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February 5, 2026Frontiers in Genetics2 citationsOpen Access

Mitophagy-related molecular signatures in ulcerative colitis revealed by machine learning and molecular dynamics

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YHYanru HanWRWeihua RenSLSujuan Li

Key Points

  • The study aims to explore the role of mitophagy-related genes in ulcerative colitis and identify potential biomarkers and therapies.
  • Intersected mitophagy-related genes with differentially expressed genes to identify UC-associated MRGs.
  • Conducted functional enrichment and immune infiltration analyses.
  • Applied machine learning methods to develop diagnostic models.
  • Utilized the CMap database for candidate therapeutic agent identification.
  • Identified 35 UC-associated mitophagy-related genes enriched in immune and metabolic functions.
  • Stratified UC patients into metabolism-dominant and inflammation-activated subtypes.
  • Validated CD55, CPT1A, and SLC16A1 as reliable diagnostic biomarkers.
  • Demonstrated galunisertib's strong binding to CD55 and its efficacy in reducing inflammatory cytokines.

Abstract

Introduction Ulcerative colitis (UC) is a lifelong, chronic inflammatory disorder, characterized by recurrent and diffuse inflammation of the rectal and colonic mucosa. Increasing evidence suggests that impaired mitophagy contributes to immune dysregulation and epithelial injury in UC. However, the mitophagy-related molecular landscape and its therapeutic potential remain largely unexplored. Methods Mitophagy-related genes (MRGs) were intersected with differentially expressed genes to identify UC-associated MRGs. Functional enrichment, immune infiltration, and consensus clustering analyses were performed to characterize molecular subtypes. Three machine learning methods were employed to identify diagnostic models. Candidate therapeutic agents were identified by the CMap database. Results A total of 35 UC-associated MRGs were identified, enriched in cell activation, fatty acid metabolism, and the PPAR signaling pathway, revealing strong immunometabolic coupling in UC. Consensus clustering stratified UC patients into two subtypes: a metabolism-dominant subtype (C1) and an inflammation-activated subtype (C2). Three hub genes—CD55, CPT1A, and SLC16A1—were screened and validated as robust diagnostic markers. Drug prediction and molecular docking revealed strong binding between galunisertib and CD55, which was further validated by molecular dynamics simulations. In vitro , galunisertib significantly suppressed inflammatory cytokine release in LPS-induced UC cell models. Discussion This study delineated the mitophagy-related molecular signatures of UC and identified CD55, CPT1A, and SLC16A1 as key biomarkers linking mitochondrial dysfunction, metabolic reprogramming, and immune activation. Furthermore, galunisertib was proposed as a potential therapeutic agent, providing a theoretical basis for UC therapy.

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Cite This Study

Han et al. (2026) studied this question.

synapsesocial.com/papers/698433a5f1d9ada3c1fb0ea1https://doi.org/10.3389/fgene.2026.1760869
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