Long noncoding RNAs at the crossroads of smoking, oxidative stress, inflammation, and lung disease.
TL;DR
The different mechanisms by which tobacco-induced dysregulation of lncRNAs contributes to oxidative stress, chronic inflammation, and disease pathogenesis are examined, while focusing on COPD and lung cancer.
OpenAlex 토픽 ·
Cancer-related molecular mechanisms research
Chronic Obstructive Pulmonary Disease (COPD) Research
Autophagy in Disease and Therapy
The different mechanisms by which tobacco-induced dysregulation of lncRNAs contributes to oxidative stress, chronic inflammation, and disease pathogenesis are examined, while focusing on COPD and lung
APA
Hannah Blumenfeld, Ahmad Besaratinia, Stella Tommasi (2026). Long noncoding RNAs at the crossroads of smoking, oxidative stress, inflammation, and lung disease.. Archives of toxicology, 100(5), 1789-1823. https://doi.org/10.1007/s00204-026-04348-5
MLA
Hannah Blumenfeld, et al.. "Long noncoding RNAs at the crossroads of smoking, oxidative stress, inflammation, and lung disease.." Archives of toxicology, vol. 100, no. 5, 2026, pp. 1789-1823.
PMID
41838062
Abstract
Cigarette smoking is a well-recognized risk factor for chronic obstructive pulmonary disease (COPD) and lung cancer, but the underlying molecular mechanisms remain the subject of intense investigation. A large body of evidence has shown the role of long noncoding RNAs (lncRNAs) in the pathogenesis of smoke-related diseases. LncRNAs are > 200 nt-long functional transcripts with limited protein-coding potential, which are emerging as critical regulators of gene expression in a variety of biological processes. Exposure to cigarette smoke (CS) is known to cause widespread dysregulation of lncRNAs in lung tissues and immune cells, thus leading to disruption of cell homeostasis, and induction of oxidative stress and chronic inflammation. This review article discusses the interplay of lncRNAs, smoking, oxidative stress, immune response, and lung disease. First, we provide an overview of the functions and modes of action of lncRNAs in the regulation of gene expression at the epigenetic, transcriptional, and post-transcriptional levels. We then examine the different mechanisms by which tobacco-induced dysregulation of lncRNAs contributes to oxidative stress, chronic inflammation, and disease pathogenesis, while focusing on COPD and lung cancer. Finally, we highlight the importance of extending lncRNA research to new and emerging tobacco products and discuss the promises and pitfalls of lncRNAs as predictive biomarkers and prognostic targets. Understanding the intricate roles of lncRNAs in the pathogenesis of COPD and lung cancer can provide new avenues for advancing diagnostic tools and therapeutic strategies in the fight against these devastating smoke-associated diseases.
MeSH Terms
Humans; RNA, Long Noncoding; Oxidative Stress; Inflammation; Animals; Lung Diseases; Smoking; Pulmonary Disease, Chronic Obstructive; Lung Neoplasms; Epigenesis, Genetic; Gene Expression Regulation