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白三烯 B4 通过减少 SOCS1 对 MyD88 表达的抑制作用来增强小鼠巨噬细胞中的 NF-κB 激活。

Leukotriene B4 amplifies NF-κB activation in mouse macrophages by reducing SOCS1 inhibition of MyD88 expression.

机构信息

Division of Pulmonary and Critical Care Medicine, Department of Internal Medicine, University of Michigan Health System, Ann Arbor, Michigan 48109-5642, USA.

出版信息

J Clin Invest. 2011 Feb;121(2):671-82. doi: 10.1172/JCI43302. Epub 2011 Jan 4.

Abstract

Activation of NF-κB and 5-lipoxygenase-mediated (5-LO-mediated) biosynthesis of the lipid mediator leukotriene B4 (LTB4) are pivotal components of host defense and inflammatory responses. However, the role of LTB4 in mediating innate immune responses elicited by specific TLR ligands and cytokines is unknown. Here we have shown that responses dependent on MyD88 (an adaptor protein that mediates signaling through all of the known TLRs, except TLR3, as well as IL-1β and IL-18) are reduced in mice lacking either 5-LO or the LTB4 receptor BTL1, and that macrophages from these mice are impaired in MyD88-dependent activation of NF-κB. This macrophage defect was associated with lower basal and inducible expression of MyD88 and reflected impaired activation of STAT1 and overexpression of the STAT1 inhibitor SOCS1. Expression of MyD88 and responsiveness to the TLR4 ligand LPS were decreased by Stat1 siRNA silencing in WT macrophages and restored by Socs1 siRNA in 5-LO-deficient macrophages. These results uncover a pivotal role in macrophages for the GPCR BLT1 in regulating activation of NF-κB through Stat1-dependent expression of MyD88.

摘要

NF-κB 的激活和 5-脂氧合酶介导的(5-LO 介导的)脂质介质白三烯 B4(LTB4)的生物合成是宿主防御和炎症反应的关键组成部分。然而,LTB4 在介导特定 TLR 配体和细胞因子引发的先天免疫反应中的作用尚不清楚。在这里,我们已经表明,缺乏 5-LO 或 LTB4 受体 BTL1 的小鼠中,依赖于 MyD88(一种通过所有已知的 TLR 介导信号传递的衔接蛋白,除了 TLR3 以及 IL-1β 和 IL-18)的反应减少,并且来自这些小鼠的巨噬细胞在 MyD88 依赖性 NF-κB 激活中受损。这种巨噬细胞缺陷与 MyD88 的基础和诱导表达降低有关,反映了 STAT1 的激活受损和 STAT1 抑制剂 SOCS1 的过度表达。在 WT 巨噬细胞中,通过 Stat1 siRNA 沉默降低了 MyD88 的表达和对 TLR4 配体 LPS 的反应性,并且在 5-LO 缺陷型巨噬细胞中通过 Socs1 siRNA 恢复了反应性。这些结果揭示了 GPCR BLT1 在巨噬细胞中通过 Stat1 依赖性 MyD88 表达调节 NF-κB 激活中的关键作用。

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