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Updated: Oct 16, 2025

A Simple Method to Identify Kinases That Regulate Embryonic Stem Cell Pluripotency by High-throughput Inhibitor Screening
Published on: May 12, 2017
Identification of SUMO Targets Associated With the Pluripotent State in Human Stem Cells
Barbara Mojsa1, Michael H Tatham1, Lindsay Davidson2
1Division of Gene Regulation and Expression, School of Life Sciences, University of Dundee, Dundee, UK.
Abstract:
To investigate the role of SUMO modification in the maintenance of pluripotent stem cells, we used ML792, a potent and selective inhibitor of SUMO Activating Enzyme. Treatment of human induced pluripotent stem cells with ML792 resulted in the loss of key pluripotency markers. To identify putative effector proteins and establish sites of SUMO modification, cells were engineered to stably express either SUMO1 or SUMO2 with C-terminal TGG to KGG mutations that facilitate GlyGly-K peptide immunoprecipitation and identification. A total of 976 SUMO sites were identified in 427 proteins. STRING enrichment created three networks of proteins with functions in regulation of gene expression, ribosome biogenesis, and RNA splicing, although the latter two categories represented only 5% of the total GGK peptide intensity. The rest have roles in transcription and the regulation of chromatin structure. Many of the most heavily SUMOylated proteins form a network of zinc-finger transcription factors centered on TRIM28 and associated with silencing of retroviral elements. At the level of whole proteins, there was only limited evidence for SUMO paralogue-specific modification, although at the site level there appears to be a preference for SUMO2 modification over SUMO1 in acidic domains. We show that SUMO influences the pluripotent state in hiPSCs and identify many chromatin-associated proteins as bona fide SUMO substrates in human induced pluripotent stem cells.
Insights
SUMOylation is crucial for maintaining pluripotency in human induced pluripotent stem cells (hiPSCs). Inhibiting SUMOylation leads to loss of pluripotency markers, revealing key SUMOylated proteins involved in gene regulation and chromatin structure.
Area of Science:
- Cell Biology
- Molecular Biology
- Stem Cell Research
Background:
- SUMOylation (Small Ubiquitin-like Modifier) is a post-translational modification.
- Its role in maintaining pluripotency of human induced pluripotent stem cells (hiPSCs) is not fully understood.
Purpose of the Study:
- To investigate the function of SUMOylation in hiPSC maintenance.
- To identify proteins and specific sites of SUMOylation in hiPSCs.
Main Methods:
- Treatment of hiPSCs with ML792, a SUMO Activating Enzyme inhibitor.
- Engineering hiPSCs to express modified SUMO1/SUMO2 for peptide identification.
- Utilizing immunoprecipitation and mass spectrometry to identify SUMOylation sites.
- Bioinformatic analysis (STRING enrichment) to identify protein networks.
Main Results:
- ML792 treatment caused loss of key pluripotency markers in hiPSCs.
- Identified 976 SUMOylation sites on 427 proteins.
- Discovered protein networks involved in gene expression, ribosome biogenesis, RNA splicing, transcription, and chromatin structure.
- Highlighted a network of zinc-finger transcription factors, including TRIM28, involved in silencing retroviral elements.
- Observed a preference for SUMO2 over SUMO1 modification at specific sites.
Conclusions:
- SUMOylation significantly influences the pluripotent state of hiPSCs.
- Identified numerous chromatin-associated proteins as SUMOylation substrates.
- SUMOylation is critical for maintaining pluripotency through regulation of gene expression and chromatin structure.
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