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Published on: February 2, 2024
DPY30 Is an Epigenetic Decoupler Linking Replication Stress to Immunoediting in Pancreatic Cancer
Francesca Citron1, Luca Cecchetto1, Elisabetta Granato1
1Department of Genomic Medicine, Division of Cancer Medicine, The University of Texas MD Anderson Cancer Center, Houston, Texas.
Abstract:
Perturbations in DNA replication can impair fork stability, resulting in cumulative DNA replication stress. As activation of the DNA stress response elicits immunomodulatory effects, understanding the cross-talk between the epigenetic control of replication fork stability and the recruitment of immune cells may represent an actionable avenue to potentiate the sensitivity of tumors to immunotherapy. In this study, we identified DPY30, a member of the histone methyltransferase WRAD/COMPASS complex, as a replication stress-specific epigenetic modifier in pancreatic ductal adenocarcinoma (PDAC). Although other WRAD components broadly regulate transcription, DPY30 distinctively promoted H3K4me3 deposition at stressed DNA replication forks to safeguard DNA replication stability without altering global gene expression. Loss of DPY30 destabilized stalled forks causing fork degradation, chromosomal instability, and inflammation without reducing cancer cell proliferation. Consequently, T-cell infiltration induced by DPY30 deficiency promoted a tumor response to immune checkpoint blockade (ICB). In patients with PDAC, high DPY30 tumor expression was associated with poorer ICB response, underscoring the potential of DPY30 as a predictive biomarker of immunotherapy response. Together, this study redefines our understanding of a replication stress-specific epigenetic code, unveiling DPY30 as a chromatin switch essential for stressed fork stability and a potential therapeutic target.
Significance:
Loss of DPY30, a replication stress-specific epigenetic regulator that stabilizes stressed forks, promotes genomic instability, inflammation, and immunotherapy sensitivity, highlighting DPY30 as predictive biomarker and therapeutic target in pancreatic cancer. See related commentary by Thakur and Oberdoerffer, p. 2831.
Insights
DPY30 safeguards DNA replication stability in pancreatic cancer. Its loss triggers inflammation and T-cell infiltration, enhancing immunotherapy response and making DPY30 a potential predictive biomarker.
Area of Science:
- Epigenetics
- DNA replication stress
- Cancer immunology
Background:
- DNA replication stress can activate immune responses, suggesting a link between replication fork stability and cancer immunotherapy.
- Understanding this crosstalk is crucial for improving cancer treatment sensitivity.
Purpose of the Study:
- To identify epigenetic modifiers involved in replication stress response.
- To investigate the role of DPY30 in pancreatic ductal adenocarcinoma (PDAC) and its impact on immunotherapy.
Main Methods:
- Identified DPY30 as a replication stress-specific epigenetic modifier in PDAC.
- Investigated DPY30's function in H3K4me3 deposition at stressed replication forks.
- Assessed the effects of DPY30 loss on fork stability, chromosomal integrity, inflammation, and tumor response to immune checkpoint blockade (ICB).
Main Results:
- DPY30 promotes H3K4me3 deposition at stressed replication forks, maintaining DNA replication stability without affecting global gene expression.
- DPY30 deficiency destabilizes stalled forks, leading to degradation, chromosomal instability, and inflammation.
- Loss of DPY30 enhances T-cell infiltration and tumor response to ICB.
- High DPY30 expression in PDAC patients correlates with poor ICB response.
Conclusions:
- DPY30 acts as a chromatin switch essential for stressed fork stability.
- DPY30 deficiency can potentiate anti-tumor immunity and ICB response.
- DPY30 is a potential predictive biomarker for immunotherapy in PDAC.
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