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A bacterial bile acid metabolite modulates Treg activity through the nuclear hormone receptor NR4A1.


ABSTRACT: Bile acids act as signaling molecules that regulate immune homeostasis, including the differentiation of CD4+ T cells into distinct T cell subsets. The bile acid metabolite isoallolithocholic acid (isoalloLCA) enhances the differentiation of anti-inflammatory regulatory T cells (Treg cells) by facilitating the formation of a permissive chromatin structure in the promoter region of the transcription factor forkhead box P3 (Foxp3). Here, we identify gut bacteria that synthesize isoalloLCA from 3-oxolithocholic acid and uncover a gene cluster responsible for the conversion in members of the abundant human gut bacterial phylum Bacteroidetes. We also show that the nuclear hormone receptor NR4A1 is required for the effect of isoalloLCA on Treg cells. Moreover, the levels of isoalloLCA and its biosynthetic genes are significantly reduced in patients with inflammatory bowel diseases, suggesting that isoalloLCA and its bacterial producers may play a critical role in maintaining immune homeostasis in humans.

SUBMITTER: Li W 

PROVIDER: S-EPMC9064000 | biostudies-literature | 2021 Sep

REPOSITORIES: biostudies-literature

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A bacterial bile acid metabolite modulates T<sub>reg</sub> activity through the nuclear hormone receptor NR4A1.

Li Wei W   Hang Saiyu S   Fang Yuan Y   Bae Sena S   Zhang Yancong Y   Zhang Minghao M   Wang Gang G   McCurry Megan D MD   Bae Munhyung M   Paik Donggi D   Franzosa Eric A EA   Rastinejad Fraydoon F   Huttenhower Curtis C   Yao Lina L   Devlin A Sloan AS   Huh Jun R JR  

Cell host & microbe 20210819 9


Bile acids act as signaling molecules that regulate immune homeostasis, including the differentiation of CD4<sup>+</sup> T cells into distinct T cell subsets. The bile acid metabolite isoallolithocholic acid (isoalloLCA) enhances the differentiation of anti-inflammatory regulatory T cells (T<sub>reg</sub> cells) by facilitating the formation of a permissive chromatin structure in the promoter region of the transcription factor forkhead box P3 (Foxp3). Here, we identify gut bacteria that synthesi  ...[more]

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