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解析聚己二醛和白藜芦醇与 G-四链体和双链 DNA 相互作用:一种生物物理、计算和生物学方法。

Shedding light on the interaction of polydatin and resveratrol with G-quadruplex and duplex DNA: a biophysical, computational and biological approach.

机构信息

Department of Chemical Sciences, University of Naples Federico II, Via Cintia 21, Naples I-80126, Italy.

Department of Chemical Sciences, University of Naples Federico II, Via Cintia 21, Naples I-80126, Italy; Interdisciplinary Research Centre on Biomaterials (CRIB), University of Naples Federico II, Piazzale Tecchio 80, Naples I-80125, Italy.

出版信息

Int J Biol Macromol. 2020 May 15;151:1163-1172. doi: 10.1016/j.ijbiomac.2019.10.160. Epub 2019 Nov 17.

Abstract

Among polyphenols, trans-resveratrol (tRES) and trans-polydatin (tPD) exert multiple biological effects, particularly antioxidant and antiproliferative. In this work, we have investigated the interaction of tPD with three cancer-related DNA sequences able to form G-quadruplex (G4) structures, as well as with a model duplex, and compared its behaviour with tRES. Interestingly, fluorescence analysis evidenced the ability of tPD to bind all the studied DNA systems, similarly to tRES, with tRES displaying a higher ability to discriminate G4 over duplex with respect to tPD. However, neither tRES nor tPD produced significant conformational changes of the analyzed DNA upon binding, as determined by CD-titration analysis. Computational analysis and biological data confirmed the biophysical results: indeed, molecular docking evidenced the stronger interaction of tRES with the promoter of c-myc oncogene, and immunoblotting assays revealed a reduction of c-myc expression, more effective for tRES than tPD. Furthermore, in vitro assays on melanoma cells proved that tPD was able to significantly reduce telomerase activity, and inhibit cell proliferation, with tRES producing higher effects than tPD.

摘要

在多酚中,反式白藜芦醇(tRES)和反式白藜芦醇苷(tPD)发挥多种生物学作用,特别是抗氧化和抗增殖作用。在这项工作中,我们研究了 tPD 与三种能够形成 G-四链体(G4)结构的与癌症相关的 DNA 序列,以及与模型双链体的相互作用,并将其行为与 tRES 进行了比较。有趣的是,荧光分析表明 tPD 能够与所有研究的 DNA 系统结合,与 tRES 相似,tRES 与 tPD 相比,结合 G4 的能力更高。然而,如通过 CD 滴定分析所确定的,结合后,tRES 和 tPD 都没有对分析的 DNA 产生明显的构象变化。计算分析和生物学数据证实了这些物理结果:事实上,分子对接表明 tRES 与 c-myc 癌基因启动子的相互作用更强,免疫印迹分析显示 c-myc 表达减少,tRES 比 tPD 更有效。此外,在黑素瘤细胞的体外试验中证明,tPD 能够显著降低端粒酶活性并抑制细胞增殖,而 tRES 的效果比 tPD 更高。

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