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Identification of circadian rhythm-related biomarkers and development of diagnostic models for Crohn’s disease using machine learning algorithms

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DataCite Commons2026-05-09 更新2025-05-07 收录
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https://tandf.figshare.com/articles/dataset/Identification_of_circadian_rhythm-related_biomarkers_and_development_of_diagnostic_models_for_Crohn_s_disease_using_machine_learning_algorithms/28248652
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The global rise in Crohn’s Disease (CD) incidence has intensified diagnostic challenges. This study identified circadian rhythm-related biomarkers for CD using datasets from the GEO database. Differentially expressed genes underwent Weighted Gene Co-Expression Network Analysis, with 49 hub genes intersected from GeneCards data. Diagnostic models were constructed using machine learning algorithms, and biologic therapy efficacy was predicted with advanced regression techniques. Single-cell sequencing showed high gene expression in stem cells, immune, and endothelial cells, with validation confirming significant differences between CD patients and controls. These findings suggest circadian rhythm-related genes as promising diagnostic biomarkers for CD.
提供机构:
Taylor & Francis
创建时间:
2025-01-21
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