PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 5, 2026Cancer Research0 citations

Abstract 1950: Integrated transcriptomic and epigenomic analysis to study the mechanism by which smoke-induced hypomethylation of cg05575921 increases lung cancer risk.

View Full Paper
MGMatthew A. GladstoneKHKhoi HuynhCYChunli Yan

Key Points

  • To investigate the mechanisms by which smoke-induced hypomethylation of cg05575921 contributes to lung cancer risk.
  • Utilized immortalized human alveolar epithelial cells exposed to tobacco smoke.
  • Applied Oxford Nanopore long-read sequencing to analyze DNA methylation changes over time.
  • Employed CRISPR/Cas9 to delete the enhancer and/or the CpG site to assess AHRR expression.
  • Tested the effects of constitutive AHRR expression on xenobiotic response genes.
  • Hypomethylation of cg05575921 significantly correlated with increased AHRR expression.
  • Enhanced expression of AHRR was linked to reduced detoxification response to smoke exposure.
  • The deletion of the enhancer resulted in altered AHRR expression levels.

Abstract

Abstract Lung cancer is the leading cause of cancer death in the US. The most common subtype is lung adenocarcinoma (LUAD), arising out of the alveolar epithelium. Tobacco smoke and pollution play a key role in LUAD risk and have been associated with changes in DNA methylation in numerous epigenome-wide association studies. Hypomethylation of cg05575921 is one of the most significant changes, predicting over 30% of the increased risk of lung cancer seen in smokers. However, the mechanism by which this methylation loss is linked to lung cancer risk remains unknown. We previously showed that cg05575921, located in intron 3 of the gene aryl hydrocarbon receptor repressor (AHRR), borders a tobacco smoke-inducible enhancer. Upon smoke exposure AHRR is the only gene within a two megabase window whose expression increases. AHRR is a negative feedback regulator of aryl hydrocarbon receptor (AHR) induced detoxification responses. Like AHR, AHRR binds to the partner protein ARNT. However, unlike the AHR/ARNT heterodimer, which turns on detoxification genes, the AHRR/ARNT heterodimer downregulates the detoxification response. We hypothesize that prolonged tobacco smoke exposure triggers maladaptive expression of AHRR, that hypomethylation of cg05575921 is a byproduct of the adjacent enhancer activation, and that constitutive expression of AHRR prevents protective xenobiotic detoxification responses, thereby increasing lung cancer risk. Using our unique immortalized human alveolar epithelial cells, we are determining what role the enhancer and cg05575921 play in AHRR expression by i) using Oxford Nanopore long-read sequencing to study DNA methylation changes in the region over time during tobacco smoke exposure, ii) using CRISPR/Cas 9 to heterozygously delete the known enhancer and/or the CpG to determine the effects on the expression of AHRR from the enhancer/CpG-deleted and control alleles, iii) using an inducible AHRR gene to test the effects of constitutive expression of AHRR on the xenobiotic response genes induced by cigarette smoke. Understanding why cg05575921 hypomethylation is strongly associated with lung cancer risk may help devise strategies to mitigate the effects of smoke exposure. Supported T31IP1913 from the Tobacco-Related Disease Research Program, an Epigenomic Regulation in Cancer Pilot ward from the USC/Norris Comprehensive Cancer Center, the Norris Comprehensive Cancer Center core grant NIH/NCI P30CA014089, and a Keck School of Medicine Dean’s Fellowship. MAG and IAO are members of CaRE2, the Cancer Research Education and Engagement Health Center, supported by NIH/NCI grants U54CA233396, U54CA233444, and U54233465. Citation Format: Matthew Gladstone, Khoi Huynh, Chunli Yan, Kimberly D. Siegmund, Aram Modrek, Ite Offringa. Integrated transcriptomic and epigenomic analysis to study the mechanism by which smoke-induced hypomethylation of cg05575921 increases lung cancer risk abstract. In: Proceedings of the American Association for Cancer Research Annual Meeting 2026; Part 1 (Regular Abstracts); 2026 Apr 17-22; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2026;86(7 Suppl):Abstract nr 1950.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Gladstone et al. (2026) studied this question.

synapsesocial.com/papers/69d1fd73a79560c99a0a385chttps://doi.org/10.1158/1538-7445.am2026-1950
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Abstract 2312: ASH-MARCC: Assessment of smoking history via methylation and reference-based cell composition in human tissue samples2026
  2. 2Abstract C167: Understanding the effect of single nucleotide polymorphism rs2292596 on the interaction of aryl hydrocarbon receptor repressor and aryl hydrocarbon receptor nuclear translocator2024
  3. 3A Tracts of Homozygosity Approach Identifies Methylation-Regulated CSMD1 Expression Targets in Non–Small Cell Lung Cancers Related to Smoking Behavior2025
  4. 4Abstract 1465: Studying basal cell adaptation in the airways in response to chronic tobacco exposure2024
  5. 5Abstract B159: Characterizing interactions between genomic ancestry and social determinants of health and their implications for patient outcomes by leveraging LLM-annotated smoking data in a large clinicogenomic cohort2025