Haoyu Chen, Duxuan Liu, Jing Hua, Mingjie Wu, Yanhong Hua, Chenwei Feng, Zhen He, Peter Moffett, Kun Zhang
The endoplasmic reticulum (ER) unfolded protein response (UPR) is a conserved eukaryotic pathway crucial for restoring cellular homeostasis under ER stress. However, diverse viruses infecting mammalian or plant cells strategically hijack and manipulate the UPR pathways featuring sensor proteins IRE1, PERK, ATF6, and bZIP17/28 to promote viral replication. While UPR is designed to provide cellular adaptive functions in response to stresses, viruses can instead exploit UPR components to instead enhance viral protein folding and remodel ER membranes for viral replication. Exploiting the UPR presents a critical dilemma: while mild UPR activation facilitates virus replication and survival, excessive or prolonged activation triggers host programmed cell death (PCD), prematurely terminating infection. Navigating this UPR tightrope is central to successful infection and replication of the virus. Viruses are not passive triggers of ER stress and the UPR. Viruses have evolved sophisticated "braking mechanisms" to actively modulate UPR signaling intensity. By fine-tuning the UPR, viruses harness the beneficial aspects of the UPR while crucially preventing the activation cascade from reaching the lethal threshold that initiates PCD. By carefully controlling the UPR balance, viruses ensure host cell survival for a sufficient duration to maximize viral progeny production. This review details the intricate interactions between the cellular UPR and infecting viruses, including links to cellular clearance pathways like autophagy and ER-associated degradation (ERAD), across different viral families (flaviviruses, coronaviridae, and potyviruses) and hosts (plants and animals). Understanding the sophisticated viral manipulation of the UPR equilibrium reveals fundamental insights into host-pathogen co-evolution and highlights novel potential targets for antiviral strategies aimed at disrupting this delicate balance.