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Updated: Dec 13, 2025

Author Spotlight: Combining Proximity Ligand Assay with Gamma-H2AX Staining to Characterize Protein Interactions in DNA Damage Response
Published on: August 2, 2024
Proteome dynamics analysis identifies functional roles of SDE2 and hypoxia in DNA damage response in prostate cancer
Ang Luo1, Yao Gong1, Hyungjin Kim2
1Department of Biochemistry, Molecular Biology and Biophysics, University of Minnesota at Twin Cities, Minneapolis, MN 55455, USA.
Abstract:
Mechanistic understanding of hypoxia-responsive signaling pathways provides important insights into oxygen- and metabolism-dependent cellular phenotypes in diseases. Using SILAC-based quantitative proteomics, we provided a quantitative map identifying over 6300 protein groups in response to hypoxia in prostate cancer cells and identified both canonical and novel cellular networks dynamically regulated under hypoxia. Particularly, we identified SDE2, a DNA stress response modulator, that was significantly downregulated by hypoxia, independent of HIF (hypoxia-inducible factor) transcriptional activity. Mechanistically, hypoxia treatment promoted SDE2 polyubiquitination and degradation. Such regulation is independent of previously identified Arg/N-end rule proteolysis or the ubiquitin E3 ligase, CDT2. Depletion of SDE2 increased cellular sensitivity to DNA damage and inhibited cell proliferation. Interestingly, either SDE2 depletion or hypoxia treatment potentiated DNA damage-induced PCNA (proliferating cell nuclear antigen) monoubiquitination, a key step for translesion DNA synthesis. Furthermore, knockdown of SDE2 desensitized, while overexpression of SDE2 protected the hypoxia-mediated regulation of PCNA monoubiquitination upon DNA damage. Taken together, our quantitative proteomics and biochemical study revealed diverse hypoxia-responsive pathways that strongly associated with prostate cancer tumorigenesis and identified the functional roles of SDE2 and hypoxia in regulating DNA damage-induced PCNA monoubiquitination, suggesting a possible link between hypoxic microenvironment and the activation of error-prone DNA repair pathway in tumor cells.
Insights
Hypoxia downregulates SDE2, a DNA stress modulator, in prostate cancer cells, impacting DNA repair. This study reveals SDE2
Area of Science:
- Molecular Biology
- Cancer Research
- Proteomics
Background:
- Hypoxia-responsive signaling is crucial for understanding oxygen- and metabolism-dependent cellular phenotypes in diseases.
- Prostate cancer progression is influenced by cellular responses to hypoxic microenvironments.
Purpose of the Study:
- To quantitatively map protein group changes in response to hypoxia in prostate cancer cells.
- To identify novel hypoxia-regulated cellular networks and elucidate the role of SDE2 in DNA damage response.
- To investigate the functional link between SDE2, hypoxia, and DNA repair pathways.
Main Methods:
- SILAC-based quantitative proteomics to identify over 6300 protein groups under hypoxia.
- Biochemical assays to study SDE2 polyubiquitination and degradation.
- Cellular experiments involving SDE2 depletion/overexpression and DNA damage induction.
Main Results:
- Identified over 6300 protein groups regulated by hypoxia, including canonical and novel networks.
- Discovered hypoxia-induced SDE2 downregulation via polyubiquitination and degradation, independent of HIF transcriptional activity.
- Demonstrated that SDE2 modulation affects cellular sensitivity to DNA damage and PCNA monoubiquitination, a key step in translesion DNA synthesis.
Conclusions:
- Quantitative proteomics and biochemical studies reveal diverse hypoxia-responsive pathways associated with prostate cancer.
- SDE2 plays a critical role in regulating DNA damage-induced PCNA monoubiquitination under hypoxic conditions.
- Suggests a link between hypoxic tumor microenvironments and the activation of error-prone DNA repair pathways in cancer cells.
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