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Predicting the Binding Affinity of Epitope-Peptides with HLA-A*0201 by Encoding Atom-Pair Non-covalent Interaction Information between Receptor and Ligands

机译:通过编码受体和配体之间的原子对非共价相互作用信息,预测表位肽与HLA-A * 0201的结合亲和力

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A structure-based method was used to characterize the non-covalent interactions of HLA-A*0201 with its peptide ligands. In this procedure, protein and peptide atoms were classified into 16 types in terms of their chemical property and local environment, and a 16 × 16 matrix was then defined to describe the interaction mode of 256 atom-pairs between the receptor and ligand in a complex structure. Three biologically related chemical forces as electrostatic, van der Waals, and hydrophobic potentials were separately calculated for each element of the matrix to yield 768 structural descriptors encoding the detailed information about the non-covalent interactions involved in protein–peptide binding. We employed this method to perform quantitative structure–activity relationship (QSAR) study of a data panel consisting of 419 non-apeptides with known binding affinities to HLA-A*0201 protein. Several QSAR models were constructed using partial least square regression (PLS) coupled with or without genetic algorithm (GA)-variable selection, and these models were validated rigorously and investigated systematically by using external test set and one-way analysis of variance. Results show that diverse properties have significant contributions to the HLA-A*0201–peptide binding. Particularly, the hydrophobicity and electrostatic property at the anchor residues of peptides confer a significant specificity and stability for the bound complexes.
机译:基于结构的方法用于表征HLA-A * 0201及其肽配体的非共价相互作用。在此过程中,蛋白质和肽原子根据其化学性质和局部环境分为16种类型,然后定义一个16×16的矩阵来描述复合物中受体与配体之间256个原子对的相互作用模式结构体。对基质的每个元素分别计算了三种生物学相关的化学力,如静电力,范德华力和疏水势,以产生768个结构描述符,编码关于蛋白质-肽结合所涉及的非共价相互作用的详细信息。我们采用这种方法对由419种与HLA-A * 0201蛋白具有已知亲和力的非肽组成的数据组进行定量构效关系(QSAR)研究。使用偏最小二乘回归(PLS)结合或不结合遗传算法(GA)变量选择构建了多个QSAR模型,并使用外部测试集和单向方差分析对这些模型进行了严格的验证和系统地研究。结果表明,不同的性质对HLA-A * 0201-肽的结合具有重要作用。特别地,在肽的锚定残基处的疏水性和静电性质赋予结合的复合物显着的特异性和稳定性。

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