乳酸杆菌LA39促进肝脏初级胆汁酸的生物合成和肠道次级胆汁酸的生物转化。

Jun Hu, Qiliang Hou, Wenyong Zheng, Tao Yang, Xianghua Yan
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引用次数: 0

摘要

越来越多的证据表明,肠道微生物群与肝脏代谢有关。操纵肠道菌群被认为是促进肝脏健康的一个有前途的途径。然而,一种潜在的益生菌乳酸杆菌LA39对肝脏代谢的影响尚不清楚。积累的研究已经通过研究蛋白质组学来挖掘受微生物影响的宿主生物事件,并使用无菌(GF)小鼠模型来评估宿主-微生物相互作用。本实验探讨了灌胃L. gasseri LA39对GF小鼠肝脏蛋白表达谱的影响。结果表明,经L. gasseri LA39处理后,共有128个蛋白表达上调,123个蛋白表达下调。进一步的生物信息学分析表明,L. gasseri LA39激活了肝脏初级胆汁酸(BA)的生物合成途径。western blot进一步验证了细胞色素P450家族27亚家族A成员1 (CYP27A1)、细胞色素P450家族7亚家族B成员1 (CYP7B1)和细胞色素P450家族8亚家族B成员1 (CYP8B1) 3种参与BA初级生物合成途径的差异表达蛋白。此外,目标代谢组学分析表明,L. gasseri LA39显著增加了血清和粪便β‍-胆酸(初级BA)、脱氢石胆酸(次级BA)和糖colcolocholic acid-3-sulfate(次级BA)。因此,我们的数据表明,L. gasseri LA39激活肝脏初级BA生物合成,促进肠道次级BA生物转化。综上所述,我们认为L. gasseri LA39可能通过调节BA代谢在肠-肝轴中发挥重要作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Lactobacillus gasseri LA39 promotes hepatic primary bile acid biosynthesis and intestinal secondary bile acid biotransformation.

A growing body of evidence has linked the gut microbiota to liver metabolism. The manipulation of intestinal microflora has been considered as a promising avenue to promote liver health. However, the effects of Lactobacillus gasseri LA39, a potential probiotic, on liver metabolism remain unclear. Accumulating studies have investigated the proteomic profile for mining the host biological events affected by microbes, and used the germ-free (GF) mouse model to evaluate host-microbe interaction. Here, we explored the effects of L. gasseri LA39 gavage on the protein expression profiles of the liver of GF mice. Our results showed that a total of 128 proteins were upregulated, whereas a total of 123 proteins were downregulated by treatment with L. gasseri LA39. Further bioinformatics analyses suggested that the primary bile acid (BA) biosynthesis pathway in the liver was activated by L. gasseri LA39. Three differentially expressed proteins (cytochrome P450 family 27 subfamily A member 1 (CYP27A1), cytochrome P450 family 7 subfamily B member 1 (CYP7B1), and cytochrome P450 family 8 subfamily B member 1 (CYP8B1)) involved in the primary BA biosynthesis pathway were further validated by western blot assay. In addition, targeted metabolomic analyses demonstrated that serum and fecal β‍-muricholic acid (a primary BA), dehydrolithocholic acid (a secondary BA), and glycolithocholic acid-3-sulfate (a secondary BA) were significantly increased by L. gasseri LA39. Thus, our data revealed that L. gasseri LA39 activates the hepatic primary BA biosynthesis and promotes the intestinal secondary BA biotransformation. Based on these findings, we suggest that L. gasseri LA39 confers an important function in the gut‒liver axis through regulating BA metabolism.

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