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首页> 外文期刊>Bioorganic and Medicinal Chemistry >Evaluation of macrocyclic Grb2 SH2 domain-binding peptide mimetics prepared by ring-closing metathesis of C-terminal allylglycines with an N-terminal beta-vinyl-substituted phosphotyrosyl mimetic.
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Evaluation of macrocyclic Grb2 SH2 domain-binding peptide mimetics prepared by ring-closing metathesis of C-terminal allylglycines with an N-terminal beta-vinyl-substituted phosphotyrosyl mimetic.

机译:评估大环Grb2 SH2结构域结合肽模拟物,该模拟物是通过C末端烯丙基甘氨酸与N末端β-乙烯基取代的磷酸酪氨酸模拟物的闭环复分解而制备的。

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摘要

Preferential binding of ligands to Grb2 SH2 domains in beta-bend conformations has made peptide cyclization a logical means of effecting affinity enhancement. This is based on the concept that constraint of open-chain sequences to bend geometries may reduce entropy penalties of binding. The current study extends this approach by undertaking ring-closing metathesis (RCM) macrocyclization between i and i+3 residues through a process involving allylglycines and beta-vinyl-functionalized residues. Ring closure in this fashion results in minimal macrocyclic tetrapeptide mimetics. The predominant effects of such macrocyclization on Grb2 SH2 domain binding affinity were increases in rates of association (from 7- to 16-fold) relative to an open-chain congener, while decreases in dissociation rates were less pronounced (approximately 2-fold). The significant increases in association rates were consistent with pre-ordering of solution conformations to near those required for binding. Data from NMR experiments and molecular modeling simulations were used to interpret the binding results. An understanding of the conformational consequences of such i to i+3 ring closure may facilitate its application to other systems where bend geometries are desired.
机译:配体与β-bend构型的Grb2 SH2结构域的优先结合使肽环化成为实现亲和力增强的逻辑手段。这是基于这样的概念,即限制开放链序列弯曲几何形状可以减少绑定的熵损失。当前的研究通过涉及烯丙基甘氨酸和β-乙烯基官能化残基的过程,在i和i + 3残基之间进行闭环复分解(RCM)宏环化,扩展了这种方法。以这种方式的闭环导致最少的大环四肽模拟物。此类大环化对Grb2 SH2域结合亲和力的主要影响是,相对于开链同源物,缔合速率增加(从7到16倍),而解离速率的降低则不那么明显(大约2倍)。缔合率的显着提高与溶液构象的预订购相一致,以接近结合所需的构象。来自NMR实验和分子建模模拟的数据用于解释结合结果。对这样的i至i + 3环闭合的构象后果的理解可以促进其应用于需要弯曲几何形状的其他系统。

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