Gale and Ira Drukier Institute for Children's Health, Weill Cornell Medicine, New York, NY 10065, USA.
Department of Pediatrics, Weill Cornell Medicine, New York, NY 10065, USA.
Sci Immunol. 2024 Mar 15;9(93):eadj4775. doi: 10.1126/sciimmunol.adj4775.
The gut microbiota promotes immune system development in early life, but the interactions between the gut metabolome and immune cells in the neonatal gut remain largely undefined. Here, we demonstrate that the neonatal gut is uniquely enriched with neurotransmitters, including serotonin, and that specific gut bacteria directly produce serotonin while down-regulating monoamine oxidase A to limit serotonin breakdown. We found that serotonin directly signals to T cells to increase intracellular indole-3-acetaldehdye and inhibit mTOR activation, thereby promoting the differentiation of regulatory T cells, both ex vivo and in vivo in the neonatal intestine. Oral gavage of serotonin into neonatal mice resulted in long-term T cell-mediated antigen-specific immune tolerance toward both dietary antigens and commensal bacteria. Together, our study has uncovered an important role for specific gut bacteria to increase serotonin availability in the neonatal gut and identified a function of gut serotonin in shaping T cell response to dietary antigens and commensal bacteria to promote immune tolerance in early life.
肠道微生物群促进生命早期免疫系统的发育,但肠道代谢组与新生儿肠道中免疫细胞之间的相互作用在很大程度上仍未得到明确界定。在这里,我们证明新生儿肠道中富含神经递质,包括血清素,并且特定的肠道细菌可以直接产生血清素,同时下调单胺氧化酶 A 以限制血清素的分解。我们发现血清素直接向 T 细胞发出信号,以增加细胞内吲哚-3-乙醛的含量并抑制 mTOR 的激活,从而促进调节性 T 细胞的分化,无论是在体外还是在新生儿肠道内。将血清素口服灌胃到新生小鼠体内会导致 T 细胞介导的针对饮食抗原和共生细菌的长期特异性免疫耐受。总的来说,我们的研究揭示了特定肠道细菌在增加新生儿肠道中血清素含量方面的重要作用,并确定了肠道血清素在塑造 T 细胞对饮食抗原和共生细菌的反应以促进生命早期免疫耐受方面的功能。