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糖酵解对于瞬时受体电位通道 C5 在结直肠癌中诱导的化疗耐药性是必不可少的。

Glycolysis is essential for chemoresistance induced by transient receptor potential channel C5 in colorectal cancer.

机构信息

Department of Oncology, Affiliated Hospital of Jiangnan University, Wuxi, Jiangsu, 214062, China.

Wuxi Medical College, Jiangnan University, Wuxi, Jiangsu, 214122, China.

出版信息

BMC Cancer. 2018 Feb 20;18(1):207. doi: 10.1186/s12885-018-4123-1.

Abstract

BACKGROUND

Elevated intracellular Ca ([Ca] ) level could lead to [Ca] overload and promote apoptosis via different pathways. In our previously study, up-regulated expression of transient receptor potential canonical channel (TRPC5) was proven to increase [Ca] level, and resulted in chemoresistance whereas not apoptosis in human colorectal cancer (CRC) cells. The ATP-dependent homeostatic maintenance of resting [Ca] should be important in this process. Increased glycolysis was found to be an important adenosine triphosphate (ATP) source in cancer. This study aimed to explore the potential mechanism of aerobic glycolysis in transient receptor potential channel TRPC5 induced chemoresistance.

METHODS

In this study, we examined glucose transporter 1 (GLUT1) expression, glucose consumption and celluar ATP production to determine glycolytic activity. Real-time PCR and western blot were analyzed to determine TRPC5 expression at the mRNA and protein levels in human CRC cells (HCT-8, LoVo), and fluorouracil (5-Fu) resistant CRC cells (HCT-8/5-Fu, LoVo/5-Fu). 3-bromopyruvate (3-BP) and 2-Deoxy-D-glucose (2DG) were used to inhibit glycolysis. Glycolytic activity, intracellular Ca ([Ca] ) and the half maximal inhibitory concentration of 5-Fu (5-Fu IC50) were measured. Western blot was analyzed to determine cleaved Caspase-3 protein level. Flow cytometry was performed to detect the apoptosis rates. Immunohistochemistry staining was performed to determine TRPC5 and GLUT1 expression level in human CRC tissues.

RESULTS

Overproduced of TRPC5 and increased glycolysis were found in HCT-8/5-Fu and LoVo/5-Fu than in HCT-8 and LoVo cells. Compared to HCT-8 cells, the HCT-8/5-Fu cells showed higher [Ca] levels which decreased after treated with TRPC5-specific shRNA. Furthemore, inhibition of glycolysis resulted in decreased ATP production, elevation of [Ca] level and cleaved caspase-3, increased apoptotic cells rate, and a remarkable reversal of 5-Fu resistance in HCT-8/5-Fu cells, while showed no effect in HCT-8 cells. BAPTA-AM, a [Ca] chelator, could reduce the elevation of cleaved caspase-3 and increased apoptotic cells rate due to glycolysis inhibition. Advanced CRC patients with high expression of TRPC5/GLUT1 displayed poorer chemotherapy outcome, and notably, the significant association between high TRPC5 expression and chemoresistance is GLUT1 expression level dependent.

CONCLUSIONS

We demonstrated the essential role of glycolysis in TRPC5 induced chemoresistance in human CRC cells via maintaining [Ca] homeostasis.

摘要

背景

细胞内钙浓度升高([Ca]i)可能通过不同途径导致钙超载和促进细胞凋亡。在我们之前的研究中,已经证明瞬时受体电位经典通道(TRPC5)的上调表达会增加[Ca]i 水平,导致人结直肠癌细胞(CRC)的耐药性而不是细胞凋亡。细胞内钙的 ATP 依赖性稳态维持在这个过程中应该是很重要的。已经发现增加的糖酵解是癌细胞中三磷酸腺苷(ATP)的重要来源。本研究旨在探讨 TRPC5 诱导的有氧糖酵解在结直肠癌细胞化疗耐药中的潜在机制。

方法

在这项研究中,我们通过实时 PCR 和 Western blot 分析来检测葡萄糖转运蛋白 1(GLUT1)的表达、葡萄糖消耗和细胞内 ATP 产生,以确定糖酵解活性。在人 CRC 细胞(HCT-8、LoVo)和氟尿嘧啶(5-Fu)耐药 CRC 细胞(HCT-8/5-Fu、LoVo/5-Fu)中,分析瞬时受体电位通道 TRPC5 的表达水平。3-溴丙酮酸(3-BP)和 2-脱氧-D-葡萄糖(2DG)用于抑制糖酵解。测量糖酵解活性、细胞内钙([Ca]i)和氟尿嘧啶(5-Fu)的半数最大抑制浓度(5-Fu IC50)。Western blot 分析用于检测 cleaved Caspase-3 蛋白水平。流式细胞术检测细胞凋亡率。免疫组织化学染色法检测人 CRC 组织中 TRPC5 和 GLUT1 的表达水平。

结果

与 HCT-8 细胞相比,HCT-8/5-Fu 和 LoVo/5-Fu 细胞中发现 TRPC5 过度表达和糖酵解增加。与 HCT-8 细胞相比,HCT-8/5-Fu 细胞的[Ca]i 水平较高,用 TRPC5 特异性 shRNA 处理后降低。此外,抑制糖酵解导致 ATP 产生减少、[Ca]i 水平升高和 cleaved caspase-3 增加、细胞凋亡率增加,并显著逆转 HCT-8/5-Fu 细胞的 5-Fu 耐药性,而对 HCT-8 细胞无影响。钙螯合剂 BAPTA-AM 可降低由于糖酵解抑制导致的 cleaved caspase-3 升高和细胞凋亡率增加。高表达 TRPC5/GLUT1 的晚期 CRC 患者化疗效果较差,值得注意的是,TRPC5 表达与化疗耐药性之间的显著相关性依赖于 GLUT1 表达水平。

结论

我们证明了糖酵解在 TRPC5 诱导的人 CRC 细胞化疗耐药中的重要作用,通过维持细胞内钙稳态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b2b7/5819689/65384a5f12d1/12885_2018_4123_Fig1_HTML.jpg

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