Identification of crucial genes for polycystic ovary syndrome and atherosclerosis through comprehensive bioinformatics analysis and machine learning

IF 2.4 3区 医学 Q2 OBSTETRICS & GYNECOLOGY International Journal of Gynecology & Obstetrics Pub Date : 2025-02-21 DOI:10.1002/ijgo.70014
Lirong Wang, Yanli Zhang, Fan Ji, Zhenmin Si, Chengdong Liu, Xiaoke Wu, Chichiu Wang, Hui Chang
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Abstract

Objective

To identify potential biomarkers in patients with polycystic ovary syndrome (PCOS) and atherosclerosis, and to explore the common pathologic mechanisms between these two diseases in response to the increased risk of cardiovascular diseases in patients with PCOS.

Methods

PCOS and atherosclerosis data sets were downloaded from the GEO database, and their differentially expressed genes were identified. Weighted gene co-expression network analysis was used to obtain intersection genes, and then protein–protein interaction and functional enrichment analysis were performed. Machine learning algorithms were used to select the key genes, which were then validated through external data sets. We constructed a nomogram to predict the risk of atherosclerosis in women with PCOS. Finally, the CIBERSORT algorithm was used to analyze the infiltration of immune cells in the atherosclerosis group.

Results

We identified six hub genes (CD163, LAPTM5, TNFSF13B, MS4A4A, FGR, and IRF1) that exhibited excellent diagnostic value in validation data sets. Gene ontology terms and KEGG signaling pathway analysis revealed that key genes were associated with immune responses and inflammatory reactions. Abnormal immune cell infiltration was also found in the atherosclerosis group and was correlated with the six hub genes.

Conclusion

Common therapeutic targets of PCOS and atherosclerosis were preliminarily identified through bioinformatics analysis and machine learning techniques. These findings provide new treatment ideas for reducing the risk that PCOS will develop into atherosclerosis.

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通过综合生物信息学分析和机器学习鉴定多囊卵巢综合征和动脉粥样硬化的关键基因。
目的:寻找多囊卵巢综合征(PCOS)和动脉粥样硬化患者的潜在生物标志物,并探讨这两种疾病在PCOS患者心血管疾病风险增高中的共同病理机制。方法:从GEO数据库下载PCOS和动脉粥样硬化数据集,鉴定其差异表达基因。采用加权基因共表达网络分析获得交叉基因,然后进行蛋白-蛋白互作和功能富集分析。机器学习算法用于选择关键基因,然后通过外部数据集进行验证。我们构建了一个nomogram来预测PCOS患者发生动脉粥样硬化的风险。最后,采用CIBERSORT算法分析动脉粥样硬化组免疫细胞的浸润情况。结果:我们鉴定出6个中心基因(CD163、LAPTM5、TNFSF13B、MS4A4A、FGR和IRF1)在验证数据集中表现出出色的诊断价值。基因本体术语和KEGG信号通路分析显示,关键基因与免疫反应和炎症反应相关。动脉粥样硬化组免疫细胞浸润异常,与6个枢纽基因相关。结论:通过生物信息学分析和机器学习技术,初步确定了PCOS和动脉粥样硬化的共同治疗靶点。这些发现为降低多囊卵巢综合征发展为动脉粥样硬化的风险提供了新的治疗思路。
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来源期刊
CiteScore
5.80
自引率
2.60%
发文量
493
审稿时长
3-6 weeks
期刊介绍: The International Journal of Gynecology & Obstetrics publishes articles on all aspects of basic and clinical research in the fields of obstetrics and gynecology and related subjects, with emphasis on matters of worldwide interest.
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