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Application of multiple machine learning approaches to determine key pyroptosis molecules in type 2 diabetes mellitus
Min Wang1, He Wu2, Ronghua Wu3
1Department of Clinical Laboratory, The Affiliated People's Hospital of Shandong First Medical University, Jinan, China.
Objective:
Pyroptosis, a lytic and inflammatory programmed cell death, has been implicated in type 2 diabetes mellitus (T2DM) and its complications. Nonetheless, it remains elusive exactly which pyroptosis molecule exerts an essential role in T2DM, and this study aims to solve such issue.
Methods:
Transcriptional profiling datasets of T2DM, i.e., GSE20966, GSE95849, and GSE26168, were acquired. Four machine learning models, namely, random forest, support vector machine, extreme gradient boosting, and generalized linear modeling, were built based on pyroptosis genes. A nomogram of key pyroptosis genes was also generated, and the clinical value was appraised via calibration curves and decision curve analysis. Immune infiltration was inferred utilizing CIBERSORT. Drug-druggable target relationships were acquired from the Drug Gene Interaction Database. Through WGCNA, key pyroptosis-relevant genes were selected.
Results:
Most pyroptosis genes exhibited upregulation in T2DM relative to controls, indicating the activity of pyroptosis in T2DM. The SVM model composed of BAK1, CHMP2B, NLRP6, PLCG1, and TIRAP exhibited the best performance in T2DM diagnosis, with AUC = 1. The nomogram can predict the risk of T2DM for clinical practice. NK cells resting exhibited a lower abundance in T2DM versus normal specimens, with a higher abundance of neutrophils. NLRP6 was positively linked with neutrophils. Drugs (keracyanin, 9,10-phenanthrenequinone, diclofenac, phosphomethylphosphonic acid adenosyl ester, acetaminophen, cefixime, aspirin, ustekinumab) potentially targeted the key pyroptosis genes. Additionally, CHMP2B-relevant genes were determined.
Conclusion:
Altogether, this work proposes the key pyroptosis genes in T2DM, which might become possible molecules for the management and treatment of T2DM and its complications.
Insights
This study identifies key pyroptosis genes involved in type 2 diabetes mellitus (T2DM). These genes, including BAK1, CHMP2B, NLRP6, PLCG1, and TIRAP, may offer new therapeutic targets for T2DM management.
Area of Science:
- Molecular Biology
- Immunology
- Genetics
Background:
- Pyroptosis, a programmed cell death pathway, is linked to type 2 diabetes mellitus (T2DM) and its complications.
- The specific pyroptosis molecules crucial in T2DM pathogenesis remain largely unidentified.
Purpose of the Study:
- To identify key pyroptosis-related genes that play a significant role in T2DM.
- To explore the potential of these genes as diagnostic markers and therapeutic targets for T2DM.
Main Methods:
- Analysis of public transcriptional profiling datasets (GSE20966, GSE95849, GSE26168) for T2DM.
- Application of machine learning models (random forest, SVM, XGBoost, GLM) and WGCNA to identify key pyroptosis genes.
- Nomogram construction for clinical prediction, immune infiltration analysis (CIBERSORT), and drug-target relationship identification.
Main Results:
- Pyroptosis genes were generally upregulated in T2DM samples.
- A support vector machine (SVM) model incorporating BAK1, CHMP2B, NLRP6, PLCG1, and TIRAP demonstrated high diagnostic accuracy (AUC=1).
- Reduced NK cell abundance and increased neutrophil infiltration were observed in T2DM, with NLRP6 positively correlating with neutrophils. Several drugs were identified as potential targets for key pyroptosis genes.
Conclusions:
- This study proposes BAK1, CHMP2B, NLRP6, PLCG1, and TIRAP as key pyroptosis genes in T2DM.
- These identified genes represent potential novel therapeutic targets for managing T2DM and its associated complications.
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