从原子到生理学:如何才能真正理解炎性小体

F. Schmidt
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引用次数: 2

摘要

对细胞质威胁的快速炎症反应是由炎症小体介导的,炎症小体是一种大型大分子信号传导复合物,控制促炎细胞因子白介素(IL) - 1β和IL - 18的激活,以及细胞焦亡。不同的炎性小体传感器被不同的直接和间接信号激活,随后使适配器分子ASC聚合成核,形成宏观上观察到的ASC斑点信号平台。Caspase‐1在这些位点被自动催化激活,随后成熟促炎细胞因子和成孔效应分子gasdermin D.虽然大多数分子和基本组装原理已经从还原主义实验系统中推导出来,但我们仍然缺乏关于这些复合物在生理环境中的结构和调节以及与其他信号通路相互作用的基本信息。在这篇综述中,提出了一些新的实验方法,包括一些依赖于纳米体和单域抗体的方法,以了解炎症小体在相关组织或细胞中的组装和调节。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
From atoms to physiology: what it takes to really understand inflammasomes
Rapid inflammatory responses to cytosolic threats are mediated by inflammasomes – large macromolecular signalling complexes that control the activation of the pro‐inflammatory cytokines interleukin (IL)‐1β and IL‐18, as well as cell death by pyroptosis. Different inflammasome sensors are activated by diverse direct and indirect signals, and subsequently nucleate the polymerization of the adaptor molecule ASC to form signalling platforms macroscopically observed as ASC specks. Caspase‐1 is autocatalytically activated at these sites and subsequently matures pro‐inflammatory cytokines and the pore‐forming effector molecule gasdermin D. While most molecules and basic assembly principles have been deduced from reductionist experimental systems, we still lack fundamental information on the structure and regulation of these complexes in their physiological environment and in the interplay with other signalling pathways. In this review, novel experimental approaches are proposed, including some that rely on nanobodies and single domain antibodies, to understand inflammasome assembly and regulation in the context of the relevant tissues or cells.
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