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PKM2 Phosphorylates Histone H3 and Promotes Gene Transcription and Tumorigenesis
Author(s) -
Weiwei Yang,
Yan Xia,
David H. Hawke,
Xinjian Li,
Ji Liang,
Dongming Xing,
Kenneth Aldape,
Tony Hunter,
W. K. Alfred Yung,
Zhimin Lu
Publication year - 2012
Publication title -
cell
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 26.304
H-Index - 776
eISSN - 1097-4172
pISSN - 0092-8674
DOI - 10.1016/j.cell.2012.07.018
Subject(s) - biology , pkm2 , histone h3 , cancer research , sap30 , histone , hdac4 , carcinogenesis , cyclin d1 , microbiology and biotechnology , histone h2a , pyruvate kinase , cell cycle , genetics , biochemistry , glycolysis , gene , enzyme
Tumor-specific pyruvate kinase M2 (PKM2) is essential for the Warburg effect. In addition to its well-established role in aerobic glycolysis, PKM2 directly regulates gene transcription. However, the mechanism underlying this nonmetabolic function of PKM2 remains elusive. We show here that PKM2 directly binds to histone H3 and phosphorylates histone H3 at T11 upon EGF receptor activation. This phosphorylation is required for the dissociation of HDAC3 from the CCND1 and MYC promoter regions and subsequent acetylation of histone H3 at K9. PKM2-dependent histone H3 modifications are instrumental in EGF-induced expression of cyclin D1 and c-Myc, tumor cell proliferation, cell-cycle progression, and brain tumorigenesis. In addition, levels of histone H3 T11 phosphorylation correlate with nuclear PKM2 expression levels, glioma malignancy grades, and prognosis. These findings highlight the role of PKM2 as a protein kinase in its nonmetabolic functions of histone modification, which is essential for its epigenetic regulation of gene expression and tumorigenesis.

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