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Multivalent Ultrasensitive Interfacing of Supramolecular 1D Nanoplatforms

机译:超分子一维纳米平台的多价超灵敏接口。

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Multivalent display on linear platforms is used by many biomolecular systems to effectively interact with their corresponding binding partners in a dose-responsive and ultrasensitive manner appropriate to the biological system at hand. Synthetic supramolecular multivalent displays offer a matching approach for the modular and bottom-up construction and systematic study of dynamic 1D materials. Fundamental studies into multivalent interactions between such linear, 1D materials have been lacking because of the absence of appropriate modular nanoplatforms. In this work we interfaced two synthetic multivalent linear nanoplatforms based on a dynamic supramolecular polymer, formed by hybrid discotic-oligonucleotide monomers, and a series of complementary DNA-duplex-based multivalent ligands, also with appended short oligonucleotides. The combination of these two multivalent nanoplatforms provides for the first time entry to study multivalent effects in dynamic 1D systems, of relevance for the conceptual understanding of multivalency in biology and for the generation of novel multivalent biomaterials. Together the two nanoscaffolds provide easy access to libraries of multivalent ligands with tunable affinities. The DNA scaffold allows for exact control over valency and spatial ligand distribution, and the discotic supramolecular polymer allows for dynamic adaptation and control over receptor density. The interaction between the two nanoplatforms was studied as a function of ligand interaction strength, valency, and density. Usage of the enhancement parameter beta allowed quantification of the effects of ligand valency and affinity. The results reveal a generalized principle of additive binding increments. Receptor density is shown to be crucially and nonlinearly correlated to complex formation, leading to ultrasensitive responses. The results reveal that, not unlike biomolecular signaling, high density multivalent display of receptors is crucial for functionally increased affinities.
机译:许多生物分子系统使用线性平台上的多价展示来以与其手边的生物系统相适应的剂量响应和超灵敏方式有效地与其相应的结合配偶体相互作用。合成的超分子多价显示器为模块化和自底向上构建以及动态1D材料的系统研究提供了一种匹配方法。由于缺乏适当的模块化纳米平台,因此缺乏对这类线性一维材料之间多价相互作用的基础研究。在这项工作中,我们将基于动态超分子聚合物的两个合成的多价线性纳米平台连接在一起,该平台由杂化的盘状-寡核苷酸单体和一系列互补的基于DNA双链体的多价配体组成,也带有短的寡核苷酸。这两种多价纳米平台的结合为研究动态一维系统中的多价效应提供了首次机会,这与生物学中多价的概念性理解以及新型多价生物材料的产生有关。两种纳米支架一起可轻松访问具有可调亲和力的多价配体库。 DNA支架可精确控制化合价和空间配体分布,而盘状超分子聚合物可实现动态适应并控制受体密度。研究了两种纳米平台之间的相互作用与配体相互作用强度,化合价和密度的关系。使用增强参数β可以量化配体价和亲和力的影响。结果揭示了加性结合增量的一般原理。受体密度显示与复杂的形成至关重要且非线性相关,从而导致超敏感反应。结果表明,与生物分子信号传导不同,受体的高密度多价展示对于功能性亲和力至关重要。

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