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Biomedical subjects

Steven P Gygi

Publications and source records attributed to Steven P Gygi.

4 recordsLinked to original sources

A HUWE1 regulatory helix gates ASCL1 degradation through its C-terminal phospho-degron in small cell lung cancer.

Lineage-defining transcription factors are key oncogenic drivers but remain difficult to target pharmacologically due to the absence of ligandable pockets. The molecular rules governing substrate recognition by large HECT ubiquitin ligases also remain incompletely understood, limiting efforts to exploit these enzymes for targeted protein degradation. Here we combine genome-wide CRISPR knockout screening with base editor tiling screens at amino acid resolution, both coupled to an endogenous knock-in reporter of the SCLC lineage oncogenic transcription factor ASCL1, to systematically interrogate the mechanisms governing its degradation. These complementary screens unbiasedly identify the HECT ubiquitin ligase HUWE1 as the dominant regulator of ASCL1 stability in small cell lung cancer (SCLC) and resolve a conserved C-terminal phospho-degron centered on Ser207 and terminal Trp/Phe residues that are required for HUWE1 docking and ubiquitin-mediated degradation. Unexpectedly, base editor screening further uncovers a previously unrecognized regulatory module within HUWE1: a short negatively charged helix that functions as an autoinhibitory gate controlling access of phospho-degron substrates to HUWE1. Charge-flipping mutations within this regulatory helix relieve autoinhibition and accelerate degradation of multiple HUWE1 phospho-degron substrates, including ASCL1 and the canonical HUWE1 substrate DDIT4. Stabilization of ASCL1 through degron disruption paradoxically impairs SCLC proliferation, revealing that dynamic proteasome-coupled turnover is required for transcription factor function. Together, these findings reveal molecular rules governing HUWE1 phospho-degron recognition and identify a regulatory gate controlling substrate engagement. They also illustrate a generalizable strategy for resolving degradation mechanisms of undruggable transcription factors in their endogenous cellular context.

ASCL1

A human lysosomal storage disorder toolkit for decoding proteome landscapes in cortical-like and dopaminergic-like induced neurons.

Lysosomes maintain cellular homeostasis by degrading proteins delivered via endocytosis and autophagy and by recycling building blocks for organelle biogenesis. Lysosomal storage disorders (LSDs) comprise a group of diseases affecting diverse lysosomal functions. To facilitate molecular phenotyping across diverse LSD gene classes, we are developing a library of human embryonic stem cells engineered to lack individual LSD genes as a resource for the field. Here, we report our initial stem cell toolkit lacking one of 23 LSD genes, including the majority of genes associated with sphingolipidoses and neuronal ceroid lipofuscinoses, and its use in the generation of a proteomic resource for induced cortical-like and midbrain dopaminergic-like neurons. In-depth abundance and correlation profiling across organelles and suborganelle components revealed potential vulnerabilities that reflect distinct patterns of proteome alterations across both genotypes and neuronal cell types. We characterize alterations in the mitochondrial proteome associated with GBA1 and ASAH1 deficiency and identify synaptic and mitochondrial defects in ASAH1-/- induced neurons that correlate with defects in neuronal firing rates. Moreover, we developed an informatic pipeline for proteome-wide identification of individual protein-protein interactions and protein complexes that may be disrupted as a result of LSD gene deficiency. Finally, we visualized structural alterations of ASAH1-deficient endolysosomes in situ using cryoelectron tomography, revealing swollen organelles that were largely devoid of dense internal membranes characteristic of wild-type cells, but containing numerous intralumenal vesicle compartments. This toolkit and associated proteomic landscapes provide a resource for defining molecular signatures associated with LSD gene dysfunction and organelle vulnerability.

Humans

Analysis of Confounding Factors in Reactive Cysteine Profiling Reveals Enhanced Chromatin-Protein Association via CDK7 Inhibition by THZ1.

Recent advances in activity-based proteome profiling (ABPP) have enabled the global mapping of cysteine ligandability, uncovering novel biological insights and opportunities for identifying disease vulnerabilities. While both live-cell-based and native-lysate-based ABPP have been applied, how cysteine ligandability differs between these systems and what factors influence these measurements remain unclear. Building on our previous development of a high-throughput TMT-ABPP workflow for native lysates, here we adapt the protocol for live cells and systematically compare cysteine ligandability across both platforms. Our analysis reveals three major contributors to the discrepancies: in-cellular cysteine accessibility, protein abundance changes, and protein relocalization. Notably, we highlight that the CDK7 inhibitor THZ1 induces substantial protein relocalization and promotes chromatin binding. Together, these results provide a practical framework for ABPP experimental design and data interpretation, supporting the more accurate application of ABPP in functional proteomics and drug discovery.

Cysteine

Specificity profiling of deubiquitylases against endogenously generated ubiquitin-protein conjugates.

Deubiquitylating enzymes (DUBs) remove ubiquitin from proteins thereby regulating their stability or activity. Our understanding of DUB-substrate specificity is limited because DUBs are typically not compared to each other against many physiological substrates. By broadly inhibiting DUBs in Xenopus egg extract, we generated hundreds of ubiquitylated proteins and compared the ability of 30 DUBs to deubiquitylate them using quantitative proteomics. We identified five high-impact DUBs (USP7, USP9X, USP36, USP15, and USP24) that each reduced ubiquitylation of over 10% of the isolated proteins. Candidate substrates of high-impact DUBs showed substantial overlap and were enriched for disordered regions, suggesting this feature may promote substrate recognition. Other DUBs showed lower impact and non-overlapping specificity, targeting distinct non-disordered proteins including complexes such as the ribosome or the proteasome. Altogether our study identifies candidate DUB substrates and defines patterns of functional redundancy and specificity, revealing substrate characteristics that may influence DUB-substrate recognition.

Substrate Specificity