中国科学院生物物理研究所生物大分子国家重点实验室,北京 100101
Tel:
国家自然科学基金(32170785) 和中国科学院青年交叉团队 (JCTD-2021-07) 资助项目。
National Laboratory of Biomacromolecules, Institute of Biophysics, Chinese Academy of Sciences, Beijing 100101, China
This work was supported by grants from The National Natural Science Foundation of China (32170785) and the CAS Youth Interdisciplinary Team Program (JCTD-2021-07).
未折叠蛋白在内质网(endoplasmic reticulum,ER)腔中累积造成ER应激,此时细胞启动未折叠蛋白响应(unfolded protein response,UPR)以恢复蛋白质稳态。目前已知有三种UPR感受器,即IRE1、PERK和ATF6,它们均为ER跨膜蛋白,在ER应激时被激活并启动下游UPR信号通路。虽然UPR感受器最早是在研究细胞如何应对ER应激时发现的,但它们如何感知ER应激至今未得到完满的回答。随着研究的深入,人们发现UPR的功能不仅限于维持蛋白质稳态,而UPR感受器也不是只对未折叠蛋白累积作出响应。本文对UPR的发现及其经典通路作一介绍,着重阐述目前已知的UPR感受器的激活机制,并就UPR和ER应激关系以及该领域存在的问题进行讨论。
Accumulation of unfolded proteins in the endoplasmic reticulum (ER) lumen causes ER stress, which triggers the unfolded protein response (UPR) to restore protein homeostasis. So far, three UPR sensors have been identified, including IRE1, PERK, and ATF6. All of them are ER transmembrane proteins, which become activated and initiate downstream UPR signals under ER stress. Though first discovered during the study of how cells respond to ER stress, it remains unclear how the ER stress signal is sensed by the three UPR sensors. Structural studies provide insight into how direct binding of ER-localized peptides to the lumenal domain of IRE1 and PERK facilitates their oligomerization and thus activation. In another model, dissociation of the ER chaperone BiP is the key to the UPR activation. In addition, further studies reveal that the UPR not only functions in maintaining protein homeostasis and UPR sersors is not solely activated in response to the accumulation of unfolded proteins in the ER. Lipid bilayer stress, cytosolic factors or intercellular signals may initiate the UPR. Despite the importance of the UPR in physiology and pathophysiology, how the UPR is activated under physiological or pathophysiological conditions are largely unknown. Developing novel strategy to monitor the unfolded and misfolded proteins in the ER lumen will advance our understanding of the relationship between ER stress and the UPR. This paper introduces the discovery and the canonical pathways of the UPR, with a focus on the current mechanistic understanding of the UPR activation, and discusses the relationship between the UPR and ER stress as well as related questions.
王立堃,李桃,徐芬芬.未折叠蛋白响应的激活机制[J].生物化学与生物物理进展,2023,50(5):877-891
复制生物化学与生物物理进展 ® 2025 版权所有 ICP:京ICP备05023138号-1 京公网安备 11010502031771号