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Published on: May 14, 2016
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.
Background/Objectives:
SETD2 is a dual-function methyltransferase important for methylation of histone H3 at lysine 36 and α-tubulin in spindle microtubules. Genetic inactivation of SETD2 during oncogenesis drives loss of H3K36me3, genomic instability, and cancer progression. This study asked if disruption of genomic stability was a canonical feature of SETD2 inactivation via different pathways.
Methods:
We evaluated the impact of EPZ-719, a pharmacologic SETD2 inhibitor, and an H3.3K36M mutant histone ("oncohistone") that binds and sequesters SETD2, on methylation activity and genomic stability in human cell lines. SETD2 activity was measured using in vitro methylation assays, H3K36me3 loss confirmed by Western analysis, and mitotic defects, specifically micronuclei and chromatin bridges, quantified with cytogenetic analysis.
Results:
EPZ-719 caused a dose- and time-dependent reduction in SETD2 activity on both histone and tubulin substrates, accompanied by significant increases in chromatin bridges and micronuclei in retinal pigmented epithelial (RPE-1) and 786-O ccRCC cells. Similarly, oncohistone expression markedly decreased SETD2 function, as determined by H3K36me3 levels, and induced comparable mitotic defects in 786-O cells, and aneuploidy in two chondrocyte cell lines expressing the H3.3K36M oncohistone. Combining EPZ-719 with H3.3K36M expression did not exacerbate mitotic defects beyond either oncohistone or pharmacologic inhibition alone, consistent with inhibition of SETD2 as their shared underlying mechanism of action.
Conclusions:
Pharmacologic inhibition and oncohistone-mediated sequestration of SETD2 converge on the induction of mitotic defects, underscoring SETD2's essential role in maintaining genomic stability. Identification of loss of genomic stability as a canonical feature of SETD2 inactivation points to a potential therapeutic liability associated with targeting SETD2 in cancers where it is overexpressed and reveals a mechanism that could contribute to the progression of cancers expressing oncohistone mutations.
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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