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Published on: May 14, 2016
Dysfunction of core clock genes regulates malignant phenotype and gemcitabine sensitivity of cholangiocarcinoma cells
Yin Li1, Aimin Zheng1, Yangang Cui1
1Department of Oncology.
Abstract:
The circadian clock governs daily rhythms in numerous physiological processes through precise regulation of gene expression and biochemical functions. Dysregulation of the circadian rhythm has been implicated in carcinogenesis and cancer progression. However, the mechanisms by which the circadian clock influences cancer phenotype and chemotherapy resistance, particularly in cholangiocarcinoma (CCA), remain poorly understood. Using cell lines established from primary CCA and metastatic ascites of two male patients, we manipulated core clock genes ( BMAL1 , PER2 , and NR1D1 ) to evaluate their effects on circadian rhythms. We analyzed alterations in circadian phenotypes at dynamic and single time points and assessed their impact on cancer-related phenotypic changes, including proliferation, apoptosis, cell cycle regulation, migration, invasion, and the expression of epithelial-to-mesenchymal transition (EMT) and cancer stem cell markers. Additionally, we examined the impact of circadian disruption on gemcitabine sensitivity. Genetic deletion of BMAL1 , PER2 , and NR1D1 disrupted circadian rhythm and significantly altered cancer phenotypes. Notably, BMAL1 and NR1D1 impairment exacerbated cell migration, invasion, and EMT activation in CCA cells. BMAL1 loss also induced gemcitabine resistance. In contrast, PER2 repression enhanced chemosensitivity and inhibited metastasis. The modulation of the circadian gene triggered phenotypic changes in CCA cells, indicating a crucial involvement of core-clock components in the pathological mechanisms hastening bile duct cancer malignancy. Our findings advance the understanding of regulating CCA malignancy and may offer a novel target for its treatment.
Insights
Circadian clock genes influence cholangiocarcinoma (CCA) malignancy. BMAL1 and NR1D1 loss promote invasion and gemcitabine resistance, while PER2 repression enhances chemosensitivity and reduces metastasis in CCA.
Area of Science:
- Oncology
- Chronobiology
- Molecular Biology
Background:
- Circadian rhythm disruption is linked to cancer development and progression.
- Mechanisms linking the circadian clock to cholangiocarcinoma (CCA) phenotype and chemotherapy resistance are poorly understood.
Purpose of the Study:
- To investigate the role of core circadian clock genes (BMAL1, PER2, NR1D1) in regulating CCA cell phenotypes and gemcitabine sensitivity.
- To elucidate how manipulating these clock genes affects cancer progression markers like proliferation, apoptosis, migration, invasion, and epithelial-to-mesenchymal transition (EMT).
Main Methods:
- Utilized CCA cell lines derived from patient tumors and ascites.
- Genetically manipulated core clock genes (BMAL1, PER2, NR1D1) to assess effects on circadian rhythms and cancer phenotypes.
- Analyzed impacts on proliferation, apoptosis, cell cycle, migration, invasion, EMT markers, and cancer stem cell markers.
- Assessed changes in gemcitabine sensitivity following circadian gene modulation.
Main Results:
- Genetic deletion of BMAL1, PER2, and NR1D1 disrupted circadian rhythms and altered CCA cell phenotypes.
- BMAL1 and NR1D1 impairment increased migration, invasion, and EMT activation.
- BMAL1 loss led to gemcitabine resistance.
- PER2 repression enhanced chemosensitivity and reduced metastasis.
Conclusions:
- Core circadian clock components play a critical role in CCA malignancy.
- Modulating circadian genes significantly impacts CCA cell behavior and drug response.
- Targeting circadian clock genes presents a potential novel therapeutic strategy for cholangiocarcinoma.
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