Epigenome-wide DNA methylation analysis of small cell lung cancer cell lines suggests potential chemotherapy targets

Julia Krushkal1, Thomas Silvers2, William C Reinhold3

  • 1Biometric Research Program, Division of Cancer Treatment and Diagnosis, National Cancer Institute, NIH, 9609 Medical Center Dr., Rockville, MD, 20850, USA. julia.krushkal@nih.gov.

Clinical Epigenetics
|June 27, 2020
PubMed
Abstract

Insights

This study explored DNA methylation in small cell lung cancer (SCLC) and its impact on drug response. Key findings reveal epigenetic markers like TREX1 methylation correlate with sensitivity to specific cancer therapies, offering new treatment avenues.

Area of Science:

  • Oncology
  • Epigenetics
  • Genomics

Background:

  • Small cell lung cancer (SCLC) is an aggressive neuroendocrine tumor.
  • Epigenetic alterations, particularly DNA methylation, are implicated in SCLC progression and treatment resistance.
  • The precise relationship between SCLC DNA methylation patterns and drug response remains largely undefined.

Purpose of the Study:

  • To investigate the genome-wide DNA methylation landscape in SCLC cell lines.
  • To identify correlations between DNA methylation, gene expression, and in vitro drug sensitivity across a broad spectrum of anticancer agents.
  • To uncover potential epigenetic mechanisms driving SCLC chemosensitivity and resistance.

Main Methods:

  • Epigenome-wide analysis of 66 human SCLC cell lines using the Illumina MethylationEPIC BeadChip array.
  • Correlation analysis of DNA methylation and gene expression data with in vitro drug response data for 526 antitumor agents.
  • Comparative analysis of TREX1 methylation and expression in SCLC versus other cancer types.

Main Results:

  • Multiple significant correlations were identified between DNA methylation and chemosensitivity.
  • Increased methylation and reduced expression of TREX1 were associated with sensitivity to Aurora kinase inhibitors, a CDK inhibitor, an ATR inhibitor, and vinorelbine.
  • Specific methylation patterns in genes such as CEP350, MLPH, EPAS1, KDM1A, SLFN11, EZH2, YAP1, EPHA2, and CD151 showed associations with responses to various targeted therapies and chemotherapeutic agents.

Conclusions:

  • The study identified numerous potential epigenetic mechanisms influencing SCLC response to chemotherapy.
  • Specific DNA methylation patterns are linked to sensitivity or resistance to particular drug classes, including Aurora kinase inhibitors.
  • These findings suggest novel therapeutic targets and combination strategies for SCLC treatment, with some epigenetic markers showing lineage specificity.