首页> 外文期刊>European Journal of Medicinal Chemistry: Chimie Therapeutique >Scoring function for DNA-drug docking of anticancer and antiparasitic compounds based on spectral moments of 2D lattice graphs for molecular dynamics trajectories.
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Scoring function for DNA-drug docking of anticancer and antiparasitic compounds based on spectral moments of 2D lattice graphs for molecular dynamics trajectories.

机译:基于分子动力学轨迹的二维晶格图谱矩,用于抗癌和抗寄生虫化合物的DNA药物对接的评分功能。

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We introduce here a new class of invariants for MD trajectories based on the spectral moments pi(k)(L) of the Markov matrix associated to lattice network-like (LN) graph representations of Molecular Dynamics (MD) trajectories. The procedure embeds the MD energy profiles on a 2D Cartesian coordinates system using simple heuristic rules. At the same time, we associate the LN with a Markov matrix that describes the probabilities of passing from one state to other in the new 2D space. We construct this type of LNs for 422 MD trajectories obtained in DNA-drug docking experiments of 57 furocoumarins. The combined use of psoralens+ultraviolet light (UVA) radiation is known as PUVA therapy. PUVA is effective in the treatment of skin diseases such as psoriasis and mycosis fungoides. PUVA is also useful to treat human platelet (PTL) concentrates in order to eliminate Leishmania spp. and Trypanosoma cruzi. Both are parasites that cause Leishmaniosis (a dangerous skin and visceral disease) and Chagas disease, respectively; and may circulate in blood products collected from infected donors. We included in this study both lineal (psoralens) and angular (angelicins) furocoumarins. In the study, we grouped the LNs on two sets; set1: DNA-drug complex MD trajectories for active compounds and set2: MD trajectories of non-active compounds or no-optimal MD trajectories of active compounds. We calculated the respective pi(k)(L) values for all these LNs and used them as inputs to train a new classifier that discriminate set1 from set2 cases. In training series the model correctly classifies 79 out of 80 (specificity=98.75%) set1 and 226 out of 238 (Sensitivity=94.96%) set2 trajectories. In independent validation series the model correctly classifies 26 out of 26 (specificity=100%) set1 and 75 out of 78 (sensitivity=96.15%) set2 trajectories. We propose this new model as a scoring function to guide DNA-docking studies in the drug design of new coumarins for anticancer or antiparasitic PUVA therapy.
机译:我们在此基于与分子动力学(MD)轨迹的格状网络(LN)图表示相关的马尔可夫矩阵的谱矩pi(k)(L),为MD轨迹引入一类新的不变量。该过程使用简单的启发式规则将MD能量分布图嵌入2D笛卡尔坐标系中。同时,我们将LN与马尔可夫矩阵相关联,该矩阵描述了在新的2D空间中从一种状态传递到另一种状态的概率。我们为57种呋喃香豆素的DNA药物对接实验中获得的422条MD轨迹构建了这种LN。补骨脂素+紫外线(UVA)辐射的联合使用被称为PUVA治疗。 PUVA可有效治疗皮肤病,例如牛皮癣和真菌病。 PUVA也可用于治疗人类血小板(PTL)浓缩物,以消除利什曼原虫。和克氏锥虫。两者都是引起利什曼病(一种危险的皮肤和内脏疾病)和恰加斯病的寄生虫。并可能在从受感染的供体收集的血液制品中流通。在这项研究中,我们同时包括了直链(补骨脂素)和角(呋喃香豆素)呋喃香豆素。在研究中,我们将LN分为两组。 set1:活性化合物的DNA-药物复合物MD轨迹,set2:非活性化合物的MD轨迹或活性化合物的非最佳MD轨迹。我们为所有这些LN计算了各自的pi(k)(L)值,并将它们用作输入来训练一个新的分类器,该分类器将set1与set2情况区分开。在训练系列中,模型正确地对80种(特异性= 98.75%)set1中的79条和238种(敏感性= 94.96%)set2轨迹中的226种进行了正确分类。在独立的验证系列中,该模型正确地对26种(特异性= 100%)set1中的26种和78种敏感性(96.15%)set2中的75种进行了正确分类。我们提出此新模型作为评分功能,以指导用于抗癌或抗寄生虫PUVA治疗的新香豆素药物设计中的DNA对接研究。

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