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Updated: Jul 26, 2025

Evaluation of Hepatic Glucose Production in a Polycystic Ovary Syndrome Mouse Model
Published on: March 5, 2022
Identification of the hub genes in polycystic ovary syndrome based on disease-associated molecule network
Yue Wu1,2,3, Lingping Yang4, Xianglu Wu4
1School of Basic Medicine, Chongqing Medical University, Chongqing, P.R. China.
Abstract:
Revealing the key genes involved in polycystic ovary syndrome (PCOS) and elucidating its pathogenic mechanism is of extreme importance for the development of targeted clinical therapy for PCOS. Investigating disease by integrating several associated and interacting molecules in biological systems will make it possible to discover new pathogenic genes. In this study, an integrative disease-associated molecule network, combining protein-protein interactions and protein-metabolites interactions (PPMI) network was constructed based on the PCOS-associated genes and metabolites systematically collected. This new PPMI strategy identified several potential PCOS-associated genes, which have unreported in previous publications. Moreover, the systematic analysis of five benchmarks data sets indicated the DERL1 was identified as downregulated in PCOS granulosa cell and has good classification performance between PCOS patients and healthy controls. CCR2 and DVL3 were upregulated in PCOS adipose tissues and have good classification performance. The expression of novel gene FXR2 identified in this study is significantly increased in ovarian granulosa cells of PCOS patients compared with controls via quantitative analysis. Our study uncovers substantial differences in the PCOS-specific tissue and provides a plethora of information on dysregulated genes and metabolites that are linked to PCOS. This knowledgebase could have the potential to benefit the scientific and clinical community. In sum, the identification of novel gene associated with PCOS provides valuable insights into the underlying molecular mechanisms of PCOS and could potentially lead to the development of new diagnostic and therapeutic strategies.
Insights
This study identifies novel genes linked to polycystic ovary syndrome (PCOS) by analyzing molecular interactions. Findings reveal new insights into PCOS mechanisms, potentially aiding future diagnostic and therapeutic strategies.
Area of Science:
- Endocrinology and Metabolism
- Genetics and Genomics
- Molecular Biology
Background:
- Polycystic Ovary Syndrome (PCOS) pathogenesis requires understanding key genes and molecular mechanisms for targeted therapies.
- Integrating multiple interacting molecules offers a pathway to discover novel disease-associated genes.
Purpose of the Study:
- To construct an integrative protein-protein and protein-metabolite interaction network (PPMI) for PCOS.
- To identify novel PCOS-associated genes and elucidate underlying molecular mechanisms.
- To provide a knowledgebase for potential clinical applications in PCOS diagnosis and treatment.
Main Methods:
- Systematic collection of PCOS-associated genes and metabolites.
- Construction of a combined protein-protein interaction and protein-metabolite interaction (PPMI) network.
- Analysis of five benchmark datasets to identify and validate PCOS-associated genes (DERL1, CCR2, DVL3, FXR2).
Main Results:
- The PPMI strategy identified several previously unreported potential PCOS-associated genes.
- DERL1 was found downregulated in PCOS granulosa cells, showing good classification performance.
- CCR2 and DVL3 were upregulated in PCOS adipose tissues, also demonstrating good classification performance.
- The novel gene FXR2 showed significantly increased expression in granulosa cells of PCOS patients.
Conclusions:
- This study uncovers significant molecular differences in PCOS-specific tissues.
- The identified dysregulated genes and metabolites provide valuable insights into PCOS pathogenesis.
- The findings offer potential for developing new diagnostic and therapeutic strategies for PCOS.
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