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Molecular Evolution of Peptide Ligands with Custom-Tailored Characteristics for Targeting of Glycostructures

机译:具有定制特征的糖配体的肽配体的分子进化。

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摘要

As an advanced approach to identify suitable targeting molecules required for various diagnostic and therapeutic interventions, we developed a procedure to devise peptides with customizable features by an iterative computer-assisted optimization strategy. An evolutionary algorithm was utilized to breed peptides in silico and the “fitness” of peptides was determined in an appropriate laboratory in vitro assay. The influence of different evolutional parameters and mechanisms such as mutation rate, crossover probability, gaussian variation and fitness value scaling on the course of this artificial evolutional process was investigated. As a proof of concept peptidic ligands for a model target molecule, the cell surface glycolipid ganglioside GM1, were identified. Consensus sequences describing local fitness optima were reached from diverse sets of L- and proteolytically stable D lead peptides. Ten rounds of evolutional optimization encompassing a total of just 4400 peptides lead to an increase in affinity of the peptides towards fluorescently labeled ganglioside GM1 by a factor of 100 for L- and 400 for D-peptides.
机译:作为识别各种诊断和治疗干预所需的合适靶向分子的先进方法,我们开发了一种程序,可通过迭代计算机辅助优化策略设计具有可自定义特征的肽。利用进化算法在计算机上繁殖多肽,并在适当的实验室体外测定中确定了肽的“适应性”。研究了不同的进化参数和机制,如突变率,交叉概率,高斯变异和适应度值定标,对这种人工进化过程的影响。作为模型目标分子的肽配体概念的证明,鉴定了细胞表面糖脂神经节苷脂GM1。从L-和蛋白水解稳定的D铅肽的不同集达成了描述局部适应性最佳的共识序列。十轮进化优化包括总共4400个肽段,导致该肽段与荧光标记的神经节苷脂GM1的亲和力增加,其中L-肽增加100倍,D肽增加400倍。

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