Multiple Epigenetic Mechanisms Functionally Cooperate to Silence Expression of Somatostatin Receptor Type 2 in

James P Madigan1, Stephen G Andrews1, Rivka B Farrell1

  • 1Neuroendocrine Cancer Therapy Section, Surgical Oncology Program, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, MD, 20892.

Insights

Pancreatic neuroendocrine tumors (PNETs) lose somatostatin receptor type 2 (SSTR2) expression via epigenetic silencing. This study identifies DNA methyltransferase 3B (DNMT3B) and Polycomb complexes as key regulators, revealing potential therapeutic targets for SSTR2-low NETs.

Area of Science:

  • Oncology
  • Epigenetics
  • Molecular Biology

Background:

  • Pancreatic neuroendocrine tumors (PNETs) are rare cancers with increasing incidence.
  • Somatostatin receptor type 2 (SSTR2) is crucial for PNET imaging and therapy, but its expression is lost in higher-grade tumors.
  • The loss of SSTR2 expression is linked to aberrant epigenetic mechanisms, not known mutations.

Purpose of the Study:

  • To elucidate the epigenetic mechanisms controlling SSTR2 expression in PNETs.
  • To identify novel therapeutic targets for restoring SSTR2 expression in high-grade PNETs.

Main Methods:

  • Investigated the role of DNA methyltransferase 3B (DNMT3B) in SSTR2 gene methylation.
  • Examined the involvement of Polycomb Repressor Complexes (PRC1 and PRC2) in SSTR2 silencing.
  • Utilized histone lysine demethylases and chromatin remodeling complexes to understand epigenetic regulation.
  • Employed functional chemo-genomic screens with the HiBiT luminescent reporter system.

Main Results:

  • DNMT3B was identified as the primary enzyme responsible for SSTR2 gene CpG methylation and silencing.
  • PRC1, PRC2, specific histone lysine demethylases, and chromatin remodelers were found to be critical for SSTR2 silencing.
  • Functional screens confirmed these findings and identified additional silencing factors, highlighting the role of Class I HDACs.
  • SSTR2 gene expression is silenced by interconnected epigenetic events leading to a repressed chromatin state.

Conclusions:

  • PNET SSTR2 silencing involves a complex interplay of epigenetic regulators, including DNMT3B, PRC1/2, demethylases, remodelers, and HDACs.
  • These findings reveal novel therapeutic targets and combinations to restore SSTR2 expression in SSTR2-low PNETs.
  • Pre-clinical studies are underway to test therapeutic strategies for future clinical trials in high-grade NET patients.

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