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Caspase-1 Engages Full-Length Gasdermin D through Two Distinct Interfaces That Mediate Caspase Recruitment and Substrate Cleavage.半胱天冬酶-1通过两个不同的界面与全长Gasdermin D结合,这两个界面介导半胱天冬酶的招募和底物切割。
Immunity. 2020 Jul 14;53(1):106-114.e5. doi: 10.1016/j.immuni.2020.06.007. Epub 2020 Jun 17.
2
The trinity of COVID-19: immunity, inflammation and intervention.COVID-19 的三位一体:免疫、炎症和干预。
Nat Rev Immunol. 2020 Jun;20(6):363-374. doi: 10.1038/s41577-020-0311-8. Epub 2020 Apr 28.
3
Structural Mechanism for GSDMD Targeting by Autoprocessed Caspases in Pyroptosis.细胞焦亡的 Caspase 自加工靶向 GSDMD 的结构机制。
Cell. 2020 Mar 5;180(5):941-955.e20. doi: 10.1016/j.cell.2020.02.002. Epub 2020 Feb 27.
4
A pneumonia outbreak associated with a new coronavirus of probable bat origin.一种新型冠状病毒引发的肺炎疫情,该病毒可能来源于蝙蝠。
Nature. 2020 Mar;579(7798):270-273. doi: 10.1038/s41586-020-2012-7. Epub 2020 Feb 3.
5
Beyond inflammasomes: emerging function of gasdermins during apoptosis and NETosis.超越炎症小体:Gasdermins 在细胞凋亡和 NETosis 中的新功能。
EMBO J. 2020 Jan 15;39(2):e103397. doi: 10.15252/embj.2019103397. Epub 2019 Dec 3.
6
Oxidative status and metabolic profile in a long-lived bird preparing for extreme endurance migration.在准备进行超长距离耐力迁徙的长寿鸟类中氧化状态和代谢特征。
Sci Rep. 2019 Nov 26;9(1):17616. doi: 10.1038/s41598-019-54057-6.
7
Aging Induces an Nlrp3 Inflammasome-Dependent Expansion of Adipose B Cells That Impairs Metabolic Homeostasis.衰老诱导脂肪细胞中依赖 Nlrp3 炎性小体的扩增,从而损害代谢稳态。
Cell Metab. 2019 Dec 3;30(6):1024-1039.e6. doi: 10.1016/j.cmet.2019.10.006. Epub 2019 Nov 14.
8
NLRP3 inflammasome suppression improves longevity and prevents cardiac aging in male mice.NLRP3 炎性小体抑制可延长雄性小鼠寿命并预防心脏衰老。
Aging Cell. 2020 Jan;19(1):e13050. doi: 10.1111/acel.13050. Epub 2019 Oct 18.
9
A metaanalysis of bat phylogenetics and positive selection based on genomes and transcriptomes from 18 species.基于 18 种蝙蝠的基因组和转录组的蝙蝠系统发育和正选择的荟萃分析。
Proc Natl Acad Sci U S A. 2019 Jun 4;116(23):11351-11360. doi: 10.1073/pnas.1814995116. Epub 2019 May 21.
10
Caspase-1 initiates apoptosis in the absence of gasdermin D.半胱氨酸天冬氨酸蛋白酶-1 在没有天冬氨酸半胱氨酸酶 D 的情况下启动细胞凋亡。
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调控半胱天冬酶-1 和白细胞介素-1β揭示了蝙蝠炎症减弱的其他机制。

Complementary regulation of caspase-1 and IL-1β reveals additional mechanisms of dampened inflammation in bats.

机构信息

Programme in Emerging Infectious Diseases, Duke-National University of Singapore Medical School, 169857, Singapore.

Lee Kong Chian School of Medicine, Nanyang Technological University, 636921, Singapore.

出版信息

Proc Natl Acad Sci U S A. 2020 Nov 17;117(46):28939-28949. doi: 10.1073/pnas.2003352117. Epub 2020 Oct 26.

DOI:10.1073/pnas.2003352117
PMID:33106404
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7682399/
Abstract

Bats have emerged as unique mammalian vectors harboring a diverse range of highly lethal zoonotic viruses with minimal clinical disease. Despite having sustained complete genomic loss of AIM2, regulation of the downstream inflammasome response in bats is unknown. AIM2 sensing of cytoplasmic DNA triggers ASC aggregation and recruits caspase-1, the central inflammasome effector enzyme, triggering cleavage of cytokines such as IL-1β and inducing GSDMD-mediated pyroptotic cell death. Restoration of AIM2 in bat cells led to intact ASC speck formation, but intriguingly resulted in a lack of caspase-1 or consequent IL-1β activation. We further identified two residues undergoing positive selection pressures in caspase-1 that abrogate its enzymatic function and are crucial in human caspase-1 activity. Functional analysis of another bat lineage revealed a targeted mechanism for loss of IL-1β cleavage and elucidated an inverse complementary relationship between caspase-1 and IL-1β, resulting in overall diminished signaling across bats of both suborders. Thus we report strategies that additionally undermine downstream inflammasome signaling in bats, limiting an overactive immune response against pathogens while potentially producing an antiinflammatory state resistant to diseases such as atherosclerosis, aging, and neurodegeneration.

摘要

蝙蝠作为独特的哺乳动物载体,携带多种具有致命性的人畜共患病病毒,但临床疾病却很少见。尽管蝙蝠的 AIM2 基因完全缺失,但蝙蝠中下游炎症小体反应的调控机制尚不清楚。AIM2 识别细胞质 DNA 可触发 ASC 聚合,并募集半胱天冬酶-1(caspase-1),即中心炎症小体效应酶,从而激活白细胞介素-1β(IL-1β)等细胞因子的切割,并诱导 GSDMD 介导的细胞焦亡。在蝙蝠细胞中恢复 AIM2 可导致完整的 ASC 斑点形成,但有趣的是,这导致缺乏 caspase-1 或随后的 IL-1β 激活。我们进一步鉴定了 caspase-1 中两个经历正选择压力的残基,这些残基可破坏其酶活性,在人类 caspase-1 活性中至关重要。对另一个蝙蝠谱系的功能分析揭示了一种针对 IL-1β 切割缺失的靶向机制,并阐明了 caspase-1 和 IL-1β 之间的互补关系,导致整个蝙蝠亚目中的信号转导减弱。因此,我们报告了在蝙蝠中进一步削弱下游炎症小体信号的策略,从而限制了针对病原体的过度免疫反应,同时可能产生一种抗炎状态,从而抵抗动脉粥样硬化、衰老和神经退行性等疾病。