RNF34 functions in immunity and selective mitophagy by targeting MAVS for autophagic degradation
EMBO JOURNAL
Authors: He, Xiang; Zhu, Yongjie; Zhang, Yanhong; Geng, Yunqi; Gong, Jing; Geng, Jin; Zhang, Pingping; Zhang, Xiaotong; Liu, Ning; Peng, Yumeng; Wang, Chenbin; Wang, Yujie; Liu, Xin; Wan, Luming; Gong, Feng; Wei, Congwen; Zhong, Hui
Abstract
Viral infection triggers the formation of mitochondrial antiviral signaling protein (MAVS) aggregates, which potently promote immune signaling. Autophagy plays an important role in controlling MAVS-mediated antiviral signaling; however, the exact molecular mechanism underlying the targeted autophagic degradation of MAVS remains unclear. Here, we investigated the mechanism by which RNF34 regulates immunity and mitophagy by targeting MAVS. RNF34 binds to MAVS in the mitochondrial compartment after viral infection and negatively regulates RIG-I-like receptor (RLR)-mediated antiviral immunity. Moreover, RNF34 catalyzes the K27-/K29-linked ubiquitination of MAVS at Lys 297, 311, 348, and 362 Arg, which serves as a recognition signal for NDP52-dependent autophagic degradation. Specifically, RNF34 initiates the K63- to K27-linked ubiquitination transition on MAVS primarily at Lys 311, which facilitates the autophagic degradation of MAVS upon RIG-I stimulation. Notably, RNF34 is required for the clearance of damaged mitochondria upon viral infection. Thus, we elucidated the mechanism by which RNF34-mediated autophagic degradation of MAVS regulates the innate immune response, mitochondrial homeostasis, and infection.
RNF34 Is a Cold-Regulated E3 Ubiquitin Ligase for PGC-1 alpha and Modulates Brown Fat Cell Metabolism
MOLECULAR AND CELLULAR BIOLOGY
Authors: Wei, Ping; Pan, Dongning; Mao, Chunxiao; Wang, Yong-Xu
Abstract
The transcriptional coactivator PGC-1 alpha is a master regulator of energy metabolism and adaptive thermogenesis in the brown fat cell. PGC-1 alpha is a short-lived protein, and the molecular components that control PGC-1 alpha turnover and their functional importance in energy metabolism are largely unknown. Here we performed a luciferase-based overexpression screen and identified a Ring-finger-containing protein, RNF34, as a specific E3 ubiquitin ligase for PGC-1 alpha. RNF34 is a nuclear protein that interacts with and ubiquitinates PGC-1 alpha to promote its turnover. Interestingly, RNF34 binds to the C-terminal half of PGC-1 alpha and targets it for degradation independently of the previously identified N-terminal phosphodegron motif. In brown fat cells, knockdown of RNF34 increases the endogenous PGC-1 alpha protein level, uncoupling protein 1 (UCP1) expression, and oxygen consumption, while the opposite effects are observed in brown fat cells ectopically expressing wild-type RNF34 but not in cells expressing the ligase activity-defective mutant. Moreover, cold exposure and beta 3-adrenergic receptor signaling, conditions that induce PGC-1 alpha expression, suppress RNF34 expression in the brown fat cell, indicating a physiological relevance of this E3 ligase in thermogenesis. Our results reveal that RNF34 is a bona fide E3 ubiquitin ligase for PGC-1 alpha and negatively regulates brown fat cell metabolism.