Suppr超能文献

脂多糖在 TLR4 和 Caspase-4/11 介导的炎症途径中的识别作用。

Lipopolysaccharide Recognition in the Crossroads of TLR4 and Caspase-4/11 Mediated Inflammatory Pathways.

机构信息

Institute of Organic Chemistry, Department of Chemistry, University of Natural Resources and Life Sciences, Vienna, Austria.

Research Group Innate Immunity, Research Center Borstel-Leibniz Lung Center, Airway Research Center North (ARCN), German Center for Lung Disease (DZL), Borstel, Germany.

出版信息

Front Immunol. 2020 Nov 27;11:585146. doi: 10.3389/fimmu.2020.585146. eCollection 2020.

Abstract

The innate immune response to lipopolysaccharide is essential for host defense against Gram-negative bacteria. In response to bacterial infection, the TLR4/MD-2 complex that is expressed on the surface of macrophages, monocytes, dendritic, and epithelial cells senses picomolar concentrations of endotoxic LPS and triggers the production of various pro-inflammatory mediators. In addition, LPS from extracellular bacteria which is either endocytosed or transfected into the cytosol of host cells or cytosolic LPS produced by intracellular bacteria is recognized by cytosolic proteases caspase-4/11 and hosts guanylate binding proteins that are involved in the assembly and activation of the NLRP3 inflammasome. All these events result in the initiation of pro-inflammatory signaling cascades directed at bacterial eradication. However, TLR4-mediated signaling and caspase-4/11-induced pyroptosis are largely involved in the pathogenesis of chronic and acute inflammation. Both extra- and intracellular LPS receptors-TLR4/MD-2 complex and caspase-4/11, respectively-are able to directly bind the lipid A motif of LPS. Whereas the structural basis of lipid A recognition by the TLR4 complex is profoundly studied and well understood, the atomic mechanism of LPS/lipid A interaction with caspase-4/11 is largely unknown. Here we describe the LPS-induced TLR4 and caspase-4/11 mediated signaling pathways and their cross-talk and scrutinize specific structural features of the lipid A motif of diverse LPS variants that have been reported to activate caspase-4/11 or to induce caspase-4/11 mediated activation of NLRP3 inflammasome (either upon transfection of LPS or upon infection of cell cultures with intracellular bacteria or by LPS as a component of the outer membrane vesicles). Generally, inflammatory caspases show rather similar structural requirements as the TLR4/MD-2 complex, so that a "basic" hexaacylated bisphosphorylated lipid A architecture is sufficient for activation. However, caspase-4/11 can sense and respond to much broader variety of lipid A variants compared to the very "narrow" specificity of TLR4/MD-2 complex as far as the number and the length of lipid chains attached at the diglucosamine backbone of lipid A is concerned. Besides, modification of the lipid A phosphate groups with positively charged appendages such as phosphoethanolamine or aminoarabinose could be essential for the interaction of lipid A/LPS with inflammatory caspases and related proteins.

摘要

先天免疫系统对脂多糖的反应对于宿主防御革兰氏阴性细菌至关重要。在细菌感染的情况下,表达在巨噬细胞、单核细胞、树突状细胞和上皮细胞表面的 TLR4/MD-2 复合物能够感应到纳摩尔浓度的内毒素 LPS,并触发各种促炎介质的产生。此外,外源性细菌的 LPS 被内吞或转染到宿主细胞的细胞质中,或细胞内细菌产生的细胞质 LPS,被细胞质中的蛋白酶 caspase-4/11 和参与 NLRP3 炎性小体组装和激活的鸟苷酸结合蛋白识别。所有这些事件都导致了针对细菌清除的促炎信号通路的启动。然而,TLR4 介导的信号转导和 caspase-4/11 诱导的细胞焦亡在慢性和急性炎症的发病机制中起着重要作用。细胞外和细胞内 LPS 受体-TLR4/MD-2 复合物和 caspase-4/11-分别能够直接结合 LPS 的脂质 A 基序。尽管 TLR4 复合物识别脂质 A 的结构基础已经得到了深入研究和充分理解,但 LPS/脂质 A 与 caspase-4/11 相互作用的原子机制在很大程度上仍是未知的。在这里,我们描述了 LPS 诱导的 TLR4 和 caspase-4/11 介导的信号通路及其相互作用,并仔细研究了不同 LPS 变体的脂质 A 基序的特定结构特征,这些特征已被报道能够激活 caspase-4/11 或诱导 caspase-4/11 介导的 NLRP3 炎性小体的激活(在 LPS 转染时或细胞培养物感染细胞内细菌时,或 LPS 作为外膜囊泡的一部分时)。一般来说,炎症性半胱天冬酶表现出与 TLR4/MD-2 复合物相当相似的结构要求,因此,一个“基本”的六酰化双磷酸化脂质 A 结构足以激活。然而,与 TLR4/MD-2 复合物非常“狭窄”的特异性相比,caspase-4/11 可以感知和响应更广泛的脂质 A 变体,就脂质 A 的葡糖胺骨架上连接的脂质链的数量和长度而言。此外,磷酸基团的修饰带有正电荷的附加物,如磷酸乙醇胺或氨基阿拉伯糖,可能对脂质 A/LPS 与炎症性半胱天冬酶和相关蛋白的相互作用至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2e49/7732686/563224a9f73f/fimmu-11-585146-g001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验