Glucomannan promotes Bacteroides ovatus to improve intestinal barrier function and ameliorate insulin resistance

IF 23.7 Q1 MICROBIOLOGY
iMeta Pub Date : 2024-01-03 DOI:10.1002/imt2.163
Qixing Nie, Yonggan Sun, Wenbing Hu, Chunhua Chen, Qiongni Lin, Shaoping Nie
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Abstract

Bioactive dietary fiber has been proven to confer numerous health benefits against metabolic diseases based on the modification of gut microbiota. The metabolic protective effects of glucomannan have been previously reported in animal experiments and clinical trials. However, critical microbial signaling metabolites and the host targets associated with the metabolic benefits of glucomannan remain elusive. The results of this study revealed that glucomannan supplementation alleviated high-fat diet (HFD)-induced insulin resistance in mice and that its beneficial effects were dependent on the gut microbiota. Administration of glucomannan to mice promoted the growth of Bacteroides ovatus. Moreover, colonization with B. ovatus in HFD-fed mice resulted in a decrease in insulin resistance, accompanied by improved intestinal barrier integrity and reduced systemic inflammation. Furthermore, B. ovatus-derived indoleacetic acid (IAA) was established as a key bioactive metabolite that fortifies intestinal barrier function via activation of intestinal aryl hydrocarbon receptor (AhR), leading to an amelioration in insulin resistance. Thus, we conclude that glucomannan acts through the B. ovatus-IAA-intestinal AhR axis to relieve insulin resistance.

Abstract Image

葡甘露聚糖促进卵形乳杆菌改善肠道屏障功能,改善胰岛素抵抗
事实证明,生物活性膳食纤维能改变肠道微生物群,从而对代谢性疾病产生诸多健康益处。此前已有动物实验和临床试验报道了葡甘聚糖的代谢保护作用。然而,与葡甘聚糖的代谢益处相关的关键微生物信号代谢物和宿主靶标仍未确定。这项研究的结果表明,补充葡甘聚糖可缓解高脂饮食(HFD)诱导的小鼠胰岛素抵抗,而且其有益作用取决于肠道微生物群。给小鼠服用葡甘聚糖能促进卵巢乳杆菌的生长。此外,在高密度脂蛋白饲料喂养的小鼠体内定植卵巢乳杆菌可降低胰岛素抵抗,同时改善肠道屏障的完整性并减少全身炎症。此外,卵菌衍生的吲哚乙酸(IAA)是一种关键的生物活性代谢物,可通过激活肠道芳基烃受体(AhR)强化肠道屏障功能,从而改善胰岛素抵抗。因此,我们得出结论,葡甘聚糖是通过卵形虫-IAA-肠道 AhR 轴来缓解胰岛素抵抗的。
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CiteScore
10.80
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