NLRP3炎性体的启动和激活受磷脂酰肌醇依赖机制的调控。

Claire Hamilton, Antoni Olona, Stuart Leishman, Kelly MacDonald-Ramsahai, Shamshad Cockcroft, Gerald Larrouy-Maumus, Paras K Anand
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引用次数: 1

摘要

脂质稳态失衡与免疫信号的差异有关,并与代谢紊乱密切相关。然而,脂质影响免疫信号的多种方式仍不清楚。磷脂酰肌醇(PI)与许多免疫疾病有关,主要由其磷酸化状态决定。相比之下,附着在PI上的两条脂肪酸链的意义仍然未知。在这项研究中,通过使用基于质谱的分析,我们证明了PI酰基链在调节小鼠巨噬细胞中nod样受体家族含pyrin结构域3 (NLRP3)炎症小体的启动和激活步骤中的作用。在NLRP3刺激下,缺乏ABC转运体ATP结合盒亚家族B成员1 (ABCB1)的细胞,其输出脂质衍生物,显示炎症小体激活缺陷。从机制上讲,Abcb1缺陷改变了PI的总构型,显示出短链与长链PI酰基脂质的比例减少。因此,Abcb1缺陷启动了含有Toll/IL-1R结构域的接头蛋白的快速降解,TLR接头蛋白结合PI(4,5)-二磷酸,导致TLR依赖性信号通路缺陷,从而导致NLRP3表达。此外,这还伴随着NLRP3 Ser291位点磷酸化的增加,并导致炎症小体激活减弱。外源性补充亚油酸(LA)而不是花生四烯酸,可以重新配置PI酰基链。因此,补充LA增加了含有Toll/IL-1R结构域的接头蛋白降解,升高了NLRP3磷酸化,并消除了炎症小体的激活。此外,NLRP3 Ser291磷酸化依赖于pge2诱导的蛋白激酶A信号传导,因为在la富集的细胞中,该途径的药理抑制使NLRP3去磷酸化。总之,据我们所知,我们的研究揭示了一种新的代谢-炎症回路,有助于校准免疫反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

NLRP3 Inflammasome Priming and Activation Are Regulated by a Phosphatidylinositol-Dependent Mechanism.

NLRP3 Inflammasome Priming and Activation Are Regulated by a Phosphatidylinositol-Dependent Mechanism.

NLRP3 Inflammasome Priming and Activation Are Regulated by a Phosphatidylinositol-Dependent Mechanism.

NLRP3 Inflammasome Priming and Activation Are Regulated by a Phosphatidylinositol-Dependent Mechanism.

Imbalance in lipid homeostasis is associated with discrepancies in immune signaling and is tightly linked to metabolic disorders. The diverse ways in which lipids impact immune signaling, however, remain ambiguous. The phospholipid phosphatidylinositol (PI), which is implicated in numerous immune disorders, is chiefly defined by its phosphorylation status. By contrast, the significance of the two fatty acid chains attached to the PI remains unknown. In this study, by using a mass spectrometry-based assay, we demonstrate a role for PI acyl group chains in regulating both the priming and activation steps of the NOD-like receptor family pyrin domain-containing 3 (NLRP3) inflammasome in mouse macrophages. In response to NLRP3 stimuli, cells deficient in ABC transporter ATP Binding Cassette Subfamily B Member 1 (ABCB1), which effluxes lipid derivatives, revealed defective inflammasome activation. Mechanistically, Abcb1 deficiency shifted the total PI configuration exhibiting a reduced ratio of short-chain to long-chain PI acyl lipids. Consequently, Abcb1 deficiency initiated the rapid degradation of Toll/IL-1R domain-containing adaptor protein, the TLR adaptor protein that binds PI (4,5)-bisphosphate, resulting in defective TLR-dependent signaling, and thus NLRP3 expression. Moreover, this accompanied increased NLRP3 phosphorylation at the Ser291 position and contributed to blunted inflammasome activation. Exogenously supplementing wild-type cells with linoleic acid (LA), but not arachidonic acid, reconfigured PI acyl chains. Accordingly, LA supplementation increased Toll/IL-1R domain-containing adaptor protein degradation, elevated NLRP3 phosphorylation, and abrogated inflammasome activation. Furthermore, NLRP3 Ser291 phosphorylation was dependent on PGE2-induced protein kinase A signaling because pharmacological inhibition of this pathway in LA-enriched cells dephosphorylated NLRP3. Altogether, our study reveals, to our knowledge, a novel metabolic-inflammatory circuit that contributes to calibrating immune responses.

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