Autophagy-Related Molecular Signatures and Immune Profiles Distinguish Sepsis from Sepsis-Induced Acute Respiratory Distress Syndrome
Qin Wang, Yuan Peng, YongFang Wang, Yan Yang, Chen Gu, Jiajia Wang, Jianan HuangIntroduction:
Sepsis is a life-threatening condition characterized by a dysregulated immune response to infection and is frequently complicated by acute respiratory distress syndrome (ARDS), contributing to substantial morbidity and mortality. Autophagy has been implicated in immune regulation and inflammatory signaling in these conditions; however, its transcriptomic role in distinguishing sepsis from sepsis-induced ARDS remains incompletely defined.
Method:
In this study, we performed an integrated transcriptomic analysis of three publicly available GEO datasets comprising 139 whole-blood samples (79 sepsis and 60 sepsis-induced ARDS).
Result:
Differential expression analysis identified 17 autophagy-related genes, including 10 upregulated and 7 downregulated genes in sepsis-induced ARDS compared with sepsis alone. Machine learning approaches, including LASSO regression, random forest, and support vector machine models, yielded a six-gene panel (ATG4A, ATG7, ATG9A, IRS1, RRAS, and SH3GLB1). Individual genes demonstrated moderate discriminatory performance (AUC range: 0.607–0.674), while the composite model achieved an AUC of 0.772 within the integrated dataset.
Discussion:
These genes were associated with distinct immune-related transcriptional signatures and were enriched in pathways linked to autophagy, metabolic regulation, and immune signaling. Upstream regulatory network analysis further suggested potential miRNA and transcription factor interactions.
Conclusion:
Collectively, these findings provide an integrative molecular framework highlighting autophagy–immune interactions in sepsis and sepsis-induced ARDS. Given the crosssectional and retrospective nature of the study, the results reflect associations between clinical states and require independent validation and mechanistic investigation.