beta-Arrestins Regulate Stem Cell-Like Phenotype and Response to Chemotherapy in Bladder Cancer
MOLECULAR CANCER THERAPEUTICS
Authors: Kallifatidis, Georgios; Smith, Diandra K.; Morera, Daley S.; Gao, Jie; Hennig, Martin J.; Hoy, James J.; Pearce, Richard F.; Dabkel, Isha R.; Li, Jiemin; Merseburger, Axel S.; Kuczyk, Markus A.; Lokeshwar, Vinata B.; Lokeshwar, Bal L.
Abstract
beta-Arrestins are classic attenuators of G-protein-coupled receptor signaling. However, they have multiple roles in cellular physiology, including carcinogenesis. This work shows for the first time that beta-arrestins have prognostic significance for predicting metastasis and response to chemotherapy in bladder cancer. beta-Arrestin-1 (ARRB1) and beta-arrestin-2 (ARRB2) m RNA levels were measured by quantitative RT-PCR in two clinical specimen cohorts (n = 63 and 43). The role of ARRBs in regulating a stem cell-like phenotype and response to chemotherapy treatments was investigated. The consequence of forced expression of ARRBs on tumor growth and response to Gemcitabine in vivo were investigated using bladder tumor xenografts in nude mice. ARRB1 levels were significantly elevated and ARRB2 levels downregulated in cancer tissues compared with normal tissues. In multivariate analysis only ARRB2 was an independent predictor of metastasis, disease- specific-mortality, and failure to Gemcitabine + Cisplatin (G+C) chemotherapy; similar to 80% sensitivity and specificity to predict clinical outcome. ARRBs were found to regulate stein cell characteristics in bladder cancer cells. Depletion of ARRB2 resulted in increased cancer stem cell markers but ARRB2 overexpression reduced expression of stem cell markers (CD44, ALDH2, and BMI-1), and increased sensitivity toward Gemcitabine. Overexpression of ARRB2 resulted in reduced tumor growth and increased response to Gemcitabine in tumor xenografts. CRISPR-Cas9-mediated gene-knockout of ARRB 1 resulted in the reversal of this aggressive phenotype. ARRBs regulate cancer stein cell-like properties in bladder cancer and are potential prognostic indicators for tumor progression and chemotherapy response.
Effects of Epigallocatechin Gallate (EGCG) on Urinary Bladder Urothelial Carcinoma?Next-Generation Sequencing and Bioinformatics Approaches
MEDICINA-LITHUANIA
Authors: Lee, Hsiang-Ying; Chen, Yi-Jen; Chang, Wei-An; Li, Wei-Ming; Ke, Hung-Lung; Wu, Wen-Jeng; Kuo, Po-Lin
Abstract
Background and objectives: Bladder urothelial carcinoma is the most common type of genitourinary cancer. Patients with bladder cancer may have limited treatment efficacy related to drug toxicity, resistance or adverse effects, and novel therapeutic strategies to enhance treatment efficacy or increase sensitivity to drugs are of high clinical importance. Epigallocatechin gallate (EGCG) is a polyphenolic compound found in green tea leaves, and a potential anti-cancer agent in various cancer types through modulating and regulating multiple signaling pathways. The current study aimed to explore the role and novel therapeutic targets of EGCG on bladder urothelial carcinoma. Materials and Methods: The BFTC-905 cells, human urinary bladder transitional cell carcinoma (TCC) cell line, were treated with EGCG or water for 24 hours, and the expression profiles of mRNAs and microRNAs were analyzed using next generation sequencing (NGS). The enriched biological functions were determined using different bioinformatics databases. Results: A total of 108 differentially expressed genes in EGCG-treated bladder TCC cells were identified, which were mainly involved in nicotinamide adenine dinucleotide (NAD) biogenesis, inflammatory response and oxidation-reduction metabolism. Moreover, several microRNA-mRNA interactions that potentially participated in the response of bladder TCC to EGCG treatment, including miR-185-3p- ARRB1 (arrestin beta 1), miR-3116- MGAT5B (alpha-1,6-mannosylglycoprotein 6-beta-N-acetylglucosaminyltransferase B), miR-31-5p-TNS1 (tensin 1), miR-642a-5p-TNS1, miR-1226-3p- DLG2 (discs large homolog 2), miR-484-DLG2, and miR-22-3p- PPM1K (protein phosphatase 1K). Conclusions: The current findings provide insights into novel therapeutic targets and underlying mechanisms of action of EGCG treatment in bladder cancer.