Acetylation of the yeast Hsp40 chaperone protein Ydj1 fine-tunes proteostasis and translational fidelity
Omkar, S.; Shrader, C.; Hoskins, J. R.; Kline, J. T.; Mitchem, M. M.; Nitika, ; Fornelli, L.; Wickner, S.; Truman, A. W.
Show abstract
Proteostasis, the maintenance of cellular protein balance, is essential for cell viability and is highly conserved across all organisms. Newly synthesized proteins, or "clients," undergo sequential processing by Hsp40, Hsp70, and Hsp90 chaperones to achieve proper folding and functionality. Despite extensive characterization of post-translational modifications (PTMs) on Hsp70 and Hsp90, the modifications on Hsp40 remain less understood. This study aims to elucidate the role of lysine acetylation on the yeast Hsp40, Ydj1. By mutating acetylation sites on Ydj1s J-domain to either abolish or mimic constitutive acetylation, we observed that preventing acetylation had no noticeable phenotypic impact, whereas acetyl-mimic mutants exhibited various defects indicative of impaired Ydj1 function. Proteomic analysis revealed several Ydj1 interactions affected by J-domain acetylation, notably with proteins involved in translation. Further investigation uncovered a novel role for Ydj1 acetylation in stabilizing ribosomal subunits and ensuring translational fidelity. Our data suggest that acetylation may facilitate the transfer of Ydj1 between Ssa1 and Hsp82. Collectively, this work highlights the critical role of Ydj1 acetylation in proteostasis and translational fidelity. Author SummaryCells require a suite of chaperone and co-chaperone proteins to maintain a healthy balance of functional proteins. A large number of modifications on chaperone and co-chaperone proteins have been identified, but their functional importance has not been fully explored. In this study, we identify acetylation sites on the yeast co-chaperone Ydj1 that impact its interactions with major chaperones and client proteins including those involved in protein synthesis. This work sheds light on how modifications on co-chaperones can also play an important role in the health of the proteome.
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- The C-terminal domain of Hsp70 is responsible for paralog-specific regulation of ribonucleotide reductase 96%
- The kinase Isr1 negatively regulates hexosamine biosynthesis in S. cerevisiae 96%
- 2-deoxyglucose transiently inhibits yeast AMPK signaling and triggers glucose transporter endocytosis, potentiating the drug toxicity 96%
Similar papers in this journal
- Conserved N-terminal Regulation of the ACA8 Calcium Pump with Two Calmodulin Binding Sites 93%
- Structural Basis of Protein Arginine Methyltransferase Activation by a Catalytically Dead Homolog (Prozyme) 93%
- Discriminative SKP2 interactions with CDK-cyclin complexes support a cyclin A-specific role in p27KIP1 degradation 92%
Similar papers in this journal
- Consequences of alanine-126 mutations in helix-3 on structure and functions of Rad6 E2 ubiquitin-conjugating enzymes 95%
- Quantitative proteomics identifies the universally conserved ATPase Ola1p as a positive regulator of heat shock response in Saccharomyces cerevisiae 95%
- Ccr4-Not ubiquitin ligase signaling regulates ribosomal protein homeostasis and inhibits 40S ribosomal autophagy 94%
Similar papers in this journal
- Chaperone Complexes From The Endoplasmic Reticulum (ER) And The Cytosol Inhibit wt-p53 By Activation The ER To Cytosol Signaling. 94%
- The Lon protease temporally restricts polar cell differentiation events during the Caulobacter cell cycle 94%
- A network of cytosolic (co)chaperones promotes the biogenesis of mitochondrial signal-anchored outer membrane proteins 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.