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Biology subjects

Mordente, K. C.

Publications and source records attributed to Mordente, K. C..

2 recordsLinked to original sources

RNF25 restrains GCN2 hyperactivation to sustain protein synthesis and cell proliferation in response to RNA damage

Regulation of protein synthesis is essential for maintaining cellular homeostasis during stress. The integrated stress response (ISR) is a conserved signaling pathway that modulates global mRNA translation through four eIF2 kinases--GCN2, PKR, PERK, and HRI. However, how these kinases are selectively activated and tuned to distinct stress signals to direct appropriate cell fate decisions remains poorly understood. Here, we employ ultra-deep mutagenesis screens to systematically map regulators of protein synthesis across diverse stress perturbations in human cells. This comparative approach identifies stress-specific translational control factors, including a previously unrecognized role for the E3 ubiquitin ligase RNF25 in selectively sustaining translation following UV irradiation and other RNA-damaging treatments. In this context, we demonstrate that RNF25 operates independently of its partner RNF14, and that its ubiquitin ligase activity, as well as its RWD-domain, is required to restrain excessive activation of the eIF2 kinase GCN2. Accordingly, loss of RNF25 results in hyperactivation of GCN2, exacerbated translation shutdown, and impaired cell proliferation following RNA damage--phenotypes that can be fully reversed by genetic or pharmacological inhibition of GCN2. Together, these findings uncover a previously unappreciated RNF25-GCN2 signaling axis and identify ISR-driven toxicity as a potential vulnerability in combination with RNA-damaging chemotherapeutics.

cell biology↗

ZAKα is a sensor of mRNA stasis at the ribosomal exit channel

Despite a growing interest in the ribotoxic stress response (RSR), it remains unknown how the upstream p38 and JNK-activating MAP3 kinase ZAK senses translational impairment. Combining Alphafold3 prediction and RNA crosslinking and immunoprecipitation (CLIP), we uncover that ZAK dynamically monitors the mRNA exit channel of elongating ribosomes for mRNA stasis. This is accomplished by ZAK via its direct interactions with the ribosomal proteins RACK1 and RPS27 as well as with the 18S rRNA helix-26. In this conformation, four mRNA-binding peptides in ZAK span across the path of ribosome-exiting mRNA. Progressive elongation effectively threads ZAK off the ribosome, while mRNA stasis stabilizes the interaction allowing for kinase activation. Prolonged binding of ZAK to slow-elongating, stalled and collided ribosomes is associated with sequestration of the inhibitory SAM domain on RACK1, allowing for transient ZAK dimerization, activation loop trans-autophosphorylation and RSR activation. We propose that compromised ribosome processivity constitutes a common ribotoxic stress signal and that ZAK is a ribosome collision-agnostic sensor of such perturbations.

molecular biology↗