通过 SLC13A3 吸收伊他康酸可提高肝脏的先天性抗菌免疫能力

IF 10.7 1区 生物学 Q1 CELL BIOLOGY Developmental cell Pub Date : 2024-08-07 DOI:10.1016/j.devcel.2024.07.011
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引用次数: 0

摘要

伊塔康酸是炎性巨噬细胞中线粒体酶免疫反应基因 1(IRG1)产生的一种免疫调节代谢产物。我们最近发现了伊塔康酸从炎症巨噬细胞中释放的重要机制。然而,细胞外的伊塔康酸是否会被非骨髓细胞吸收以发挥免疫调节功能,目前仍是未知数。在这里,我们利用定制设计的 CRISPR 筛选鉴定了二羧酸盐转运体溶质运载家族 13 成员 3(SLC13A3)作为伊他康酸的输入体,并描述了 SLC13A3 在伊他康酸改善的肝脏抗菌先天性免疫中的作用。从功能上讲,肝脏特异性缺失 Slc13a3 会损害体内和体外的肝脏抗菌先天性免疫。从机理上讲,通过 SLC13A3 吸收伊塔康酸可诱导转录因子 EB(TFEB)依赖性溶酶体生物生成,从而改善小鼠肝细胞的抗菌先天性免疫能力。这些发现确定了 SLC13A3 是小鼠肝细胞中一种关键的伊他康酸导入器,将有助于开发基于伊他康酸的强效抗菌疗法。
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Itaconate uptake via SLC13A3 improves hepatic antibacterial innate immunity

Itaconate is an immunoregulatory metabolite produced by the mitochondrial enzyme immune-responsive gene 1 (IRG1) in inflammatory macrophages. We recently identified an important mechanism by which itaconate is released from inflammatory macrophages. However, it remains unknown whether extracellular itaconate is taken up by non-myeloid cells to exert immunoregulatory functions. Here, we used a custom-designed CRISPR screen to identify the dicarboxylate transporter solute carrier family 13 member 3 (SLC13A3) as an itaconate importer and to characterize the role of SLC13A3 in itaconate-improved hepatic antibacterial innate immunity. Functionally, liver-specific deletion of Slc13a3 impairs hepatic antibacterial innate immunity in vivo and in vitro. Mechanistically, itaconate uptake via SLC13A3 induces transcription factor EB (TFEB)-dependent lysosomal biogenesis and subsequently improves antibacterial innate immunity in mouse hepatocytes. These findings identify SLC13A3 as a key itaconate importer in mouse hepatocytes and will aid in the development of potent itaconate-based antibacterial therapeutics.

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来源期刊
Developmental cell
Developmental cell 生物-发育生物学
CiteScore
18.90
自引率
1.70%
发文量
203
审稿时长
3-6 weeks
期刊介绍: Developmental Cell, established in 2001, is a comprehensive journal that explores a wide range of topics in cell and developmental biology. Our publication encompasses work across various disciplines within biology, with a particular emphasis on investigating the intersections between cell biology, developmental biology, and other related fields. Our primary objective is to present research conducted through a cell biological perspective, addressing the essential mechanisms governing cell function, cellular interactions, and responses to the environment. Moreover, we focus on understanding the collective behavior of cells, culminating in the formation of tissues, organs, and whole organisms, while also investigating the consequences of any malfunctions in these intricate processes.
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