PAO在CDK抑制剂(罗斯科维汀和普缬烷醇)引发PUMA缺失HCT116结肠癌细胞凋亡中的关键作用

Ajda Coker-Gurkan, Burcu Ayhan-Sahin
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Protein was isolated from treated and untreated cells and key \nmolecules of cell cycle control and polyamine pathways were investigated at translational level. Polyamine \ncontent was determined by HPLC for all conditions. MDL-72527 was used as a PAO inhibitor and apoptotic \ncell death was analysed. \nResults: Roscovitine and purvalanol induced apoptosis and increased the cytotoxic responses in HCT116 \nwt and HCT116 Puma-/-\ncolon carcinoma cell lines by modulating CDK1, 4, cyclin-B1, D3. Both, CDKi \naltered intrinsic apoptotic pathways in HCT116 wt. Whereas, drug-induced apoptosis occurred caspase-independent in Puma-/-\ncolon cancer cells. Roscovitine and purvalanol up-regulated polyamine catabolic \nenzymes, whereas CDK inhibitors decreased the polyamine levels in HCT116 wt and HCT116 Puma-/-\ncolon \ncancer cells. In addition, PAO inhibitor MDL72527 prevented drug-induced apoptosis. \nConclusion: PAO expression profile might be a critical target in CDK inhibitors-triggered apoptosis in \nHCT116 colorectal cancer cells. 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引用次数: 0

摘要

背景:周期素依赖性激酶抑制剂;rosscovitine和purvalanol是很有前景的抗癌药物,因为它们通过激活PA分解代谢而具有很强的抗增殖作用。多胺氧化酶(PAO)除了将乙酰化的精胺和亚精胺分别转化为亚精胺和腐胺外,还产生高浓度过氧化氢作为副产物。PAO被认为是药物诱导癌细胞凋亡的关键分子。我们的目的是揭示PAO在cdki引发的Puma敲除HCT116结肠癌细胞凋亡中的作用。方法:将HCT116 wt和HCT116 Puma-/-细胞分别用罗斯科维汀和普缬烷醇处理,观察细胞活力和凋亡情况。从处理和未处理的细胞中分离蛋白质,并在翻译水平上研究细胞周期控制和多胺途径的关键分子。采用高效液相色谱法测定各条件下多胺含量。以MDL-72527作为PAO抑制剂,观察凋亡细胞的死亡情况。结果:罗scovitine和purvalanol通过调节CDK1, 4, cyclin-B1, D3,诱导HCT116 wt和HCT116 Puma-/-结肠癌细胞株凋亡,增加细胞毒反应。CDKi改变了HCT116 wt中固有的凋亡途径。然而,在Puma-/-结肠癌细胞中,药物诱导的凋亡不依赖于caspase。Roscovitine和purvalanol上调多胺分解代谢酶,而CDK抑制剂降低HCT116 wt和HCT116 Puma-/-结肠癌细胞中的多胺水平。此外,PAO抑制剂MDL72527可阻止药物诱导的细胞凋亡。结论:PAO表达谱可能是CDK抑制剂引发HCT116结直肠癌细胞凋亡的关键靶点。因此,MAPK信号通路与细胞周期和多胺分解代谢通路的关系研究正在进行中。
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The Pivotal Role of PAO in CDK Inhibitors (Roscovitine and Purvalanol)- Triggered Apoptosis in PUMA Null HCT116 Colon Cancer Cells
Background: Cycline-dependent kinase inhibitors (CDKi); roscovitine and purvalanol, are promising anti-cancer drugs due to their strong anti-proliferative effectiveness due to activation of PA catabolism. Besides transforming acetylated spermine and spermidine into spermidine and putrescine, respectively, polyamine oxidase (PAO) also generates hydrogen peroxide in high concentrations as a by-product. PAO was assumed as a pivotal key molecule during drug-induced apoptosis in cancer cells. Our aim is to reveal the role of PAO action in CDKi-triggered apoptosis in Puma knock-out HCT116 colon cancer cells. Methods: HCT116 wt and HCT116 Puma-/- cells were treated with Roscovitine and Purvalanol and cell viability and apoptosis were determined. Protein was isolated from treated and untreated cells and key molecules of cell cycle control and polyamine pathways were investigated at translational level. Polyamine content was determined by HPLC for all conditions. MDL-72527 was used as a PAO inhibitor and apoptotic cell death was analysed. Results: Roscovitine and purvalanol induced apoptosis and increased the cytotoxic responses in HCT116 wt and HCT116 Puma-/- colon carcinoma cell lines by modulating CDK1, 4, cyclin-B1, D3. Both, CDKi altered intrinsic apoptotic pathways in HCT116 wt. Whereas, drug-induced apoptosis occurred caspase-independent in Puma-/- colon cancer cells. Roscovitine and purvalanol up-regulated polyamine catabolic enzymes, whereas CDK inhibitors decreased the polyamine levels in HCT116 wt and HCT116 Puma-/- colon cancer cells. In addition, PAO inhibitor MDL72527 prevented drug-induced apoptosis. Conclusion: PAO expression profile might be a critical target in CDK inhibitors-triggered apoptosis in HCT116 colorectal cancer cells. Thus, MAPK signaling pathway relations with cell cycle and polyamine catabolic pathway investigations are in progress.
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