Department of Neuro-Sensory Physiology, University Medical Center Göttingen, 37073 Göttingen, Germany.
Department of Neurology, Northwestern University Feinberg School of Medicine, Chicago, IL, USA.
Trends Biochem Sci. 2023 Feb;48(2):106-118. doi: 10.1016/j.tibs.2022.08.011. Epub 2022 Sep 23.
The orchestration of protein production and degradation, and the regulation of protein lifetimes, play a central role in the majority of biological processes. Recent advances in proteomics have enabled the estimation of protein half-lives for thousands of proteins in vivo. What is the utility of these measurements, and how can they be leveraged to interpret the proteome changes occurring during development, aging, and disease? This opinion article summarizes leading technical approaches and highlights their strengths and weaknesses. We also disambiguate frequently used terminology, illustrate recent mechanistic insights, and provide guidance for interpreting and validating protein turnover measurements. Overall, protein lifetimes, coupled to estimates of protein levels, are essential for obtaining a deep understanding of mammalian biology and the basic processes defining life itself.
蛋白质的产生和降解的协调,以及蛋白质寿命的调节,在大多数生物过程中起着核心作用。蛋白质组学的最新进展使得能够估计数千种体内蛋白质的半衰期。这些测量的用途是什么,以及如何利用它们来解释在发育、衰老和疾病过程中发生的蛋白质组变化?本文总结了主要的技术方法,并强调了它们的优缺点。我们还澄清了常用术语,举例说明了最近的机制见解,并为解释和验证蛋白质周转率测量提供了指导。总的来说,蛋白质寿命与蛋白质水平的估计相结合,对于深入了解哺乳动物生物学以及定义生命本身的基本过程是必不可少的。