Histone Lysine Methylation Dynamics Control EGFR DNA Copy-Number Amplification.
Thomas L ClarkeRan TangDamayanti ChakrabortyCapucine Van RechemFei JiSweta MishraAnqi MaH Ümit KaniskanJian JinMichael S LawrenceRuslan I SadreyevJohnathan R WhetstinePublished in: Cancer discovery (2019)
Acquired chromosomal DNA copy gains are a feature of many tumors; however, the mechanisms that underpin oncogene amplification are poorly understood. Recent studies have begun to uncover the importance of epigenetic states and histone lysine methyltransferases (KMT) and demethylases (KDM) in regulating transient site-specific DNA copy-number gains (TSSG). In this study, we reveal a critical interplay between a myriad of lysine methyltransferases and demethylases in modulating H3K4/9/27 methylation balance to control extrachromosomal amplification of the EGFR oncogene. This study further establishes that cellular signals (hypoxia and EGF) are able to directly promote EGFR amplification through modulation of the enzymes controlling EGFR copy gains. Moreover, we demonstrate that chemical inhibitors targeting specific KMTs and KDMs are able to promote or block extrachromosomal EGFR amplification, which identifies potential therapeutic strategies for controlling EGFR copy-number heterogeneity in cancer, and, in turn, drug response. SIGNIFICANCE: This study identifies a network of epigenetic factors and cellular signals that directly control EGFR DNA amplification. We demonstrate that chemical inhibitors targeting enzymes controlling this amplification can be used to rheostat EGFR copy number, which uncovers therapeutic opportunities for controlling EGFR DNA amplification heterogeneity and the associated drug response.This article is highlighted in the In This Issue feature, p. 161.
Keyphrases
- copy number
- nucleic acid
- genome wide
- small cell lung cancer
- epidermal growth factor receptor
- mitochondrial dna
- dna methylation
- tyrosine kinase
- circulating tumor
- cell free
- single molecule
- gene expression
- machine learning
- label free
- emergency department
- signaling pathway
- squamous cell carcinoma
- cancer therapy
- deep learning
- growth factor
- climate change
- quantum dots
- human health