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应激颗粒通过隔离蛋白激酶 C(PKC)/磷酸果糖激酶 2(Pck2)来防止丝裂原激活蛋白激酶(MAPK)信号通路过度激活:新的发现和观点。

Stress granules safeguard against MAPK signaling hyperactivation by sequestering PKC/Pck2: new findings and perspectives.

机构信息

Laboratory of Molecular Pharmacogenomics, Department of Pharmaceutical Sciences, Faculty of Pharmacy, Kindai University, Higashiosaka, Osaka, 577-8502, Japan.

出版信息

Curr Genet. 2021 Dec;67(6):857-863. doi: 10.1007/s00294-021-01192-1. Epub 2021 Jun 7.

DOI:10.1007/s00294-021-01192-1
PMID:34100129
Abstract

Stress granule (SG) assembly is a conserved cellular strategy that copes with stress-related damage and promotes cell survival. SGs form through a process of liquid-liquid phase separation. Cellular signaling also appears to employ SG assembly as a mechanism for controlling cell survival and cell death by spatial compartmentalization of signal-transducing factors. While several lines of evidence highlight the importance of SGs as signaling hubs, where protein components of signaling pathways can be temporarily sequestered, shielded from the cytoplasm, the regulation and physiological significance of SGs in this aspect remain largely obscure. A recent study of the heat-shock response in the fission yeast Schizosaaccharomyces pombe provides an unexpected answer to this question. Recently, we demonstrated that the PKC orthologue Pck2 in fission yeast translocates into SGs through phase separation in a PKC kinase activity-dependent manner upon high-heat stress (HHS). Importantly, the downstream MAPK Pmk1 promotes Pck2 recruitment into SGs, which intercepts MAPK hyperactivation and cell death, thus posing SGs as a negative feedback circuit in controlling MAPK signaling. Intriguingly, HHS, but not modest-heat stress targets Pck2 to SGs, independent of canonical SG machinery. Finally, cells fail to activate MAPK signaling when Pck2 is sequestrated into SGs. In this review, we will discuss how SGs have a role as signaling hubs beyond serving as a repository for non-translated mRNAs during acute stress.

摘要

应激颗粒(SG)组装是一种保守的细胞策略,可应对与应激相关的损伤并促进细胞存活。SG 通过液-液相分离过程形成。细胞信号似乎也利用 SG 组装作为一种机制,通过信号转导因子的空间分隔来控制细胞存活和细胞死亡。虽然有几条证据强调了 SG 作为信号枢纽的重要性,即信号通路的蛋白质成分可以暂时被隔离,免受细胞质的影响,但 SG 在这方面的调节和生理意义在很大程度上仍不清楚。最近对裂殖酵母 Schizosaccharomyces pombe 的热休克反应的研究为这个问题提供了一个意想不到的答案。最近,我们证明了裂殖酵母中的 PKC 同源物 Pck2 在高热应激(HHS)下通过相分离依赖于 PKC 激酶活性易位到 SG 中。重要的是,下游的 MAPK Pmk1 促进 Pck2 招募到 SG 中,从而阻断 MAPK 的过度激活和细胞死亡,因此 SG 作为控制 MAPK 信号的负反馈回路。有趣的是,HHS 而不是适度的热应激将 Pck2 靶向 SG,而不依赖于规范的 SG 机制。最后,当 Pck2 被隔离到 SG 中时,细胞无法激活 MAPK 信号。在这篇综述中,我们将讨论 SG 如何在急性应激期间不仅作为非翻译 mRNA 的储存库,还作为信号枢纽发挥作用。

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本文引用的文献

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2
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3
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Translation-complex profiling of fission yeast cells reveals dynamic rearrangements of scanning ribosomal subunits upon nutritional stress.裂殖酵母细胞翻译复杂性分析揭示营养胁迫下核糖体亚基扫描的动态重排。
Nucleic Acids Res. 2022 Dec 9;50(22):13011-13025. doi: 10.1093/nar/gkac1140.
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extracts in the treatment of glioblastoma cell lines: Biological verification based on a network pharmacology approach.提取物在胶质母细胞瘤细胞系治疗中的应用:基于网络药理学方法的生物学验证
Front Oncol. 2022 Aug 17;12:962970. doi: 10.3389/fonc.2022.962970. eCollection 2022.
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