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ASH1L Links Histone H3 Lysine 36 Dimethylation to MLL Leukemia
Author(s) -
Li Zhu,
Qin Li,
Stephen H.K. Wong,
Min Huang,
Brianna J. Klein,
Jinfeng Shen,
Larissa Ikenouye,
Masayuki Onishi,
Dominik Schneidawind,
Corina Buechele,
Loren Hansen,
Jesús DuqueAfonso,
Fangfang Zhu,
Glòria Mas Martín,
Or Gozani,
Ravindra Majeti,
Tatiana G. Kutateladze,
Michael L. Cleary
Publication year - 2016
Publication title -
cancer discovery
Language(s) - Uncategorized
Resource type - Journals
SCImago Journal Rank - 6.795
H-Index - 163
eISSN - 2159-8290
pISSN - 2159-8274
DOI - 10.1158/2159-8290.cd-16-0058
Subject(s) - histone h3 , histone , lysine , leukemia , chemistry , cancer research , microbiology and biotechnology , biology , biochemistry , genetics , dna , amino acid
Numerous studies in multiple systems support that histone H3 lysine 36 dimethylation (H3K36me2) is associated with transcriptional activation; however, the underlying mechanisms are not well defined. Here, we show that the H3K36me2 chromatin mark written by the ASH1L histone methyltransferase is preferentially bound in vivo by LEDGF, a mixed-lineage leukemia (MLL)-associated protein that colocalizes with MLL, ASH1L, and H3K36me2 on chromatin genome wide. Furthermore, ASH1L facilitates recruitment of LEDGF and wild-type MLL proteins to chromatin at key leukemia target genes and is a crucial regulator of MLL-dependent transcription and leukemic transformation. Conversely, KDM2A, an H3K36me2 demethylase and Polycomb group silencing protein, antagonizes MLL-associated leukemogenesis. Our studies are the first to provide a basic mechanistic insight into epigenetic interactions wherein placement, interpretation, and removal of H3K36me2 contribute to the regulation of gene expression and MLL leukemia, and suggest ASH1L as a novel target for therapeutic intervention.

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