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Oriented covalent immobilization of antibodies for measurement of intermolecular binding forces between zipper-like contact surfaces of split inteins

机译:定向共价固定抗体用于测量分裂内含蛋白的拉链样接触表面之间的分子间结合力

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摘要

In order to measure the intermolecular binding forces between two halves (or partners) of naturally split protein splicing elements called inteins, a novel thiol-hydrazide linker was designed and used to orient immobilized antibodies specific for each partner. Activation of the surfaces was achieved in one step allowing direct force measurements of the formation of a peptide bond catalyzed by the binding of the two partners of the split intein (called protein trans-splicing). Through this binding process, a whole functional intein is formed resulting in subsequent splicing. Atomic force microscopy (AFM) was used to directly measure the split intein partner binding at 1µm/s between native (wild-type) and mixed pairs of C- and N-terminal partners of naturally occurring split inteins from three cyanobacteria. Native and mixed pairs exhibit similar binding forces within the error of the measurement technique (~52 pN). Bioinformatic sequence analysis and computational structural analysis discovered a zipper-like contact between the two partners with electrostatic and non-polar attraction between multiple aligned ion pairs and hydrophobic residues. Also, we tested the Jarzynski’s equality and demonstrated, as expected, that non-equilibrium dissipative measurements obtained here gave larger energies of interaction as compared with those for equilibrium. Hence, AFM coupled with our immobilization strategy and computational studies provides a useful analytical tool for the direct measurement of intermolecular association of split inteins and could be extended to any interacting protein pair.
机译:为了测量称为inteins的天然分裂的蛋白质剪接元件的两半(或伴侣)之间的分子间结合力,设计了一种新型硫醇酰肼连接体,用于定向对每个伴侣具有特异性的固定化抗体。表面活化是一步完成的,可以直接用力测量由分裂内含蛋白的两个伴侣结合而催化的肽键的形成(称为蛋白质反式拼接)。通过这种结合过程,形成了完整的功能内含子,导致了随后的剪接。原子力显微镜(AFM)用于直接测量天然(野生型)与来自三个蓝细菌的天然分裂内含蛋白的C和N末端伴侣的混合对之间的分裂内含蛋白伴侣结合的结合速率,为1µm / s。在测量技术的误差范围内(约52 pN),天然对和混合对表现出相似的结合力。生物信息学序列分析和计算结构分析发现两个伙伴之间的拉链状接触,并在多个对齐的离子对和疏水残基之间产生静电和非极性吸引。此外,我们测试了Jarzynski的等式,并如预期的那样,证明了与平衡相比,此处获得的非平衡耗散测量提供了更大的相互作用能。因此,原子力显微镜与我们的固定化策略和计算研究相结合,为直接测量分裂内含子的分子间缔合提供了有用的分析工具,并且可以扩展到任何相互作用的蛋白质对。

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