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Published on: October 4, 2022
FOXM1-Driven CKS1B Upregulation Promotes Pancreatic Cancer Progression and Therapeutic Resistance
Liuxi Zhang1,2, Fang Wei1,2, Qihui Sun2
1Guangzhou First People's Hospital and The Second Affiliated Hospital, South China University of Technology School of Medicine, #1 Panfu Road, Guangzhou, Guangdong 510180, P.R. China.
Background:
Pancreatic ductal adenocarcinoma (PDAC) remains a highly lethal malignancy with limited treatment options. Investigating novel therapeutic targets and understanding mechanisms of chemoresistance are crucial for improving patient outcomes. This study investigated the role of CKS1B in PDAC carcinogenesis, stemness and chemoresistance, and explores the underlying mechanisms driving its upregulation. The findings may provide novel therapeutic insights and potential strategies for the treatment of PDAC. Methods: CKS1B expression was analyzed in PDAC tissues and cell lines, its impact on cell proliferation, migration, apoptosis, stemness and chemosensitivity were evaluated by using in vitro and in vivo models, and its underlying mechanistic connection to transcription factor FOXM1 was explored by using molecular biology methods. Results: CKS1B was significantly upregulated in PDAC tissues and correlated with poor patient survival. CKS1B promoted PDAC cell proliferation, migration, and inhibited apoptosis. Expression of CKS1B enhanced the stemness properties of pancreatic cancer. CKS1B knockdown sensitized PDAC cells to the treatment of gemcitabine and oxaliplatin. Mechanistically, CKS1B is transcriptionally regulated by FOXM1, establishing a novel FOXM1-CKS1B signaling axis that regulates carcinogenesis, proliferation, migration, stemness, apoptosis, and drug resistance in PDAC. Conclusions: Our findings strongly suggest that CKS1B plays a critical role in PDAC progression, stemness and chemoresistance. Targeting the FOXM1-CKS1B axis represents a promising therapeutic strategy for PDAC patients.
Insights
CKS1B promotes pancreatic cancer growth and resistance to chemotherapy. Targeting the FOXM1-CKS1B pathway offers a new therapeutic strategy for pancreatic ductal adenocarcinoma (PDAC) patients.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Pancreatic ductal adenocarcinoma (PDAC) is a lethal cancer with poor treatment outcomes.
- Understanding chemoresistance mechanisms and identifying new therapeutic targets are critical for PDAC.
- CKS1B's role in PDAC progression, stemness, and chemoresistance requires investigation.
Purpose of the Study:
- To investigate the role of CKS1B in pancreatic ductal adenocarcinoma (PDAC).
- To explore the mechanisms underlying CKS1B upregulation in PDAC.
- To evaluate the therapeutic potential of targeting the FOXM1-CKS1B axis in PDAC.
Main Methods:
- Analysis of CKS1B expression in PDAC tissues and cell lines.
- In vitro and in vivo studies to assess CKS1B's impact on PDAC cell behavior and chemosensitivity.
- Molecular biology techniques to explore the FOXM1-CKS1B regulatory axis.
Main Results:
- CKS1B is upregulated in PDAC and linked to poor survival.
- CKS1B enhances PDAC cell proliferation, migration, stemness, and chemoresistance.
- CKS1B is transcriptionally regulated by FOXM1, forming a FOXM1-CKS1B signaling axis.
Conclusions:
- CKS1B is a key driver of PDAC progression, stemness, and chemoresistance.
- The FOXM1-CKS1B axis is a novel signaling pathway implicated in PDAC.
- Targeting the FOXM1-CKS1B axis presents a promising therapeutic strategy for PDAC.
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