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Reactibodies generated by kinetic selection couple chemical reactivity with favorable protein dynamics

机译:通过动力学选择产生的抗体将化学反应性与良好的蛋白质动力学结合在一起

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摘要

Igs offer a versatile template for combinatorial and rational design approaches to the de novo creation of catalytically active proteins. We have used a covalent capture selection strategy to identify biocatalysts from within a human semisynthetic antibody variable fragment library that uses a nucleophilic mechanism. Specific phosphonylation at a single tyrosine within the variable light-chain framework was confirmed in a recombinant IgG construct. High-resolution crystallographic structures of unmodified and phosphonylated Fabs display a 15-Å-deep two-chamber cavity at the interface of variable light (VL) and variable heavy (VH) fragments having a nucleophilic tyrosine at the base of the site. The depth and structure of the pocket are atypical of antibodies in general but can be compared qualitatively with the catalytic site of cholinesterases. A structurally disordered heavy chain complementary determining region 3 loop, constituting a wall of the cleft, is stabilized after covalent modification by hydrogen bonding to the phosphonate tropinol moiety. These features and presteady state kinetics analysis indicate that an induced fit mechanism operates in this reaction. Mutations of residues located in this stabilized loop do not interfere with direct contacts to the organophosphate ligand but can interrogate second shell interactions, because the H3 loop has a conformation adjusted for binding. Kinetic and thermodynamic parameters along with computational docking support the active site model, including plasticity and simple catalytic components. Although relatively uncomplicated, this catalytic machinery displays both stereo- and chemical selectivity. The organophosphate pesticide paraoxon is hydrolyzed by covalent catalysis with rate-limiting dephosphorylation. This reactibody is, therefore, a kinetically selected protein template that has enzyme-like catalytic attributes.
机译:Igs为从头创建催化活性蛋白的组合和合理设计方法提供了通用模板。我们已经使用共价捕获选择策略从使用亲核机制的人半合成抗体可变片段文库中鉴定生物催化剂。在重组IgG构建体中证实了在可变轻链框架内单个酪氨酸处的特异性磷酸酰化。未修饰的和膦酰基化的Fab的高分辨率晶体学结构在该位置的底部具有亲核酪氨酸的可变轻(VL)和可变重(VH)片段的界面处显示15Å深的两腔腔。囊袋的深度和结构通常不是抗体的典型特征,但可以与胆碱酯酶的催化位点进行定性比较。共价修饰后,通过氢键合到膦酸酯肌醇部分上,可稳定构成裂隙壁的结构无序的重链互补决定区3环,使其稳定。这些特征和稳态动力学分析表明,诱导拟合机制在该反应中起作用。位于该稳定环中的残基突变不会干扰与有机磷酸酯配体的直接接触,但可以询问第二个壳相互作用,因为H3环具有为结合而调节的构象。动力学和热力学参数以及计算对接支持了活性位点模型,包括可塑性和简单的催化成分。尽管相对简单,但是该催化机构显示出立体选择性和化学选择性。有机磷农药对氧磷通过具有限速脱磷酸作用的共价催化进行水解。因此,该反应体是具有酶样催化特性的动力学选择的蛋白质模板。

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