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New Modified Deoxythymine with Dibranched Tetraethylene Glycol Stabilizes G-Quadruplex Structures

机译:具有DIBRANCHED四乙二醇的新型改性的脱氧细胞稳定G-Quadruple结构

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摘要

Methods for stabilizing G-quadruplex formation is a promising therapeutic approach for cancer treatment and other biomedical applications because stable G-quadruplexes efficiently inhibit biological reactions. Oligo and polyethylene glycols are promising biocompatible compounds, and we have shown that linear oligoethylene glycols can stabilize G-quadruplexes. Here, we developed a new modified deoxythymine with dibranched or tribranched tetraethylene glycol (TEG) and incorporated these TEG-modified deoxythymines into a loop region that forms an antiparallel G-quadruplex. We analyzed the stability of the modified G-quadruplexes, and the results showed that the tribranched TEG destabilized G-quadruplexes through entropic contributions, likely through steric hindrance. Interestingly, the dibranched TEG modification increased G-quadruplex stability relative to the unmodified DNA structures due to favorable enthalpic contributions. Molecular dynamics calculations suggested that dibranched TEG interacts with the G-quadruplex through hydrogen bonding and CH-π interactions. Moreover, these branched TEG-modified deoxythymine protected the DNA oligonucleotides from degradation by various nucleases in human serum. By taking advantage of the unique interactions between DNA and branched TEG, advanced DNA materials can be developed that affect the regulation of DNA structure.
机译:用于稳定G-Quadreplem的方法是癌症治疗和其他生物医学应用的有希望的治疗方法,因为稳定的G-四边形有效抑制生物反应。寡聚醇和聚乙二醇是有前途的生物相容性化合物,并且我们已经表明,线性低聚乙二醇可以稳定G-四链体。这里,我们开发了一种具有Dibranched或Tregranched四甘醇(TEG)的新改性的脱氧细胞,并将这些TEG改性的脱氧细胞掺入形成反平行G-Quadreplex的环形区域中。我们分析了改性G-QuadruprupleS的稳定性,结果表明,纤维分子TEG通过空间障碍的熵贡献使G-QuadrupleS稳定下来。有趣的是,由于良好的焓贡献,Dibranched TEG改性相对于未改性的DNA结构增加了G-Quadreplex稳定性。分子动力学计算表明Dibranched TEG通过氢键和CH-π相互作用与G-Quadreplex相互作用。此外,这些支链TEG改性的脱氧细胞受到人血清中各种核酸酶的降解免于降解的DNA寡核苷酸。通过利用DNA和支链TEG之间的独特相互作用,可以开发出现高级DNA材料,从而影响DNA结构的调节。

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