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Tubulin structure-based drug design for the development of novel 4β-sulfur-substituted podophyllum tubulin inhibitors with anti-tumor activity

机译:基于微管蛋白结构的药物设计用于开发具有抗肿瘤活性的新型4β-硫取代的鬼臼微管蛋白抑制剂

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摘要

The well-characterized anti-tubulin agent, podophyllotoxin (PTOX), with the 4′-position methoxyl group, targets the colchicines domain located between α- and β-tubulin. Two guanosine triphosphate (GTP) analogs of the tubulin-binding region were synthesized from PTOX, where a hydroxyl group was substituted with a carbon-sulfur bond. These compounds, 4-MP-PTOX and 4-TG-PTOX, reduce the dosage and greatly improve the therapeutic effect for microtubule damage in cancer cells. Here we characterize the anti-tubulin properties of these compounds. We found the stronger inhibition of tubulin polymerization (the concentration of 50% growth inhibition, GI50 < 2 μM) for compounds 4-TG-PTOX and 4-MP-PTOX, which were better than that of PTOX or colchicine. The cytotoxicity of two designed compounds on tumor cells was also significantly enhanced by comparing to those of PTOX and colchicines. The ΔH value of 4-MP-PTOX and 4-TG-PTOX binding to tubulin by isothermal titration calorimetry (ITC) was found to be −7.4 and −5.3 kcal·mol−1, respectively. The wide range of enthalpy values across the series may reflect entropy/enthalpy compensation effects. Fragments 6-mercaptopurine (MP) and 6-thioguanine (TG) likely enhance the affinity of 4-MP-PTOX and 4-TG-PTOX binding to tubulin by increasing the number of binding sites. The correctness of rational drug design was strictly demonstrated by a bioactivity test.
机译:具有4'-位置甲氧基的特征明确的抗微管蛋白剂鬼臼毒素(PTOX)靶向位于α-和β-微管蛋白之间的秋水仙碱域。微管蛋白结合区的两个鸟嘌呤三磷酸(GTP)类似物是从PTOX合成的,其中羟基被碳-硫键取代。这些化合物4-MP-PTOX和4-TG-PTOX减少了剂量并大大提高了对癌细胞中微管损伤的治疗效果。在这里,我们表征了这些化合物的抗微管蛋白特性。我们发现化合物4-TG-PTOX和4-MP-PTOX对微管蛋白聚合的抑制作用较强(50%生长抑制浓度,GI50 <2μM),优于PTOX或秋水仙碱。与PTOX和秋水仙碱相比,两种设计化合物对肿瘤细胞的细胞毒性也显着增强。通过等温滴定量热法(ITC)测得的4-MP-PTOX和4-TG-PTOX与微管蛋白结合的ΔH值分别为-7.4和-5.3 kcal·mol -1 。整个系列的焓值范围很广,可能反映出熵/焓补偿效应。片段6-巯基嘌呤(MP)和6-硫鸟嘌呤(TG)可能通过增加结合位点的数量来增强4-MP-PTOX和4-TG-PTOX与微管蛋白的结合亲和力。通过生物活性测试严格证明了合理药物设计的正确性。

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