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首页> 外文期刊>Journal of molecular modeling >Probing the interactions of the solvated electron with DNA by molecular dynamics simulations: bromodeoxyuridine substituted DNA
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Probing the interactions of the solvated electron with DNA by molecular dynamics simulations: bromodeoxyuridine substituted DNA

机译:通过分子动力学模拟探索溶剂化电子与DNA的相互作用:溴脱氧尿苷取代的DNA

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摘要

Solvated electrons (e(aq)(-)) are produced during water radiolysis and can interact with biological substrates, including DNA. To augment DNA damage, radiosensitizers such as bromo-deoxyuridine (BUdR), often referred to as an "electron affinic radiosensitizer", are incorporated in place of isosteric thymidine. However, little is known about the primary interactions of e(aq)(-) with DNA. In the present study we addressed this problem by applying molecular modeling and molecular dynamics (MD) simulations to a system of normal (BUdR center dot A)-DNA and a hydrated electron, where the excess electron was modeled as a localized e(-)(H2O)(6) anionic cluster. Our goals were to evaluate the suitability of the MD simulations for this application; to characterize the motion of e(aq)(-) around DNA (e.g., diffusion coefficients); to identify and describe configurational states of close e(aq)(-) localization to DNA; and to evaluate the structural dynamics of DNA in the presence of e(aq)(-). The results indicate that e(aq)(-) has distinct space-preferences for forming close contacts with DNA and is more likely to interact directly with nucleotides other than BUdR. Several classes of DNA - e(aq)(-) contact sites, all within the major groove, were distinguished depending on the structure of the intermediate water layer H-bonding pattern (or its absence, i.e., a direct H-bonding of e(aq)(-) with DNA bases). Large-scale structural perturbations were identified during and after the e(aq)(-) approached the DNA from the major groove side, coupled with deeper penetration of sodium counterions in the minor groove.
机译:溶剂化的电子(e(aq)(-))是在水辐射分解过程中产生的,可以与生物底物(包括DNA)相互作用。为了增加DNA损伤,掺入放射增敏剂,例如溴脱氧尿苷(BUdR),通常被称为“电子亲和放射增敏剂”,以代替等排胸腺嘧啶核苷。但是,关于e(aq)(-)与DNA的主要相互作用知之甚少。在本研究中,我们通过将分子建模和分子动力学(MD)模拟应用于正常(BUdR中心点A)-DNA和水合电子的系统来解决此问题,其中过量电子被建模为局部e(-) (H2O)(6)阴离子簇。我们的目标是评估MD模拟对此应用程序的适用性;表征e(aq)(-)在DNA周围的运动(例如扩散系数);识别并描述接近e(aq)(-)定位于DNA的构型状态;并评估在e(aq)(-)存在下DNA的结构动力学。结果表明,e(aq)(-)具有与DNA形成紧密接触的独特空间偏好,并且更可能与BUdR以外的核苷酸直接相互作用。根据中间水层的H键结构(或不存在,即e的直接H键)的结构,将所有类型的DNA-e(aq)(-)接触位点都分配在主沟槽内(aq)(-)具有DNA碱基)。在e(aq)(-)从大沟一侧接近DNA的过程中和之后,发现了大规模的结构扰动,同时钠抗衡离子在小沟中的渗透更深。

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