Hu Tao, Zhang Chunhua, Tang Qiongling, Su Yanan, Li Bo, Chen Long, Zhang Zheng, Cai Tianchi, Zhu Yuechun
Department of Biochemistry and Molecular Biology, Kunming Medical University, Kunming 650031, China.
BMC Cancer. 2013 May 22;13:251. doi: 10.1186/1471-2407-13-251.
Glucose-6-phosphate dehydrogenase (G6PD), elevated in tumor cells, catalyzes the first reaction in the pentose-phosphate pathway. The regulation mechanism of G6PD and pathological change in human melanoma growth remains unknown.
HEM (human epidermal melanocyte) cells and human melanoma cells with the wild-type G6PD gene (A375-WT), G6PD deficiency (A375-G6PD∆), G6PD cDNA overexpression (A375-G6PD∆-G6PD-WT), and mutant G6PD cDNA (A375-G6PD∆-G6PD-G487A) were subcutaneously injected into 5 groups of nude mice. Expressions of G6PD, STAT3, STAT5, cell cycle-related proteins, and apoptotic proteins as well as mechanistic exploration of STAT3/STAT5 were determined by quantitative real-time PCR (qRT-PCR), immunohistochemistry and western blot.
Delayed formation and slowed growth were apparent in A375-G6PD∆ cells, compared to A375-WT cells. Significantly decreased G6PD expression and activity were observed in tumor tissues induced by A375-G6PD∆, along with down-regulated cell cycle proteins cyclin D1, cyclin E, p53, and S100A4. Apoptosis-inhibited factors Bcl-2 and Bcl-xl were up-regulated; however, apoptosis factor Fas was down-regulated, compared to A375-WT cells. Moderate protein expressions were observed in A375-G6PD∆-G6PD-WT and A375-G6PD∆-G6PD-G487A cells.
G6PD may regulate apoptosis and expression of cell cycle-related proteins through phosphorylation of transcription factors STAT3 and STAT5, thus mediating formation and growth of human melanoma cells. Further study will, however, be required to determine potential clinical applications.
葡萄糖-6-磷酸脱氢酶(G6PD)在肿瘤细胞中升高,催化磷酸戊糖途径中的第一步反应。G6PD的调节机制以及人类黑色素瘤生长中的病理变化仍不清楚。
将具有野生型G6PD基因(A375-WT)、G6PD缺陷(A375-G6PD∆)、G6PD cDNA过表达(A375-G6PD∆-G6PD-WT)和突变型G6PD cDNA(A375-G6PD∆-G6PD-G487A)的人表皮黑素细胞(HEM)和人黑色素瘤细胞皮下注射到5组裸鼠中。通过定量实时PCR(qRT-PCR)、免疫组织化学和蛋白质印迹法测定G6PD、STAT3、STAT5、细胞周期相关蛋白和凋亡蛋白的表达以及对STAT3/STAT5的机制探索。
与A375-WT细胞相比,A375-G6PD∆细胞的形成延迟且生长缓慢。在A375-G6PD∆诱导的肿瘤组织中观察到G6PD表达和活性显著降低,同时细胞周期蛋白D1、细胞周期蛋白E、p53和S100A4下调。与A375-WT细胞相比,凋亡抑制因子Bcl-2和Bcl-xl上调;然而,凋亡因子Fas下调。在A375-G6PD∆-G6PD-WT和A375-G6PD∆-G6PD-G487A细胞中观察到中等水平的蛋白质表达。
G6PD可能通过转录因子STAT3和STAT5的磷酸化调节细胞凋亡和细胞周期相关蛋白的表达,从而介导人类黑色素瘤细胞的形成和生长。然而,需要进一步研究以确定潜在的临床应用。