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Electronic structure and partial charge distribution of doxorubicin under different molecular environments.

机译:不同分子环境下阿霉素的电子结构和部分电荷分布。

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摘要

Doxorubicin (trade name Adriamycin, abbreviated DOX) is a well-known an- thracyclic chemotherapeutic used in treating a variety of cancers including acute leukemia, lymphoma, multiple myeloma, and a range of stomach, lung, bladder, bone, breast, and ovarian cancers. The purpose of the present work is to study electronic structure, partial charge distribution and interaction energy of DOX under different environments. It provides a framework for better understanding of bioactivity of DOX with DNA. While in this work, we focus on DOX -- DNA interactions; the obtained knowledge could be translated to other drug -- target interactions or biomolecular interactions.;The electronic structure and partial charge distribution of DOX in three dierent molecular environments: isolated, solvated, and intercalated into a DNA complex,were studied by rst principles density functional methods. It is shown that the addition of solvating water molecules to DOX and the proximity and interaction with DNA has a signicant impact on the electronic structure as well as the partial charge distribution. The calculated total partial charges for DOX in the three models are 0.0, +0.123 and -0.06 electrons for the isolated, solvated, and intercalated state, respectively. Furthermore, by using the more accurate ab initio partial charge values on every atom in the models, signicant improvement in estimating the DOX-DNA interaction energy is obtained in conjunction with the NAnoscale Molecular Dynamics (NAMD) code. The electronic structure of the DOX-DNA is further elucidated by resolving the total density of states (TDOS) into dierent functional groups of DOX, DNA, water, co-crystallized Spermine molecule, and Na ions. The surface partial charge distribution in the DOX-DNA is calculated and displayed graphically. We conclude that the presence of the solvent as well as the details of the interaction geometry matter greatly in the determination of the stability of the DOX complexion. Ab initio calculations on realistic models are an important step towards a more accurate description of biomolecular interaction and in the eventual understanding of long-range interactions in biomolecular systems.
机译:阿霉素(商品名阿霉素,缩写为DOX)是一种著名的环周化疗药,用于治疗多种癌症,包括急性白血病,淋巴瘤,多发性骨髓瘤以及各种胃癌,肺癌,膀胱癌,骨癌,乳腺癌,卵巢癌癌症。本研究的目的是研究不同环境下DOX的电子结构,部分电荷分布和相互作用能。它提供了一个框架,可以更好地了解DOX与DNA的生物活性。在这项工作中,我们专注于DOX-DNA相互作用;所获得的知识可以转化为其他药物-目标相互作用或生物分子相互作用。;在三种不同的分子环境中,DOX的电子结构和部分电荷分布:分离,溶剂化和嵌入DNA复合物中,通过第一原理密度研究功能方法。结果表明,向DOX中添加溶剂化水分子以及与DNA的接近和相互作用对电子结构以及部分电荷分布具有重要影响。在三个模型中,对于隔离状态,溶剂化状态和插入状态,DOX的计算总总分电荷分别为0.0,+ 0.123和-0.06电子。此外,通过在模型中的每个原子上使用更准确的从头开始的部分电荷值,结合NAnoscale分子动力学(NAMD)代码,可以显着改善估计DOX-DNA相互作用能。通过将状态的总密度(TDOS)分解为DOX,DNA,水,共结晶的精胺分子和Na离子的不同官能团,进一步阐明了DOX-DNA的电子结构。计算并以图形方式显示DOX-DNA中的表面部分电荷分布。我们得出结论,溶剂的存在以及相互作用几何的细节在确定DOX络合物的稳定性方面起着至关重要的作用。对现实模型的从头计算是朝着更准确地描述生物分子相互作用以及最终理解生物分子系统中的远程相互作用迈出的重要一步。

著录项

  • 作者

    Poudel, Lokendra.;

  • 作者单位

    University of Missouri - Kansas City.;

  • 授予单位 University of Missouri - Kansas City.;
  • 学科 Physical chemistry.;Theoretical physics.
  • 学位 M.S.
  • 年度 2014
  • 页码 78 p.
  • 总页数 78
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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