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姜黄素通过调控LKB1-AMPK-LC3信号通路对膀胱癌细胞增殖、迁移及顺铂耐药性的影响

[Impacts of curcumin on proliferation, migration and cisplatin resistance of bladder cancer cells by regulating LKB1-AMPK-LC3 signaling pathway].

作者信息

Wang Qian, Zhao Liming

机构信息

Chongming Hospital Affiliated to Shanghai University of Medicine and Health Sciences, Shanghai 202150, China.

National Key Laboratory of Bioreactors, School of Biological Engineering, East China University of Science and Technology, Shanghai 200237, China. *Corresponding author, E-mail:

出版信息

Xi Bao Yu Fen Zi Mian Yi Xue Za Zhi. 2025 Jan;41(1):9-16.

PMID:39799420
Abstract

Objective To study the impacts of curcumin on the proliferation, migration and cisplatin (DDP) resistance of bladder cancer cells by regulating the liver kinase B1-AMP activated protein kinase-microtubule-associated protein 1 light chain 3 (LKB1-AMPK-LC3) signaling pathway. Methods Human bladder cancer cell line T24 was cultured in vitro, and its DDP resistant T24/DDP cells were induced by cisplatin (DDP). After treating T24 and T24/DDP cells with different concentrations of curcumin, the optimal concentration of curcumin was screened by MTT assay. T24 cells were randomly grouped into control group, curcumin group, metformin group, and combination group of curcumin and metformin. After treatment with curcumin and LKB1-AMPK activator metformin, the proliferation, autophagy, migration, and apoptosis of T24 cells in each group were detected by MTT assay, monodansylcadavrine (MDC) fluorescence staining, cell scratch assay, and flow cytometry, respectively. Western blot was used to detect the expression of proteins related to LKB1-AMPK-LC3 signaling pathway in T24 cells of each group. T24/DDP cells were randomly assigned into control group, curcumin group, metformin group, and combination group of curcumin and metformin. Cells were treated with curcumin and metformin according to grouping and treated with different concentrations of DDP simultaneously. Then, the effect of curcumin on the DDP resistance coefficient of T24/DDP cells was detected by MTT assay. T24/DDP cells were randomly grouped into control group, DDP group, combination groups of DDP and curcumin, DDP and metformin, DDP, curcumin and metformi. After treatment with DDP, curcumin, and metformin, the proliferation, autophagy, migration, apoptosis, drug resistance, and the expression of proteins related to LKB1-AMPK-LC3 signaling pathway in T24/DDP cells of each group were detected with the same methods. Results Compared with the control group, the activity of T24 cells, relative number of autophagosomes, migration rate, Phosphorylated-LKB1 (p-LKB1)/LKB1, Phosphorylated-AMPK (p-AMPK)/AMPK, LC3II/LC3I, and the DDP resistance coefficient of T24/DDP cells in the curcumin group were lower, and the apoptosis rate of T24 cells was higher; the changes in various indicators in the metformin group were opposite to those in the curcumin group. Compared with the curcumin group, the activity of T24 cells, relative number of autophagosomes, migration rate, p-LKB1/LKB1, p-AMPK/AMPK, LC3II/LC3I, and the DDP resistance coefficient of T24/DDP cells in the combination group of curcumin and metformin were higher, and the apoptosis rate of T24 cells was lower. Compared with the control group, there were no obvious changes in various indicators of T24/DDP cells in the DDP group. Compared with the control group and DDP group, the viability of T24/DDP cells, relative number of autophagosomes, migration rate, P-glycoprotein (P-gp) protein expression, p-LKB1/LKB1, p-AMPK/AMPK, and LC3II/LC3I in the combination group of DDP and curcumin were lower, and the apoptosis rate of T24/DDP cells was higher; the changes in the above indicators in the combination group of DDP and metformin were opposite to those in the combination group of DDP and curcumin. Compared with the combination group of DDP and curcumin, the viability of T24/DDP cells, relative number of autophagosomes, migration rate, P-gp protein expression, p-LKB1/LKB1, p-AMPK/AMPK, and LC3II/LC3I in the combination group of DDP, curcumin and metformin were higher, and the apoptosis rate of T24/DDP cells was lower. Conclusion Curcumin can reduce the activity of LKB1-AMPK-LC3 signaling pathway, thereby inhibiting autophagy, proliferation and migration of bladder cancer cells, promoting their apoptosis, and weakening their resistance to DDP.

摘要

目的 通过调节肝脏激酶B1-AMP激活蛋白激酶-微管相关蛋白1轻链3(LKB1-AMPK-LC3)信号通路,研究姜黄素对膀胱癌细胞增殖、迁移及顺铂(DDP)耐药的影响。方法 体外培养人膀胱癌细胞系T24,并用顺铂(DDP)诱导其DDP耐药T24/DDP细胞。用不同浓度姜黄素处理T24和T24/DDP细胞后,通过MTT法筛选姜黄素的最佳浓度。将T24细胞随机分为对照组、姜黄素组、二甲双胍组以及姜黄素与二甲双胍联合组。用姜黄素和LKB1-AMPK激活剂二甲双胍处理后,分别通过MTT法、单丹磺酰尸胺(MDC)荧光染色、细胞划痕试验及流式细胞术检测各组T24细胞的增殖、自噬、迁移及凋亡情况。采用蛋白质免疫印迹法检测各组T24细胞中与LKB1-AMPK-LC3信号通路相关蛋白的表达。将T24/DDP细胞随机分为对照组、姜黄素组、二甲双胍组以及姜黄素与二甲双胍联合组。按分组用姜黄素和二甲双胍处理细胞,并同时用不同浓度的DDP处理。然后,通过MTT法检测姜黄素对T24/DDP细胞DDP耐药系数的影响。将T24/DDP细胞随机分为对照组、DDP组、DDP与姜黄素联合组、DDP与二甲双胍联合组、DDP、姜黄素与二甲双胍联合组。用DDP、姜黄素和二甲双胍处理后,用相同方法检测各组T24/DDP细胞的增殖、自噬、迁移、凋亡、耐药情况及与LKB1-AMPK-LC3信号通路相关蛋白的表达。结果 与对照组相比,姜黄素组T24细胞活性、自噬体相对数量、迁移率、磷酸化-LKB1(p-LKB1)/LKB1、磷酸化-AMPK(p-AMPK)/AMPK、LC3II/LC3I以及T24/DDP细胞的DDP耐药系数降低,T24细胞凋亡率升高;二甲双胍组各项指标变化与姜黄素组相反。与姜黄素组相比,姜黄素与二甲双胍联合组T24细胞活性、自噬体相对数量、迁移率、p-LKB1/LKB1、p-AMPK/AMPK、LC3II/LC3I以及T24/DDP细胞的DDP耐药系数升高,T24细胞凋亡率降低。与对照组相比,DDP组T24/DDP细胞各项指标无明显变化。与对照组和DDP组相比,DDP与姜黄素联合组T24/DDP细胞活力、自噬体相对数量、迁移率、P-糖蛋白(P-gp)蛋白表达、p-LKB1/LKB1、p-AMPK/AMPK以及LC3II/LC3I降低,T24/DDP细胞凋亡率升高;DDP与二甲双胍联合组上述指标变化与DDP与姜黄素联合组相反。与DDP与姜黄素联合组相比,DDP、姜黄素与二甲双胍联合组T24/DDP细胞活力、自噬体相对数量、迁移率、P-gp蛋白表达、p-LKB1/LKB1、p-AMPK/AMPK以及LC3II/LC3I升高,T24/DDP细胞凋亡率降低。结论 姜黄素可降低LKB1-AMPK-LC3信号通路活性,从而抑制膀胱癌细胞的自噬、增殖和迁移,促进其凋亡,并减弱其对DDP的耐药性。

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