cardiometabolic disease [J]. Nat Rev Endocrinol, 2019, 15(9): 507-524. |
| [13] | Trayhurn P, Beattie JH. Physiological role of adipose tissue: white adipose tissue as an endocrine and secretory organ [J]. Proc Nutr Soc, 2001, 60(3): 329-339. |
| [14] | Nedergaard J, Cannon B. The browning of white adipose tissue: some burning issues [J]. Cell Metab, 2014, 20(3): 396-407. |
| [15] | Ziętak M, Kovatcheva-Datchary P, Markiewicz LH, et al. Altered microbiota contributes to reduced diet-induced obesity upon cold exposure [J]. Cell Metab, 2016, 23(6): 1216-1223. |
| [16] | Zhao L, Zhu QJ, Li MH, et al. Revisiting brown adipose tissue whitening: Physiological mechanisms and pathophysiological consequences [J]. J Physiol, 2025, 603(19): 5299-5326. |
| [17] | Machado SA, Pasquarelli-do-Nascimento G, Santos da Silva D, et al. Browning of the white adipose tissue regulation: new insights into nutritional and metabolic relevance in health and diseases [J]. Nutr Metab (Lond), 2022, 19: 61. |
| [18] | Jensen-Cody SO, Flippo KH, Claflin KE, et al. FGF21 signals to glutamatergic neurons in the ventromedial hypothalamus to suppress carbohydrate intake [J]. Cell Metab, 2020, 32(2): 273-286.e6. |
| [19] | Haczeyni F, Poekes L, Wang H, et al. Obeticholic acid improves adipose morphometry and inflammation and reduces steatosis in dietary but not metabolic obesity in mice [J]. Obesity, 2017, 25(1): 155-165. |
| [20] | Hu YL, Wu AM, Yan H, et al. Secondary bile acids are associated with body lipid accumulation in obese pigs [J]. Anim Nutr, 2024, 18: 246-256. |
| [21] | Fleishman JS, Kumar S. Bile acid metabolism and signaling in health and disease: molecular mechanisms and therapeutic targets [J]. Sig Transduct Target Ther, 2024, 9: 97. |
| [22] | Chiang JYL. The gut’s feeling on bile acid signaling in NAFLD [J]. Hepatobiliary Surg Nutr, 2018, 7(2): 151-153. |
| [23] | de Aguiar Vallim TQ, Tarling EJ, Edwards PA. Pleiotropic roles of bile acids in metabolism [J]. Cell Metab, 2013, 17(5): 657-669. |
| [24] | Xiang JW, Zhang ZY, Xie HY, et al. Effect of different bile acids on the intestine through enterohepatic circulation based on FXR [J]. Gut Microbes, 2021, 13: 1949095. |
| [25] | Shin DJ, Wang L. Bile acid-activated receptors: a review on FXR and other nuclear receptors [M]//Bile Acids and Their Receptors. Cham Springer International Publishing 2019: 51-72. |
| [26] | Lin XL, Xia L, Zhou YJ, et al. Crosstalk between bile acids and intestinal epithelium: multidimensional roles of farnesoid X receptor and takeda G protein receptor 5 [J]. Int J Mol Sci, 2025, 26(9): 4240. |
| [27] | Deckmyn B, Domenger D, Blondel C, et al. Farnesoid X receptor activation in brain alters brown adipose tissue function via the sympathetic system [J]. Front Mol Neurosci, 2022, 14: 808603. |
| [28] | Duboc H, Taché Y, Hofmann AF. The bile acid TGR5 membrane receptor: From basic research to clinical application [J]. Dig Liver Dis, 2014, 46(4): 302-312. |
| [29] | Cifuentes-Silva E, Cabello-Verrugio C. Bile acids as signaling molecules: role of ursodeoxycholic acid in cholestatic liver disease [J]. Curr Protein Pept Sci, 2024, 25(3): 206-214. |
| [30] | Svensson PA, Olsson M, Andersson-Assarsson JC, et al. The TGR5 gene is expressed in human subcutaneous adipose tissue and is associated with obesity, weight loss and resting metabolic rate [J]. Biochem Biophys Res Commun, 2013, 433(4): 563-566. |
| [31] | Broeders EPM, Nascimento EBM, Havekes B, et al. The bile acid chenodeoxycholic acid increases human brown adipose tissue activity [J]. Cell Metab, 2015, 22(3): 418-426. |
| [32] | Watanabe M, Houten SM, Mataki C, et al. Bile acids induce energy expenditure by promoting intracellular thyroid hormone activation [J]. Nature, 2006, 439(7075): 484-489. |
| [33] | Velazquez-Villegas LA, Perino A, Lemos V, et al. TGR5 signalling promotes mitochondrial fission and beige remodelling of white adipose tissue [J]. Nat Commun, 2018, 9: 245. |
| [34] | Ma H, Wu YQ, Li DL, et al. Gut microbiota drives the metabolic dysregulation in obesity-prone individuals by impairing GDCA-mediated activation of brown adipose thermogenesis and ileal GLP-1 secretion [J]. Acta Pharm Sin B, 2026, 16(2): 836-853. |
| [35] | Wang H, Wang JX, Cui H, et al. Inhibition of fatty acid uptake by TGR5 prevents diabetic cardiomyopathy [J]. Nat Metab, 2024, 6(6): 1161-1177. |
| [36] | Chao PT, Yang L, Aja S, et al. Knockdown of NPY expression in the dorsomedial hypothalamus promotes development of brown adipocytes and prevents diet-induced obesity [J]. Cell Metab, 2011, 13(5): 573-583. |
| [37] | Zangerolamo L, Carvalho M, Barbosa HCL. The critical role of the bile acid receptor TGR5 in energy homeostasis: insights into physiology and therapeutic potential [J]. Int J Mol Sci, 2025, 26(14): 6547. |
| [38] | Jiao N, Baker SS, Chapa-Rodriguez A, et al. Suppressed hepatic bile acid signalling despite elevated production of primary and secondary bile acids in NAFLD [J]. Gut, 2018, 67(10): 1881-1891. |
| [39] | Clifford BL, Sedgeman LR, Williams KJ, et al. FXR activation protects against NAFLD via bile-acid-dependent reductions in lipid absorption [J]. Cell Metab, 2021, 33(8): 1671-1684.e4. |
| [40] | Duan SN, Li X, Fan GF, et al. Targeting bile acid signaling for the treatment of liver diseases: From bench to bed [J]. Biomed Pharmacother, 2022, 152: 113154. |
| [41] | Kumar DP, Rajagopal S, Mahavadi S, et al. Activation of transmembrane bile acid receptor TGR5 stimulates insulin secretion in pancreatic β cells [J]. Biochem Biophys Res Commun, 2012, 427(3): 600-605. |
| [42] | Chen BT, Bai Y, Tong FL, et al. Glycoursodeoxycholic acid regulates bile acids level and alters gut microbiota and glycolipid metabolism to attenuate diabetes [J]. Gut Microbes, 2023, 15: 2192155. |
| [43] | Kjærgaard K, Frisch K, Sørensen M, et al. Obeticholic acid improves hepatic bile acid excretion in patients with primary biliary cholangitis [J]. J Hepatol, 2021, 74(1): 58-65. |
| [44] | Lee MH, Nuccio SP, Mohanty I, et al. How bile acids and the microbiota interact to shape host immunity [J]. Nat Rev Immunol, 2024, 24(11): 798-809. |
| [45] | Münzker J, Haase N, Till A, et al. Functional changes of the gastric bypass microbiota reactivate thermogenic adipose tissue and systemic glucose control via intestinal FXR-TGR5 crosstalk in diet-induced obesity [J]. Microbiome, 2022, 10: 96. |
| [46] | Iqbal M, Yu Q, Tang JQ, et al. Unraveling the gut microbiota’s role in obesity: key metabolites, microbial species, and therapeutic insights [J]. J Bacteriol, 2025, 207(5): e00479-e00424. |
| [47] | Ojeda ML, Nogales F, Carrasco López JA, et al. Microbiota-liver-bile salts axis, a novel mechanism involved in the contrasting effects of sodium selenite and selenium-nanoparticle supplementation on adipose tissue development in adolescent rats [J]. Antioxidants, 2023, 12(5): 1123. |
| [48] | Mancin L, Wu GD, Paoli A. Gut microbiota-bile acid-skeletal muscle axis [J]. Trends Microbiol, 2023, 31(3): 254-269. |
| [49] | Burrin D, Stoll B, Moore D. Digestive physiology of the pig symposium: Intestinal bile acid sensing is linked to key endocrine and metabolic signaling pathways12 [J]. J Anim Sci, 2013, 91(5): 1991-2000. |
| [50] | Zhu MM, Zheng YN, Lou SY, et al. Taurodeoxycholic, taurocholic, and glycocholic acids promote hepatic gluconeogenesis via TGR5 in dairy cows [J]. J Animal Sci Biotechnol, 2025, 16: 142. |
| [51] | Zha AD, Qi M, Deng YK, et al. Gut Bifidobacterium pseudocatenulatum protects against fat deposition by enhancing secondary bile acid biosynthesis [J]. iMeta, 2024, 3(6): e261. |
| [52] | Li YZ, Wang SP, Hu YR, et al. Dietary bile acid supplementation reveals beneficial effects on intestinal healthy status of tongue sole (Cynoglossus semiliaevis) [J]. Fish Shellfish Immunol, 2021, 116: 52-60. |
| [53] | Cao AZ, Lai WQ, Zhang WW, et al. Effects of porcine bile acids on growth performance, antioxidant capacity, blood metabolites and nutrient digestibility of weaned pigs [J]. Anim Feed Sci Technol, 2021, 276: 114931. |
| [54] | Lai WQ, Cao AZ, Li JT, et al. Effect of high dose of bile acids supplementation in broiler feed on growth performance, clinical blood metabolites, and organ development [J]. J Appl Poult Res, 2018, 27(4): 532-539. |
| [55] | Yang BW, Huang SM, Zhao GX, et al. Dietary supplementation of porcine bile acids improves laying performance, serum lipid metabolism and cecal microbiota in late-phase laying hens [J]. Anim Nutr, 2022, 11: 283-292. |
| [56] | Yin C, Tang SL, Liu L, et al. Effects of bile acids on growth performance and lipid metabolism during chronic heat stress in broiler chickens [J]. Animals, 2021, 11(3): 630. |
| [57] | Lai WQ, Huang WG, Dong B, et al. Effects of dietary supplemental bile acids on performance, carcass characteristics, serum lipid metabolites and intestinal enzyme activities of broiler chickens [J]. Poult Sci, 2018, 97(1): 196-202. |
| [58] | Hu YL, Sang N, Wu AM, et al. Different types of bile acids exhibit opposite regulatory effects on lipid metabolism in finishing pigs through bile acid receptors [J]. Anim Nutr, 2025, 21: 25-36. |
| [59] | Gharechahi J, Vahidi MF, Bahram M, et al. Metagenomic analysis reveals a dynamic microbiome with diversified adaptive functions to utilize high lignocellulosic forages in the cattle rumen [J]. ISME J, 2021, 15(4): 1108-1120. |
| [60] | Xue MY, Wu JJ, Xie YY, et al. Investigation of fiber utilization in the rumen of dairy cows based on metagenome-assembled genomes and single-cell RNA sequencing [J]. Microbiome, 2022, 10: 11. |
| [61] | Wang B, Zhang BY, Zhou L, et al. Multi-omics reveals diet-induced metabolic disorders and liver inflammation via microbiota-gut-liver axis [J]. J Nutr Biochem, 2023, 111: 109183. |
| [62] | Yu Y, Zhang BY, Jiang XZ, et al. Exploring the metabolomic landscape: Perilla frutescens as a promising enhancer of production, flavor, and nutrition in Tan lamb meat [J]. Meat Sci, 2024, 209: 109419. |
| [63] | Zhang ZP, Zhao SR, Zhang BY, et al. Multi-omics exploration of rumen microbiota-mediated liver and adipose metabolic adaptations in high-concentrate fed lambs [J]. Anim Nutriomics, 2025, 2: e25. |
| [64] | Wang B, Li HQ, Li Z, et al. Integrative network analysis revealed the molecular function of folic acid on immunological enhancement in a sheep model [J]. Front Immunol, 2022, 13: 913854. |
| [65] | Ma XH, Wang B, Xu ML, et al. Multiomics insights into rumen microbiome and function in grazing lambs: implications for nutrient absorption and grassland sustainability [J]. Microbiome, 2026, 14: 30. |
| [66] | He ZY, Ma YL, Yang SR, et al. Gut microbiota-derived ursodeoxycholic acid from neonatal dairy calves improves intestinal homeostasis and colitis to attenuate extended-spectrum β-lactamase-producing enteroaggregative Escherichia coli infection [J]. Microbiome, 2022, 10: 79. |
| [67] | Du XL, Liu MC, Trevisi E, et al. Expression of hepatic genes involved in bile acid metabolism in dairy cows with fatty liver [J]. J Dairy Sci, 2024, 107(10): 8629-8641. |
| [68] | Fan FX, Wu FC, Guo ZY, et al. Supplementation with ursodeoxycholic acid and bile salt benefits lactation performance, health, and rumen and fecal microbiota of transition dairy cows [J]. J Dairy Sci, 2025, 108(6): 5982-5996. |
| [69] | Li L, Li JX, Liu ZH, et al. Effects of supplementing bile acids on the production performance, fatty acid and bile acid composition, and gut microbiota in transition dairy cows [J]. J Animal Sci Biotechnol, 2025, 16: 83. |
| [70] | Chen YH, Yuan C, Yang TY, et al. Effects of bile acid supplementation on lactation performance, nutrient intake, antioxidative status, and serum biochemistry in mid-lactation dairy cows [J]. Animals, 2024, 14(2): 290. |
| [71] | 宋品, 侯曼曼, 陈悦, 等. 日粮添加胆汁酸对亚急性瘤胃酸中毒山羊生长性能、瘤胃发酵和菌群结构的影响 [J]. 畜牧与兽医, 2024, 56(5): 51-57. |
| Song P, Hou MM, Chen Y, et al. Effects of dietary bile acids on growth performance, rumen fermentation and microbial community structure of goat under subacute ruminal acidosis [J]. Anim Husb Vet Med, 2024, 56(5): 51-57. | |
| [72] | Hou MM, Song P, Chen Y, et al. Bile acids supplementation improves colonic mucosal barrier via alteration of bile acids metabolism and gut microbiota composition in goats with subacute ruminal acidosis (SARA) [J]. Ecotoxicol Environ Saf, 2024, 287: 117313. |
| [73] | Yin QY, Yu JJ, Li JX, et al. Enhancing milk quality and modulating rectal microbiota of dairy goats in starch-rich diet: the role of bile acid supplementation [J]. J Animal Sci Biotechnol, 2024, 15: 7. |
| [74] | Wang Y, Chen XD, Huws SA, et al. Ileal microbial microbiome and its secondary bile acids modulate susceptibility to nonalcoholic steatohepatitis in dairy goats [J]. Microbiome, 2024, 12: 247. |
| [75] | Zhang BY, Sun ZQ, Yu Z, et al. Transcriptome and targeted metabolome analysis provide insights into bile acids’ new roles and mechanisms on fat deposition and meat quality in lamb [J]. Food Res Int, 2022, 162: 111941. |
| [76] | Zhang ZP, Zhang BY, Jiang XZ, et al. Hyocholic acid retards renal fibrosis by regulating lipid metabolism and inflammatory response in a sheep model [J]. Int Immunopharmacol, 2023, 122: 110670. |
| [77] | Zhao HL, Zhu DW, Gao YY, et al. Bile acids modulate hepatic glycolipid metabolism via the microbiota-gut-liver axis in lambs [J]. J Nutr, 2025, 155(7): 2172-2184. |
| [1] | SUN Xian-qing, XIAO Nen-qun, TAN Zhou-jin. A Study on the Gut Microbiome Mechanism of the Combination of Polygonatum sibiricum and Poria cocos for Prevention of Constipation due to ‘Pi’ Deficiency [J]. Biotechnology Bulletin, 2026, 42(7): 328-340. |
| [2] | MA Shi-jie, LI Zheng, LI Wei, GUO Yang-dong, ZHANG Na. Research Progress in Light Signaling Regulation of Fruit Development in Horticultural Crops [J]. Biotechnology Bulletin, 2026, 42(3): 5-18. |
| [3] | LI Si-bo, QIAN Hong-ping, XU Chang-wen, WANG Xiao, LIN Jin-xing, CUI Ya-ning. Research Progress in the Involvement of Intracellular Transport Regulated by Endogenous Elicitors in Plant Growth and Development and Response to Adverse Stress [J]. Biotechnology Bulletin, 2025, 41(7): 17-27. |
| [4] | XIONG Xin-yi, LIU Li-ping, FENG Jie, ZHANG Jin-song, LI De-shun, LIU Peng, LIU Yan-fang. Effect and Mechanism of Cordyceps militaris Extract on Lowering Uric Acid in Hyperuricemia Rats [J]. Biotechnology Bulletin, 2024, 40(11): 34-46. |
| [5] | SHA Shan-shan, DONG Shi-rong, YANG Yu-ju. Research Progress in Gut Microbiota and Metabolites Regulating Host Intestinal Immunity [J]. Biotechnology Bulletin, 2023, 39(8): 126-136. |
| [6] | XIONG Shu-qi. Towards the Understanding on the Physiological Functions of Bile Acids and Interactions with Gut Microbiota [J]. Biotechnology Bulletin, 2023, 39(4): 187-200. |
| [7] | JIANG Xian-zhe, ZHANG Bo-yan, LUO Hai-ling, ZHANG Xin-meng, WANG Bing. Role of Gut-Liver Axis in Animal Nutritional Metabolism and Immunity [J]. Biotechnology Bulletin, 2022, 38(7): 128-135. |
| [8] | HE Ya-lun, ZENG Li-rong, LIU Xiong, ZHANG Ling, WANG Qiong. Effects of High-dose Tannic Acid on the Intestinal Barrier Function and Gut Microbiota in Mice [J]. Biotechnology Bulletin, 2022, 38(4): 278-287. |
| [9] | LI Hai-chao, XIE Fei, ZHANG Yuan-qi, GUAN Ruo-bing. Effects of Resistant and Sensitive Rice Varieties on Gut Microbiota of Nilaparvata lugens [J]. Biotechnology Bulletin, 2021, 37(3): 1-9. |
| [10] | HUANG Xiao-dan, CHEN Meng-yu, HUANG Wen-jie, ZHANG Ming-wei, YAN Shi-juan. Progress Based on Metabolomics:Plant Polyphenols and Their Gut Health Benefit [J]. Biotechnology Bulletin, 2021, 37(1): 123-136. |
| [11] | LIU Yu, DING Qian-wen, RAN Chao, YANG Ya-lin, WANG An-ran, ZHANG Hong-ling, ZHANG Jin-xiong, LI Jie, Rolf Erik OLSEN, Einar RINGØ, ZHANG Zhen, ZHOU Zhi-gang. Research Advances on Short-chain Fatty Acids of Metabolites of Gut Microbiota in Aquatic Animals [J]. Biotechnology Bulletin, 2020, 36(2): 58-64. |
| [12] | WU Qin, XU Zi-yang, LIU Li-ping, ZHANG Wen-ying, SONG Si-yuan. Role of Gut Microbiota in Stress-induced Hypertension in Rats [J]. Biotechnology Bulletin, 2020, 36(2): 83-90. |
| [13] | SUN Wen-yang, LIN Jian-chun, GUN Shuang-bao, WANG Jin-yong. Progress of Immunocyte in the Thermogenesis of Brown Adipose Tissue and Browning of White Adipose Tissue [J]. Biotechnology Bulletin, 2020, 36(1): 175-181. |
| [14] | LI Hao-yu ,HE Xiao-yun. Research Advances on the Physiological Functions of Follistatin [J]. Biotechnology Bulletin, 2018, 34(6): 22-29. |
| [15] | DU Ruo-xi, GUO Ming-zhang, XIE Zi-xin, HE Xiao-yun, HUANG Kun-lun, XU Wen-tao. Application and Prospect of Synthetic Biology in Improving Intestinal Health [J]. Biotechnology Bulletin, 2018, 34(1): 49-59. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||