Pharmacologic and Oncohistone Inhibition of SETD2 Converge on Genomic Instability

Alyssa T Paparella1, Ashley G Boice1, In Young Park1

  • 1Center for Precision Environmental Health, Baylor College of Medicine, Houston, TX 77030, USA.

Cancers
|March 14, 2026
PubMed
Abstract

Insights

SETD2 (histone methyltransferase) inactivation, through pharmacologic inhibition or oncohistone mutation, causes genomic instability. This highlights SETD2

Area of Science:

  • Epigenetics and chromatin biology
  • Cancer biology and genomics
  • Molecular oncology

Background:

  • SETD2 is a crucial methyltransferase regulating histone H3 lysine 36 methylation (H3K36me3) and α-tubulin.
  • Loss of SETD2 function during oncogenesis leads to genomic instability and cancer progression.
  • This study investigated if genomic instability is a consistent outcome of SETD2 inactivation via various mechanisms.

Purpose of the Study:

  • To determine if pharmacologic inhibition or oncohistone-mediated sequestration of SETD2 leads to genomic instability.
  • To elucidate the role of SETD2 in maintaining genomic stability across different cellular contexts.
  • To explore the therapeutic implications of targeting SETD2 in cancer.

Main Methods:

  • Utilized EPZ-719, a SETD2 inhibitor, and an H3.3K36M oncohistone.
  • Assessed SETD2 activity using in vitro methylation assays and Western analysis for H3K36me3.
  • Quantified mitotic defects (micronuclei, chromatin bridges) and aneuploidy via cytogenetic analysis.

Main Results:

  • EPZ-719 reduced SETD2 activity and increased mitotic defects (chromatin bridges, micronuclei) in RPE-1 and 786-O cells.
  • H3.3K36M oncohistone expression decreased SETD2 function, induced mitotic defects in 786-O cells, and aneuploidy in chondrocytes.
  • Combined inhibition and oncohistone expression did not worsen defects, indicating a shared SETD2 inhibition mechanism.

Conclusions:

  • SETD2 inhibition, via pharmacologic or oncohistone mechanisms, consistently induces mitotic defects and genomic instability.
  • SETD2 is essential for maintaining genomic stability, and its inactivation is a canonical feature.
  • Targeting SETD2 may present therapeutic liabilities in cancers with overexpression or oncohistone mutations, potentially driving cancer progression.

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