Somatic mutations at EZH2 Y641 act dominantly through a mechanism of selectively altered PRC2 catalytic activity, to increase H3K27 trimethylation

Author:

Yap Damian B.12,Chu Justin2,Berg Tobias3,Schapira Matthieu4,Cheng S.-W. Grace5,Moradian Annie5,Morin Ryan D.5,Mungall Andrew J.5,Meissner Barbara6,Boyle Merrill6,Marquez Victor E.7,Marra Marco A.5,Gascoyne Randy D.16,Humphries R. Keith38,Arrowsmith Cheryl H.49,Morin Gregg B.510,Aparicio Samuel A. J. R.12

Affiliation:

1. Department of Pathology and Laboratory Medicine, University of British Columbia, Vancouver, BC;

2. Department of Molecular Oncology, British Columbia Cancer Agency, Vancouver, BC;

3. Terry Fox Laboratories, British Columbia Cancer Agency, Vancouver, BC;

4. Structural Genomics Consortium, University of Toronto, Toronto, ON;

5. Michael Smith Genome Sciences Centre, British Columbia Cancer Agency, Vancouver, BC;

6. British Columbia Cancer Agency, Centre for Lymphoid Cancer, Vancouver, BC;

7. Laboratory of Medicinal Chemistry, Center for Cancer Research, NCI-Frederick, Frederick, MD;

8. Department of Medicine, University of British Columbia, Vancouver, BC;

9. Ontario Cancer Institute and Department of Medical Biophysics, University of Toronto, Toronto, ON; and

10. Department of Medical Genetics, University of British Columbia, Vancouver, BC

Abstract

AbstractNext-generation sequencing of follicular lymphoma and diffuse-large B-cell lymphoma has revealed frequent somatic, heterozygous Y641 mutations in the histone methyltransferase EZH2. Heterozygosity and the presence of equal quantities of both mutant and wild-type mRNA and expressed protein suggest a dominant mode of action. Surprisingly, B-cell lymphoma cell lines and lymphoma samples harboring heterozygous EZH2Y641 mutations have increased levels of histone H3 Lys-27–specific trimethylation (H3K27me3). Expression of EZH2Y641F/N mutants in cells with EZH2WT resulted in an increase of H3K27me3 levels in vivo. Structural modeling of EZH2Y641 mutants suggests a “Tyr/Phe switch” model whereby structurally neutral, nontyrosine residues at position 641 would decrease affinity for unmethylated and monomethylated H3K27 substrates and potentially favor trimethylation. We demonstrate, using in vitro enzyme assays of reconstituted PRC2 complexes, that Y641 mutations result in a decrease in monomethylation and an increase in trimethylation activity of the enzyme relative to the wild-type enzyme. This represents the first example of a disease-associated gain-of-function mutation in a histone methyltransferase, whereby somatic EZH2 Y641 mutations in lymphoma act dominantly to increase, rather than decrease, histone methylation. The dominant mode of action suggests that allele-specific EZH2 inhibitors should be a future therapeutic strategy for this disease.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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