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Chappleboim, A.

Publications and source records attributed to Chappleboim, A..

2 recordsLinked to original sources

Conserved degronome features governing quality control-associated proteolysis

The eukaryotic proteome undergoes constant surveillance by quality control systems that either sequester, refold, or eliminate aberrant proteins by ubiquitin-dependent mechanisms. Ubiquitin-conjugation necessitates the recognition of degradation determinants, termed degrons, by their cognate E3 ubiquitin-protein ligases. To learn about the distinctive properties of quality control degrons, we performed an unbiased peptidome stability screen in yeast. The search identified a large cohort of proteome-derived degrons, some of which exhibited broad E3 ligase specificity. Consequent application of a machine-learning algorithm established constraints governing degron potency, including the amino acid composition and secondary structure propensities. According to the set criteria, degrons with transmembrane domain-like characteristics are the most probable sequences to act as degrons. Similar quality control degrons were identified in viral and human proteins, suggesting conserved degradation mechanisms. Altogether, the emerging data indicate that transmembrane domain-like degron features have been preserved in evolution as key quality control determinants of proteins half-life.

cell biology↗

Transcription feedback dynamics in the wake of cytoplasmic degradation shutdown

In the last decade, multiple studies have shown that cells maintain a balance of mRNA production and degradation, but the mechanisms by which cells implement this balance remain unknown. Here, we monitored cells mRNA and nascent mRNA profiles immediately following an acute depletion of Xrn1 - the main 5-3 mRNA exonuclease - that was previously implicated in balancing mRNA levels. We captured the detailed dynamics of the cells adaptation to rapid degradation of Xrn1 and observed a significant accumulation of mRNA, followed by a delayed global reduction in nascent transcription and a gradual return to baseline mRNA levels. We present evidence that this transcriptional response is linked to cell cycle progression, and that it is not unique to Xrn1 depletion; rather, it is induced earlier when upstream factors in the 5-3 degradation pathway are perturbed. Our data suggest that the RNA feedback mechanism is cell-cycle-linked and monitors the accumulation of inputs to the 5-3 exonucleolytic pathway rather than its outputs.

cell biology↗