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Phage display selected magnetite interacting Adhirons for shape controlled nanoparticle synthesis

机译:噬菌体展示了用于形状控制的纳米粒子合成的精选磁铁矿相互作用的Adhirons

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Adhirons are robust, well expressing, peptide display scaffold proteins, developed as an effective alternative to traditional antibody binding proteins for highly specific molecular recognition applications. This paper reports for the first time the use of these versatile proteins for material binding, and as tools for controlling material synthesis on the nanoscale. A phage library of Adhirons, each displaying two variable binding loops, was screened to identify specific proteins able to interact with [100] faces of cubic magnetite nanoparticles. The selected variable regions display a strong preference for basic residues such as lysine. Molecular dynamics simulations of amino acid adsorption onto a [100] magnetite surface provides a rationale for these interactions, with the lowest adsorption energy observed with lysine. These proteins direct the shape of the forming nanoparticles towards a cubic morphology in room temperature magnetite precipitation reactions, in stark contrast to the high temperature, harsh reaction conditions currently used to produce cubic nanoparticles. These effects demonstrate the utility of the selected Adhirons as novel magnetite mineralization control agents using ambient aqueous conditions. The approach we outline with artificial protein scaffolds has the potential to develop into a toolkit of novel additives for wider nanomaterial fabrication.
机译:Adhirons是功能强大,表达良好的肽展示支架蛋白,是针对高度特异性分子识别应用的传统抗体结合蛋白的有效替代品。本文首次报道了这些多功能蛋白在材料结合中的用途,以及作为控制纳米级材料合成的工具。筛选了每个均显示两个可变结合环的Adhirons噬菌体文库,以鉴定能够与立方磁铁矿纳米粒子的[100]面相互作用的特定蛋白质。所选的可变区显示出对碱性残基(例如赖氨酸)的强烈偏好。氨基酸吸附到[100]磁铁矿表面上的分子动力学模拟为这些相互作用提供了理论依据,赖氨酸观察到的吸附能最低。这些蛋白质在室温磁铁矿沉淀反应中将形成的纳米粒子的形状导向立方形态,与目前用于生产立方纳米粒子的高温,苛刻的反应条件形成鲜明对比。这些效果证明了使用环境水溶液条件下所选的Adhirons作为新型磁铁矿矿化控制剂的实用性。我们概述的使用人工蛋白质支架的方法有潜力发展成为新型添加剂的工具包,用于更广泛的纳米材料制造。

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