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Biomimetic Nanostructures: Creating a High-Affinity Zinc-Binding Site in a Folded Nonbiologicai Polymer

机译:仿生纳米结构:在折叠的非生物聚合物中创建一个高亲和力的锌结合位点。

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One of the long-term goals in developing advanced biomaterials is to generate protein-like nanostructures and functions from a completely nonnatural polymer. Toward that end, we introduced a high-affinity zinc-binding function into a peptoid (N-substituted glycine polymer) two-helix bundle. Borrowing from well-understood zinc-binding motifs in proteins, thiol and imidazole moieties were positioned within the peptoid such that both helices must align in close proximity to form a binding site. We used fluorescence resonance energy transfer (FRET) reporter groups to measure the change of the distance between the two helical segments and to probe the binding of zinc. We systematically varied the position and number of zinc-binding residues, as well as the sequence and size of the loop that connects the two helical segments. We found that certain peptoid two-helix bundles bind zinc with nanomolar affinities and high selectivity compared to other divalent metal ions. Our work is a significant step toward generating biomimetic nanostructures with enzyme-like functions.
机译:开发先进生物材料的长期目标之一是从完全非天然的聚合物中产生类似蛋白质的纳米结构和功能。为此,我们将高亲和力的锌结合功能引入了类肽(N-取代的甘氨酸聚合物)两螺旋束中。从蛋白质中易于理解的锌结合基序中借来的硫醇和咪唑部分位于类肽中,因此两个螺旋必须紧密排列以形成结合位点。我们使用了荧光共振能量转移(FRET)报告基因组来测量两个螺旋片段之间距离的变化并探究锌的结合。我们系统地改变了锌结合残基的位置和数量,以及连接两个螺旋段的环的序列和大小。我们发现,与其他二价金属离子相比,某些类肽两螺旋束以纳摩尔亲和力和高选择性结合锌。我们的工作是朝着产生具有酶样功能的仿生纳米结构迈出的重要一步。

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