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蛋白质降解途径中的串扰和超敏反应。

Crosstalk and ultrasensitivity in protein degradation pathways.

机构信息

Department of Mathematics, University of California Davis, Davis, California, United States of America.

Laboratory of Systems Pharmacology, Harvard Medical School, Boston, Massachusetts, United States of America.

出版信息

PLoS Comput Biol. 2020 Dec 28;16(12):e1008492. doi: 10.1371/journal.pcbi.1008492. eCollection 2020 Dec.

Abstract

Protein turnover is vital to cellular homeostasis. Many proteins are degraded efficiently only after they have been post-translationally "tagged" with a polyubiquitin chain. Ubiquitylation is a form of Post-Translational Modification (PTM): addition of a ubiquitin to the chain is catalyzed by E3 ligases, and removal of ubiquitin is catalyzed by a De-UBiquitylating enzyme (DUB). Nearly four decades ago, Goldbeter and Koshland discovered that reversible PTM cycles function like on-off switches when the substrates are at saturating concentrations. Although this finding has had profound implications for the understanding of switch-like behavior in biochemical networks, the general behavior of PTM cycles subject to synthesis and degradation has not been studied. Using a mathematical modeling approach, we found that simply introducing protein turnover to a standard modification cycle has profound effects, including significantly reducing the switch-like nature of the response. Our findings suggest that many classic results on PTM cycles may not hold in vivo where protein turnover is ubiquitous. We also found that proteins sharing an E3 ligase can have closely related changes in their expression levels. These results imply that it may be difficult to interpret experimental results obtained from either overexpressing or knocking down protein levels, since changes in protein expression can be coupled via E3 ligase crosstalk. Understanding crosstalk and competition for E3 ligases will be key in ultimately developing a global picture of protein homeostasis.

摘要

蛋白质周转对细胞内稳态至关重要。许多蛋白质只有在被翻译后“标记”上多聚泛素链后才能有效地被降解。泛素化是一种翻译后修饰(PTM)形式:E3 连接酶催化泛素添加到链上,去泛素化酶(DUB)催化泛素的去除。将近四十年前,Goldbeter 和 Koshland 发现,当底物达到饱和浓度时,可逆 PTM 循环的功能就像开/关开关一样。尽管这一发现对理解生化网络中类似开关的行为具有深远的影响,但受合成和降解影响的 PTM 循环的一般行为尚未得到研究。我们使用数学建模方法发现,仅将蛋白质周转引入标准修饰循环就会产生深远的影响,包括显著降低反应的开关性质。我们的研究结果表明,在蛋白质周转普遍存在的情况下,许多关于 PTM 循环的经典结果可能并不成立。我们还发现,共享 E3 连接酶的蛋白质可能具有密切相关的表达水平变化。这些结果意味着,通过过表达或敲低蛋白质水平获得的实验结果可能难以解释,因为蛋白质表达的变化可以通过 E3 连接酶的串扰耦合。理解 E3 连接酶的串扰和竞争将是最终开发蛋白质稳态全局图景的关键。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f646/7793289/4673c14773d1/pcbi.1008492.g001.jpg

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