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Padia, K.

Publications and source records attributed to Padia, K..

2 recordsLinked to original sources

Arg80 Orchestrates a Metabolic-Translational Proteostasis Network in S. cerevisiae

Proteostasis or protein homeostasis is essential for cellular function and organismal health. While many models of cytosolic proteostasis emphasize heat shock response as critical for regulating cellular protein folding, a comprehensive understanding of transcriptional modules that may regulate cytosolic protein folding is lacking. Through a focused screening for transcription factors, we provide evidence that a number of transcriptional programs unlinked to canonical proteotoxic response are involved in maintaining cellular homeostasis of protein folding. Among these, Arg80, a regulator of arginine metabolism, was activated during proteotoxic stress and found essential for mitigating it. We show that proteostasis imbalance in arg80{Delta} cells is caused by excess arginine accumulation, which is sufficient to impair protein folding. We reveal a complex interplay between arginine repression (Arg80), trehalose biosynthesis (Tps2), and the integrated stress response (Gcn2) in combating proteotoxic insults. We posit that multiple metabolic pathways integrate with classical protein quality control networks to regulate the protein folding environment. Harnessing these metabolic circuits may offer new avenues to modulate proteostasis when needed.

systems biology↗

Fitness defects due to cytosolic protein misfolding in S. cerevisiae can be alleviated by decreasing mitochondrial protein import capacity

Protein misfolding affects cellular fitness. This can be caused due to the toxic aggregation of one species of protein or global protein misfolding events. Since the fitness defect arises due to the multi-modal effect of misfolding, there is no consensus mechanism to alleviate this fitness defect. Here, we used adaptive laboratory evolution of thermotolerance to identify pathways contributing to proteotoxic stress resistance in S. cerevisiae. Our results suggest a link between thermotolerance and proteotoxicity resistance, majorly routed through the loss of mitochondrial DNA. Loss of mitochondrial DNA decreased the association of mistargeted misfolded proteins on the mitochondrial surface and altered the cellular response to proteostasis to enhance protein quality control associated degradation. We show that a decrease in the abundance of import channels is sufficient to mimic the loss of mtDNA and increase cellular proteostasis. Thus, we uncover a cryptic interorganellar cooperation in combating proteotoxicity in yeast.

molecular biology↗