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A fast and accurate method for predicting pKa of residues in proteins.

机译:一种快速准确的预测蛋白质残基pKa的方法。

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摘要

Predicting the pH-activities of residues in proteins is an important problem in enzyme engineering and protein design. A novel predictor called 'Pred-pK(a)' was developed based on the physicochemical properties of amino acids and protein 3D structure. The Pred-pK(a) approach considers the influence of all other residues of the protein to predict the pK(a) value of an ionizable residue. An empirical equation was formulated, in which the pK(a) value was a distance-dependent function of physicochemical parameters of 20 amino acid types, describing their electrostatic and van der Waals interaction, as well as the effects of hydrogen bonds and solvation. Two sets of coefficients, {a(alpha)} and {b(l)}, were used in the predictor: {a(alpha)} is the weight factors of 20 amino acid types and {b(l)} is the weight factors of physicochemical properties of amino acids. An iterative double least square procedure was proposed to solve the two sets of weight factors alternately and iteratively in a training set. The two coefficient sets {a(alpha)} and {b(l)} thus obtained were used to predict the pK(a) values of residues in a protein. The average predictive error is +/-0.6 pH in less than a minute in common personal computer.
机译:预测蛋白质中残基的pH活性是酶工程和蛋白质设计中的重要问题。基于氨基酸和蛋白质3D结构的理化性质,开发了一种称为“ Pred-pK(a)”的新型预测因子。 Pred-pK(a)方法考虑了蛋白质所有其他残基的影响,以预测可电离残基的pK(a)值。建立了一个经验方程,其中pK(a)值是20种氨基酸类型的物理化学参数的距离依赖函数,描述了它们的静电和范德华相互作用,以及氢键和溶剂化的影响。在预测变量中使用了两组系数{a(alpha)}和{b(l)}:{a(alpha)}是20种氨基酸类型的权重因子,而{b(l)}是权重氨基酸理化特性的因素。提出了一个迭代双最小二乘方法来交替和迭代地求解训练集中的两组权重因子。这样获得的两个系数集{a(α)}和{b(l)}被用于预测蛋白质中残基的pK(a)值。在普通个人计算机中,平均预测误差在不到一分钟的时间内为+/- 0.6 pH。

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