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Berbamine Suppresses the Progression of Bladder Cancer by Modulating the ROS/NF-κB Axis
Chenglin Han1, Zilong Wang1, Shuxiao Chen2
1Department of Urology, Shandong Provincial Hospital, Cheeloo College of Medicine, Shandong University, Jinan, Shandong 250021, China.
Abstract:
Berbamine (BBM), one of the bioactive ingredients extracted from Berberis plants, has attracted intensive attention because of its significant antitumor activity against various malignancies. However, the exact role and potential molecular mechanism of berbamine in bladder cancer (BCa) remain unclear. In the present study, our results showed that berbamine inhibited cell viability, colony formation, and proliferation. Additionally, berbamine induced cell cycle arrest at S phase by a synergistic mechanism involving stimulation of P21 and P27 protein expression as well as downregulation of CyclinD, CyclinA2, and CDK2 protein expression. In addition to suppressing epithelial-mesenchymal transition (EMT), berbamine rearranged the cytoskeleton to inhibit cell metastasis. Mechanistically, the expression of P65, P-P65, and P-IκBα was decreased upon berbamine treatment, yet P65 overexpression abrogated the effects of berbamine on the proliferative and metastatic potential of BCa cells, which indicated that berbamine attenuated the malignant biological activities of BCa cells by inhibiting the NF-κB pathway. More importantly, berbamine increased the intracellular reactive oxygen species (ROS) level through the downregulation of antioxidative genes such as Nrf2, HO-1, SOD2, and GPX-1. Following ROS accumulation, the intrinsic apoptotic pathway was triggered by an increase in the ratio of Bax/Bcl-2. Furthermore, berbamine-mediated ROS accumulation negatively regulated the NF-κB pathway to a certain degree. Consistent with our in vitro results, berbamine successfully inhibited tumor growth and blocked the NF-κB pathway in our xenograft model. To summarize, our data demonstrated that berbamine exerts antitumor effects via the ROS/NF-κB signaling axis in bladder cancer, which provides a basis for further comprehensive study and presents a potential candidate for clinical treatment strategies against bladder cancer.
Insights
Berbamine (BBM) shows significant antitumor effects in bladder cancer by inhibiting cell proliferation and metastasis. It works by increasing reactive oxygen species (ROS) and suppressing the NF-κB pathway, offering a potential new treatment strategy.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Berbamine (BBM), derived from *Berberis* plants, exhibits known antitumor properties.
- The specific mechanisms of BBM in bladder cancer (BCa) are not fully understood.
- Investigating BBM's role is crucial for developing novel BCa therapies.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying berbamine's antitumor activity in bladder cancer.
- To evaluate the efficacy of berbamine in preclinical bladder cancer models.
- To explore the potential of berbamine as a clinical treatment for bladder cancer.
Main Methods:
- Cell viability, colony formation, and proliferation assays were performed.
- Cell cycle analysis and protein expression (P21, P27, CyclinD, CyclinA2, CDK2) were assessed.
- Epithelial-mesenchymal transition (EMT), NF-κB pathway, reactive oxygen species (ROS) levels, and apoptosis were investigated. Xenograft models were used to validate in vitro findings.
Main Results:
- Berbamine inhibited BCa cell viability, proliferation, and colony formation.
- BBM induced S phase cell cycle arrest and suppressed EMT and metastasis.
- The compound reduced NF-κB pathway activation (P65, P-P65, P-IκBα) and increased ROS levels by downregulating antioxidative genes (Nrf2, HO-1, SOD2, GPX-1).
- BBM triggered apoptosis via the intrinsic pathway (Bax/Bcl-2 ratio) and inhibited tumor growth in vivo.
Conclusions:
- Berbamine demonstrates significant antitumor effects in bladder cancer through the ROS/NF-κB signaling axis.
- BBM inhibits cell proliferation, metastasis, and induces apoptosis in BCa cells.
- Berbamine represents a promising candidate for future clinical bladder cancer treatment strategies.
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