Exploring the Utility of Long Non-Coding RNAs for Assessing the Health Consequences of Vaping.
Ahmad BesaratiniaHannah BlumenfeldStella TommasiPublished in: International journal of molecular sciences (2024)
Electronic cigarette (e-cig) use, otherwise known as "vaping", is widespread among adolescent never-smokers and adult smokers seeking a less-harmful alternative to combustible tobacco products. To date, however, the long-term health consequences of vaping are largely unknown. Many toxicants and carcinogens present in e-cig vapor and tobacco smoke exert their biological effects through epigenetic changes that can cause dysregulation of disease-related genes. Long non-coding RNAs (lncRNAs) have emerged as prime regulators of gene expression in health and disease states. A large body of research has shown that lncRNAs regulate genes involved in the pathogenesis of smoking-associated diseases; however, the utility of lncRNAs for assessing the disease-causing potential of vaping remains to be fully determined. A limited but growing number of studies has shown that lncRNAs mediate dysregulation of disease-related genes in cells and tissues of vapers as well as cells treated in vitro with e-cig aerosol extract. This review article provides an overview of the evolution of e-cig technology, trends in use, and controversies on the safety, efficacy, and health risks or potential benefits of vaping relative to smoking. While highlighting the importance of lncRNAs in cell biology and disease, it summarizes the current and ongoing research on the modulatory effects of lncRNAs on gene regulation and disease pathogenesis in e-cig users and in vitro experimental settings. The gaps in knowledge are identified, priorities for future research are highlighted, and the importance of empirical data for tobacco products regulation and public health is underscored.
Keyphrases
- public health
- long non coding rna
- gene expression
- healthcare
- smoking cessation
- mental health
- dna methylation
- stem cells
- signaling pathway
- cell cycle arrest
- human health
- oxidative stress
- young adults
- machine learning
- cell death
- bone marrow
- climate change
- transcription factor
- single cell
- mesenchymal stem cells
- genome wide analysis
- newly diagnosed
- genome wide identification
- cell proliferation
- cell therapy
- endoplasmic reticulum stress