An activating mutation of the NSD2 histone methyltransferase drives oncogenic reprogramming in acute lymphocytic leukemia.
Alok SwaroopJon A OyerChristine M WillXiaoxiao HuangWenbo YuCatalina TrocheMarinka BulicBenjamin H DurhamQiang Jeremy WenJohn D CrispinoAlexander D MacKerellRichard L BennettMichael P SnyderJonathan D LichtPublished in: Oncogene (2018)
NSD2, a histone methyltransferase specific for methylation of histone 3 lysine 36 (H3K36), exhibits a glutamic acid to lysine mutation at residue 1099 (E1099K) in childhood acute lymphocytic leukemia (ALL), and cells harboring this mutation can become the predominant clone in relapsing disease. We studied the effects of this mutant enzyme in silico, in vitro, and in vivo using gene edited cell lines. The E1099K mutation altered enzyme/substrate binding and enhanced the rate of H3K36 methylation. As a result, cell lines harboring E1099K exhibit increased H3K36 dimethylation and reduced H3K27 trimethylation, particularly on nucleosomes containing histone H3.1. Mutant NSD2 cells exhibit reduced apoptosis and enhanced proliferation, clonogenicity, adhesion, and migration. In mouse xenografts, mutant NSD2 cells are more lethal and brain invasive than wildtype cells. Transcriptional profiling demonstrates that mutant NSD2 aberrantly activates factors commonly associated with neural and stromal lineages in addition to signaling and adhesion genes. Identification of these pathways provides new avenues for therapeutic interventions in NSD2 dysregulated malignancies.
Keyphrases
- cell cycle arrest
- induced apoptosis
- endoplasmic reticulum stress
- dna methylation
- signaling pathway
- genome wide
- cell death
- oxidative stress
- bone marrow
- multiple sclerosis
- pi k akt
- acute myeloid leukemia
- transcription factor
- physical activity
- wild type
- staphylococcus aureus
- drug induced
- crispr cas
- pseudomonas aeruginosa
- white matter
- cystic fibrosis
- bioinformatics analysis
- single cell
- cell proliferation
- heat shock
- cell migration
- respiratory failure
- genome wide identification
- molecular dynamics simulations
- mechanical ventilation
- subarachnoid hemorrhage
- heat shock protein