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乳酸通过稳定树突状细胞中的 HIF-1α 来限制中枢神经系统自身免疫。

Lactate limits CNS autoimmunity by stabilizing HIF-1α in dendritic cells.

机构信息

Ann Romney Center for Neurologic Diseases, Harvard Medical School, Brigham and Women's Hospital, Boston, MA, USA.

Evergrande Center for Immunologic Diseases, Harvard Medical School, Brigham and Women's Hospital, Boston, MA, USA.

出版信息

Nature. 2023 Aug;620(7975):881-889. doi: 10.1038/s41586-023-06409-6. Epub 2023 Aug 9.

Abstract

Dendritic cells (DCs) have a role in the development and activation of self-reactive pathogenic T cells. Genetic variants that are associated with the function of DCs have been linked to autoimmune disorders, and DCs are therefore attractive therapeutic targets for such diseases. However, developing DC-targeted therapies for autoimmunity requires identification of the mechanisms that regulate DC function. Here, using single-cell and bulk transcriptional and metabolic analyses in combination with cell-specific gene perturbation studies, we identify a regulatory loop of negative feedback that operates in DCs to limit immunopathology. Specifically, we find that lactate, produced by activated DCs and other immune cells, boosts the expression of NDUFA4L2 through a mechanism mediated by hypoxia-inducible factor 1α (HIF-1α). NDUFA4L2 limits the production of mitochondrial reactive oxygen species that activate XBP1-driven transcriptional modules in DCs that are involved in the control of pathogenic autoimmune T cells. We also engineer a probiotic that produces lactate and suppresses T cell autoimmunity through the activation of HIF-1α-NDUFA4L2 signalling in DCs. In summary, we identify an immunometabolic pathway that regulates DC function, and develop a synthetic probiotic for its therapeutic activation.

摘要

树突状细胞 (DCs) 在自身反应性致病性 T 细胞的发育和激活中发挥作用。与 DC 功能相关的遗传变异与自身免疫性疾病有关,因此 DC 是此类疾病有吸引力的治疗靶点。然而,为自身免疫开发针对 DC 的治疗方法需要确定调节 DC 功能的机制。在这里,我们使用单细胞和批量转录组和代谢分析以及细胞特异性基因扰动研究,鉴定了一个在 DC 中起作用的负反馈调节环,以限制免疫病理学。具体来说,我们发现由激活的 DC 和其他免疫细胞产生的乳酸通过缺氧诱导因子 1α (HIF-1α) 介导的机制来增强 NDUFA4L2 的表达。NDUFA4L2 限制了线粒体活性氧的产生,从而激活了 DC 中涉及控制致病性自身免疫性 T 细胞的 XBP1 驱动的转录模块。我们还通过在 DC 中激活 HIF-1α-NDUFA4L2 信号来设计一种产生乳酸并通过抑制 T 细胞自身免疫的益生菌。总之,我们确定了一个调节 DC 功能的免疫代谢途径,并开发了一种用于其治疗激活的合成益生菌。

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