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CDKN3 as a key regulator of G2M phase in triple-negative breast cancer: Insights from multi-transcriptomic analysis
Haodi Ma1, Yirui Dong1, Jiayu Zheng1
1Precision Medicine Laboratory, School of Medical Technology and Engineering, Henan University of Science and Technology, Luoyang, China.
Abstract:
Triple-negative breast cancer (TNBC) remains a significant global health challenge, emphasizing the need for precise identification of patients with specific therapeutic targets and those at high risk of metastasis. This study aimed to identify novel therapeutic targets for personalized treatment of TNBC patients by elucidating their roles in cell cycle regulation. Using weighted gene co-expression network analysis (WGCNA), we identified 83 hub genes by integrating gene expression profiles with clinical pathological grades. A machine learning-based integrative approach further pinpointed 12 prognostic genes, among which CDKN3 exhibited the highest hazard ratio and the most adverse impact on overall survival (OS) in BC patients. Additionally, CDKN3 was identified as an independent prognostic factor for OS prediction. CDKN3 overexpression was confirmed in BC patients and validated at both mRNA and protein levels in BC cells. Knockdown of CDKN3 significantly inhibited the migration and proliferation of BC cells. Cell cycle pathway analysis revealed significant enrichment in G2M-associated pathways in BC patients, with multi-transcriptomic data indicating a close association between enhanced G2M cell cycle activity and CDKN3 upregulation in basal cancer subtypes. Pseudotime analysis further suggested CDKN3 upregulation during the G2M phase at the terminal trajectory of basal cancer subtypes, implying that CDKN3 may drive BC cell progression by promoting G2M cell cycle activity. Mechanistically, CDKN3 knockdown induced G2M cell cycle arrest in TNBC cells by downregulating CCNB2. In conclusion, CDKN3 knockdown effectively inhibits TNBC by arresting the G2M cell cycle, underscoring CDKN3 as a promising therapeutic target in TNBC treatment.
Insights
CDKN3 is a promising therapeutic target for triple-negative breast cancer (TNBC). Inhibiting CDKN3 arrests the G2M cell cycle, significantly reducing TNBC cell migration and proliferation.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Triple-negative breast cancer (TNBC) presents a significant challenge due to limited targeted therapies and high metastatic potential.
- Identifying novel therapeutic targets is crucial for personalized treatment strategies in TNBC.
Purpose of the Study:
- To identify novel therapeutic targets for TNBC by investigating their role in cell cycle regulation.
- To elucidate the prognostic significance of identified genes in breast cancer (BC) patients.
Main Methods:
- Weighted gene co-expression network analysis (WGCNA) to identify hub genes.
- Machine learning-based integrative approach to pinpoint prognostic genes.
- Experimental validation including gene knockdown and cell-based assays.
Main Results:
- Identified 83 hub genes and 12 prognostic genes, with CDKN3 showing the highest adverse impact on overall survival (OS).
- CDKN3 overexpression confirmed in BC; its knockdown inhibited BC cell migration and proliferation.
- CDKN3 upregulation is associated with enhanced G2M cell cycle activity in basal BC subtypes, driving cancer progression.
Conclusions:
- CDKN3 acts as an independent prognostic factor for OS in BC patients.
- CDKN3 knockdown induces G2M cell cycle arrest in TNBC by downregulating CCNB2.
- CDKN3 is a promising therapeutic target for TNBC treatment, with its inhibition effectively halting cancer progression.
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