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INHIBITOR PEPTIDE DESIGN FOR NF-κB: MARKOV MODEL GENETIC ALGORITHM

机译:NF-κB的抑制剂肽设计:Markov模型和遗传算法

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Two peptide design approaches are proposed to block activities of disease related proteins. First approach employs a probabilistic method; the problem is set as Markov chain. The possible binding site of target protein and a path on this binding site are determined. 20 natural amino acids and 400 dipeptides are docked to the selected path using the AutoDock software. The statistical weight matrices for the binding energies are derived from AutoDock results; matrices are used to determine top 100 peptide sequences with affinity to target protein. Second approach utilizes a heuristic method for peptide sequence determination; genetic algorithm (GA) with tournament selection. The amino acids are the genes; the peptide sequences are the chromosomes of GA. Initial random population of 100 chromosomes leads to determination of 100 possible binding peptides, after 8-10 generations of GA. Thermodynamic properties of the peptides are analyzed by a method that we proposed previously. NF-kB protein is selected as case-study.
机译:提出了两种肽设计方法来阻止疾病相关蛋白质的活动。第一方法采用概率方法;问题被设置为马尔可夫链。确定靶蛋白的可能结合位点和该结合位点上的路径。使用Autodock软件将20天然氨基酸和400个二肽对接到所选路径。结合能量的统计重量矩阵来自自动频道结果;基质用于确定具有对靶蛋白质亲和力的前100个肽序列。第二种方法利用肽序列测定的启发式方法;具有锦标赛选择的遗传算法(GA)。氨基酸是基因;肽序列是Ga的染色体。在8-10代Ga之后,100种染色体的初始随机群导致100种可能的结合肽。通过我们先前提出的方法分析肽的热力学性质。选择NF-KB蛋白作为病例研究。

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