A Panel of Circulating Exosomal sncRNAs Associated With Lung Cancer Risk up to 10 Years in Advance.

Journal: Advanced science (Weinheim, Baden-Wurttemberg, Germany)
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Abstract

Current lung cancer screening fails to identify many individuals at risk beyond heavy smokers, highlighting the need for additional predictive biomarkers. This study profiles circulating exosomal small non-coding RNAs (sncRNAs) in a prospective cohort of 202 smokers, including 68 incident lung cancer cases with up to 16 years of follow-up. A structured 5 × 5 nested cross-validation framework incorporating feature selection, classifier comparison, and outer-loop evaluation identifies a panel of 31 sncRNA risk biomarkers. The optimized random forest model achieves an area under the curve (AUC) of 0.97 in outer-fold testing (sensitivity = 0.93; specificity = 1.00). The derived risk score remains independently associated with incident lung cancer after adjustment for demographic and smoking variables (odds ratio [OR] = 13.19, 95% confidence interval [CI] 6.83-25.45) and is associated with shorter time-to-diagnosis in competing risks analysis (subdistribution hazard ratio [sHR] = 4.78, 95% CI 3.57-6.41). Associations are observed up to 10 years prior to diagnosis. Target gene analysis implicates pathways relevant to lung tumorigenesis, including PI3K-Akt, p53, and MAPK signaling. These findings suggest that plasma exosomal sncRNAs may contribute to early lung cancer risk assessment and warrant further evaluation in independent pre-diagnostic cohorts.

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