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Biology subjects

Cui, D. S.

Publications and source records attributed to Cui, D. S..

2 recordsLinked to original sources

Bulk and selective autophagy cooperate to remodel a fungal proteome in response to changing nutrient availability

Cells remodel their proteomes in response to changing environments by coordinating changes in protein synthesis and degradation. In yeast, such degradation involves both proteasomal and vacuolar activity, with a mixture of bulk and selective autophagy delivering many of the vacuolar substrates. Although these pathways are known to be generally important for such remodeling, their relative contributions have not been reported on a proteome-wide basis. To assess this, we developed a method to pulse-label the methylotrophic yeast Komagataella phaffii (i.e. Pichia pastoris) with isotopically labeled nutrients, which, when coupled to quantitative proteomics, allowed us to globally monitor protein degradation on a protein-by-protein basis following an environmental perturbation. Using genetic ablations, we found that a targeted combination of bulk and selective autophagy drove the vast majority of the observed proteome remodeling activity, with minimal non-autophagic contributions. Cytosolic proteins and protein complexes, including ribosomes, were degraded via Atg11-independent bulk autophagy, whereas proteins targeted to the peroxisome and mitochondria were primarily degraded in an Atg11-dependent manner. Notably, these degradative pathways were independently regulated by environmental cues. Taken together, our new approach greatly increases the range of known autophagic substrates and highlights the outsized impact of autophagy on proteome remodeling. Moreover, the resulting datasets, which we have packaged in an accessible online database, constitute a rich resource for identifying proteins and pathways involved in fungal proteome remodeling.

bioengineering↗

Integrated proteasomal and lysosomal activity shape mTOR-regulated proteome remodeling

The crucial growth regulator mTOR is suppressed during nutrient limitation, which reduces protein synthesis and activates the ubiquitin-proteasome system (UPS) and lysosomal degradation pathways. Whereas these pathways have been extensively studied individually, their integrated dynamics, including the interplay between protein synthesis and degradation, and the coordination between lysosomal and UPS pathways, remain underexplored. Here, we couple stable isotope pulse-labeling and mass spectrometry to quantify and kinetically model proteome dynamics following mTOR inhibition in cultured human cells. Using a combination of genetics and pharmacological inhibitors, we identify proteins strictly degraded by one pathway, those that undergo multimodal degradation, and others that can flexibly access the proteasome or lysosome subject to the availability of either. Our data resource, comprised of [~]5.2 million proteomic measurements, reveals that the UPS and lysosomal pathway operate with disparate kinetics, and highlights the rapid nature of lysosomal degradation. Additionally, we observe that cells coordinate the synthesis and degradation of translation initiation and elongation factors, leading to preferential synthesis from key classes of mRNA transcripts. Taken together, this work illuminates the complex, integrated pathways influencing proteostasis when mTOR is inhibited, provides a rich resource detailing the kinetics of protein synthesis and degradation, and establishes a robust methodology for measuring proteome dynamics on a per-protein basis in the context of cellular stress.

biochemistry↗