Gut microbiota regulates hepatic ketogenesis and lipid accumulation in ketogenic diet-induced hyperketonemia by disrupting bile acid metabolism

被引:0
作者
Luo, Zhengzhong [1 ,2 ]
Huang, Yixin [1 ,2 ]
Yong, Kang [3 ]
Wu, Dan [1 ,2 ]
Zheng, Linfeng [1 ,2 ]
Yao, Xueping [1 ,2 ]
Shen, Liuhong [1 ,2 ]
Yu, Shumin [1 ,2 ]
Wang, Baoning [4 ]
Cao, Suizhong [1 ,2 ]
机构
[1] Sichuan Agr Univ, Coll Vet Med, 211 Huimin Rd, Chengdu 611130, Peoples R China
[2] Key Lab Anim Dis & Human Hlth Sichuan Prov, Chengdu, Sichuan, Peoples R China
[3] Chongqing Three Gorges Vocat Coll, Coll Anim Sci & Technol, Chongqing, Peoples R China
[4] Sichuan Univ, West China Sch Basic Med Sci & Forens Med, 17 Renmin South Rd, Chengdu 610041, Peoples R China
关键词
Ketogenic diet; hyperketonemia; gut microbiota; ketogenesis; bile acids; Clostridium perfringens; PPAR-ALPHA; HIGH-FAT; LIVER; RECEPTOR; ENZYMES; INFLAMMATION; PHYSIOLOGY; STEATOSIS; IMPACT; AGPAT;
D O I
10.1080/19490976.2025.2496437
中图分类号
R57 [消化系及腹部疾病];
学科分类号
摘要
The ketogenic diet (KD) induces prolonged hyperketonemia, characterized by elevated circulating level of beta-hydroxybutyrate. However, the KD can negatively affect host metabolic health by altering the gut microbial community. Despite this, the regulatory effect of the gut microbiota on hepatic ketogenesis and triacylglycerol (TAG) accumulation during a KD remains poorly understood. Here, we hypothesized that the commensal bacterium regulates hepatic lipid metabolism in association with KD-induced hyperketonemia. The KD disrupts the remodeling of the gut microbiota following antibiotic-induced depletion. The capacity for ketogenesis and the severity of TAG accumulation in the liver closely correlated with changes in the gut microbial composition and the up-regulation of hepatic farnesoid X receptor (FXR), peroxisome proliferator-activated receptor alpha (PPAR alpha), and diacylglycerol O-acyltransferase 2 (DGAT2), which were modulated by bile acid metabolism through the gut-liver axis. The commensal bacterium Clostridium perfringens type A is particularly implicated in prolonged hyperketonemia, exacerbating hepatic ketogenesis and steatosis by disrupting secondary bile acid metabolism. The increased conversion of deoxycholic acid to 12-ketolithocholic acid represents a critical microbial pathway during C. perfringens colonization. These findings illuminate the adverse effects of the gut microbiota on hepatic adaptation to a KD and highlight the regulatory role of C. perfringens in ketonic states.
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页数:23
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共 91 条
  • [71] The interplay between diet and the gut microbiome: implications for health and disease
    Ross, Fiona C.
    Patangia, Dhrati
    Grimaud, Ghjuvan
    Lavelle, Aonghus
    Dempsey, Eugene M.
    Ross, R. Paul
    Stanton, Catherine
    [J]. NATURE REVIEWS MICROBIOLOGY, 2024, 22 (11) : 671 - 686
  • [72] Mechanisms of hepatic fatty acid oxidation and ketogenesis during fasting
    Ruppert, Philip M. M.
    Kersten, Sander
    [J]. TRENDS IN ENDOCRINOLOGY AND METABOLISM, 2024, 35 (02) : 107 - 124
  • [73] Statins aggravate insulin resistance through reduced blood glucagon-like peptide-1 levels in a microbiota-dependent manner
    She, Jianqing
    Tuerhongjiang, Gulinigaer
    Guo, Manyun
    Liu, Junhui
    Hao, Xiang
    Guo, Liangan
    Liu, Nairong
    Xi, Wen
    Zheng, Tao
    Du, Bin
    Lou, Bowen
    Gao, Xiyu
    Yuan, Xiao
    Yu, Yue
    Zhang, Yi
    Gao, Fan
    Zhuo, Xiaozhen
    Xiong, Ying
    Zhang, Xiang
    Yu, Jun
    Yuan, Zuyi
    Wu, Yue
    [J]. CELL METABOLISM, 2024, 36 (02) : 408 - 421.e5
  • [74] High-resolution phylogenetic microbial community profiling
    Singer, Esther
    Bushnell, Brian
    Coleman-Derr, Devin
    Bowman, Brett
    Bowers, Robert M.
    Levy, Asaf
    Gies, Esther A.
    Cheng, Jan-Fang
    Copeland, Alex
    Klenk, Hans-Peter
    Hallam, Steven J.
    Hugenholtz, Philip
    Tringe, Susannah G.
    Woyke, Tanja
    [J]. ISME JOURNAL, 2016, 10 (08) : 2020 - 2032
  • [75] The farnesoid X receptor induces very low density lipoprotein receptor gene expression
    Sirvent, A
    Claudel, T
    Martin, G
    Brozek, J
    Kosykh, V
    Darteil, RL
    Hum, DW
    Fruchart, JC
    Staels, B
    [J]. FEBS LETTERS, 2004, 566 (1-3): : 173 - 177
  • [76] Biochemistry, physiology, and genetics of GPAT, AGPAT, and lipin enzymes in triglyceride synthesis
    Takeuchi, Kazuharu
    Reue, Karen
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 2009, 296 (06): : E1195 - E1209
  • [77] Hyperoside attenuates non-alcoholic fatty liver disease in rats via cholesterol metabolism and bile acid metabolism
    Wang, Songsong
    Sheng, Feiya
    Zou, Liang
    Xiao, Jianbo
    Li, Peng
    [J]. JOURNAL OF ADVANCED RESEARCH, 2021, 34 : 109 - 122
  • [78] Bile acids lower triglyceride levels via a pathway involving FXR, SHP, and SREBP-1c
    Watanabe, M
    Houten, SM
    Wang, L
    Moschetta, A
    Mangelsdorf, DJ
    Heyman, RA
    Moore, DD
    Auwerx, J
    [J]. JOURNAL OF CLINICAL INVESTIGATION, 2004, 113 (10) : 1408 - 1418
  • [79] Clostridium ramosum Promotes High-Fat Diet-Induced Obesity in Gnotobiotic Mouse Models
    Woting, Anni
    Pfeiffer, Nora
    Loh, Gunnar
    Klaus, Susanne
    Blaut, Michael
    [J]. MBIO, 2014, 5 (05):
  • [80] Akkermansia muciniphila alleviates high-fat-diet-related metabolic-associated fatty liver disease by modulating gut microbiota and bile acids
    Wu, Wenrui
    Kaicen, Wang
    Bian, Xiaoyuan
    Yang, Liya
    Ding, Shi
    Li, Yating
    Li, Shengjie
    Zhuge, Aoxiang
    Li, Lanjuan
    [J]. MICROBIAL BIOTECHNOLOGY, 2023, : 1924 - 1939