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Quantitative Proteomics Analysis of Macrophage Rafts Reveals Compartmentalized Activation of the Proteasome and of Proteasome-mediated ERK Activation in Response to Lipopolysaccharide*S⃞

机译:巨噬细胞筏的定量蛋白质组学分析揭示了对脂多糖*S⃞的蛋白酶体和蛋白酶体介导的ERK活化的区室化激活。

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摘要

Lipopolysaccharide (LPS), a glycolipid component of the outer membrane of Gram-negative bacteria, is a potent initiator of the innate immune response of the macrophage. LPS triggers downstream signaling by selectively recruiting and activating proteins in cholesterol-rich membrane microdomains called lipid rafts. We applied proteomics analysis to macrophage detergent-resistant membranes (DRMs) during an LPS exposure time course in an effort to identify and validate novel events occurring in macrophage rafts. Following metabolic incorporation in cell culture of heavy isotopes of amino acids arginine and lysine ([13C6]Arg and [13C6]Lys) or their light counterparts, a SILAC (stable isotope labeling with amino acids in cell culture)-based quantitative, liquid chromatography-tandem mass spectrometry proteomics approach was used to profile LPS-induced changes in the lipid raft proteome of RAW 264.7 macrophages. Unsupervised network analysis of the proteomics data set revealed a marked representation of the ubiquitin-proteasome system as well as changes in proteasome subunit composition following LPS challenge. Functional analysis of DRMs confirmed that LPS causes selective activation of the proteasome in macrophage rafts and proteasome inactivation outside of rafts. Given previous reports of an essential role for proteasomal degradation of IκB kinase-phosphorylated p105 in LPS activation of ERK mitogen-activated protein kinase, we tested for a role of rafts in compartmentalization of these events. Immunoblotting of DRMs revealed proteasome-dependent activation of MEK and ERK specifically occurring in lipid rafts as well as proteasomal activity upon raft-localized p105 that was enhanced by LPS. Cholesterol extraction from the intact macrophage with methyl-β-cyclodextrin was sufficient to activate ERK, recapitulating the LPS-IκB kinase-p105-MEK-ERK cascade, whereas both it and the alternate raft-disrupting agent nystatin blocked subsequent LPS activation of the ERK cascade. Taken together, our findings indicate a critical, selective role for raft compartmentalization and regulation of proteasome activity in activation of the MEK-ERK pathway.
机译:脂多糖(LPS)是革兰氏阴性细菌外膜的糖脂成分,是巨噬细胞固有免疫反应的有效引发剂。 LPS通过在富含胆固醇的膜微域(称​​为脂质筏)中选择性地募集并激活蛋白质来触发下游信号传导。在LPS暴露时间过程中,我们将蛋白质组学分析应用于巨噬细胞耐去污剂膜(DRM),以识别和验证巨噬细胞筏中发生的新事件。在代谢过程中将氨基酸精氨酸和赖氨酸([13C6] Arg和[13C6] Lys)或它们的轻质对应物的重同位素代谢合并到细胞培养物中后,进行了基于SILAC(细胞培养物中氨基酸的稳定同位素标记)的定量液相色谱串联质谱蛋白质组学方法用于分析LPS诱导的RAW 264.7巨噬细胞脂质筏蛋白质组中的变化。蛋白质组学数据集的无监督网络分析显示了LPS攻击后泛素-蛋白酶体系统的明显代表以及蛋白酶体亚基组成的变化。 DRMs的功能分析证实,LPS会导致巨噬细胞筏中的蛋白酶体选择性激活,而筏外的蛋白酶体失活。鉴于先前报道的蛋白酶体降解IκB激酶磷酸化的p105在ERK丝裂原活化蛋白激酶的LPS激活中的重要作用,我们测试了筏在这些事件的区室化中的作用。 DRMs的免疫印迹显示,MEK和ERK的蛋白酶体依赖性活化特别发生在脂质筏中,而筏定位的p105的蛋白酶体活性被LPS增强。用甲基-β-环糊精从完整的巨噬细胞中提取胆固醇足以激活ERK,概括了LPS-IκB激酶-p105-MEK-ERK级联反应,而它和替代的筏破坏剂制霉菌素抑制了随后的LPS对ERK的激活。级联。综上所述,我们的发现表明在MEK-ERK途径激活中,筏板区隔和蛋白酶体活性的调节具有关键的选择性作用。

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