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Functional Assessment of Intestinal Motility and Gut Wall Inflammation in Rodents: Analyses in a Standardized Model of Intestinal Manipulation
Published on: September 11, 2012
Investigation of the molecular network underlying PET-MPs-induced inflammatory bowel disease via integrated machine
Jinhua Ye1, QianYu Lu2, Hufei Wang3
1Department of Gastroenterology, Suizhou Hospital, Hubei University of Medicine, Suizhou, China.
Abstract:
Polyethylene terephthalate microplastics (PET-MPs), as environmental contaminants, have raised significant concerns due to their potential toxicity, leading to serious environmental pollution and health issues. However, their impact on inflammatory bowel disease (IBD) remains poorly elucidated. This study aims to investigate the potential molecular mechanisms linking PET-MPs to IBD pathogenesis. Multiple datasets were employed to identify Crohn's disease (CD)- and ulcerative colitis (UC)-associated targets. Multi-machine learning approaches were combined with molecular docking of a PET-related compound to evaluate potential binding interactions with the identified hub targets. This study delineated 9 putative targets associated with PET-MPs-related CD pathogenesis and 17 potential targets associated with UC pathogenesis. For CD, GBM showed the best performance among all models, with a mean ROC-AUC of 0.862; for UC, RF performed best, with a mean ROC-AUC of 0.806, based on both training and validation sets. Multi-machine learning analysis identified 14 hub genes as candidate key regulatory factors. SHAP analysis highlighted their significant contributions to the model predictions. Molecular docking simulations suggested favorable binding affinities between a PET-related compound and the hub targets. This study suggests that PET-MPs may contribute to IBD pathogenesis by potentially interacting with 14 machine learning-prioritized hub genes. Molecular docking analyses indicated predicted high-affinity binding between a PET-related compound and these targets. Collectively, these findings provide a hypothesis-generating framework for investigating the potential role of PET-MPs in IBD progression.
Insights
Polyethylene terephthalate microplastics (PET-MPs) may influence inflammatory bowel disease (IBD) by interacting with key genes. This study identifies 14 potential gene targets linking PET-MPs to IBD pathogenesis.
Area of Science:
- Environmental Science
- Toxicology
- Genetics
Background:
- Polyethylene terephthalate microplastics (PET-MPs) are emerging environmental contaminants with potential toxicity.
- The specific impact of PET-MPs on inflammatory bowel disease (IBD) pathogenesis is not well understood.
Purpose of the Study:
- To investigate the molecular mechanisms linking PET-MPs to IBD.
- To identify potential gene targets associated with PET-MP exposure in Crohn's disease (CD) and ulcerative colitis (UC).
Main Methods:
- Utilized multiple gene expression datasets to identify CD- and UC-associated targets.
- Employed multi-machine learning approaches and molecular docking simulations.
- Analyzed 14 hub genes identified through machine learning and SHAP analysis.
Main Results:
- Identified 9 targets for PET-MP-related CD and 17 for UC.
- Machine learning models achieved high performance (ROC-AUC 0.862 for CD, 0.806 for UC).
- Molecular docking indicated favorable binding affinities between a PET-related compound and the identified hub targets.
Conclusions:
- PET-MPs may contribute to IBD pathogenesis through interactions with 14 prioritized hub genes.
- Findings provide a framework for further research into the role of PET-MPs in IBD.
- Suggests a potential molecular link between microplastic exposure and inflammatory bowel diseases.