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在明确定义的拉伸几何形状下,对生物素-链霉亲和素相互作用强度进行单分散测量。

Monodisperse measurement of the biotin-streptavidin interaction strength in a well-defined pulling geometry.

机构信息

Lehrstuhl für Angewandte Physik and Center for NanoScience (CeNS), Ludwig-Maximilians-Universität München, Munich, Germany.

出版信息

PLoS One. 2017 Dec 5;12(12):e0188722. doi: 10.1371/journal.pone.0188722. eCollection 2017.

Abstract

The widely used interaction of the homotetramer streptavidin with the small molecule biotin has been intensively studied by force spectroscopy and has become a model system for receptor ligand interaction. However, streptavidin's tetravalency results in diverse force propagation pathways through the different binding interfaces. This multiplicity gives rise to polydisperse force spectroscopy data. Here, we present an engineered monovalent streptavidin tetramer with a single cysteine in its functional subunit that allows for site-specific immobilization of the molecule, orthogonal to biotin binding. Functionality of streptavidin and its binding properties for biotin remain unaffected. We thus created a stable and reliable molecular anchor with a unique high-affinity binding site for biotinylated molecules or nanoparticles, which we expect to be useful for many single-molecule applications. To characterize the mechanical properties of the bond between biotin and our monovalent streptavidin, we performed force spectroscopy experiments using an atomic force microscope. We were able to conduct measurements at the single-molecule level with 1:1-stoichiometry and a well-defined geometry, in which force exclusively propagates through a single subunit of the streptavidin tetramer. For different force loading rates, we obtained narrow force distributions of the bond rupture forces ranging from 200 pN at 1,500 pN/s to 230 pN at 110,000 pN/s. The data are in very good agreement with the standard Bell-Evans model with a single potential barrier at Δx0 = 0.38 nm and a zero-force off-rate koff,0 in the 10-6 s-1 range.

摘要

广泛应用的同源四聚体链霉亲和素与小分子生物素的相互作用已通过力谱学进行了深入研究,并且已成为受体配体相互作用的模型系统。 然而,链霉亲和素的四价导致通过不同的结合界面传播多种力传递途径。 这种多样性导致力谱数据的多分散性。 在这里,我们提出了一种经过工程改造的单价链霉亲和素四聚体,其功能亚基中有一个单一的半胱氨酸,允许分子在生物素结合的正交位置进行特异性固定。 链霉亲和素的功能及其与生物素的结合特性保持不变。 因此,我们创建了一种稳定可靠的分子锚,其具有独特的高亲和力生物素结合位点,适用于生物素化分子或纳米颗粒,我们预计这将对许多单分子应用有用。 为了表征生物素与我们单价链霉亲和素之间键的机械性能,我们使用原子力显微镜进行了力谱实验。 我们能够以 1:1 的化学计量比和明确定义的几何形状进行单分子水平的测量,其中力仅通过链霉亲和素四聚体的单个亚基传播。 对于不同的力加载速率,我们获得了键断裂力的窄力分布,范围从 200 pN 在 1500 pN/s 到 230 pN 在 110000 pN/s。 数据与标准的 Bell-Evans 模型非常吻合,该模型在 Δx0 = 0.38nm 处具有单个势垒,在 10-6 s-1 范围内的零力离解速率 koff,0。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b811/5716544/96e7511f5a13/pone.0188722.g001.jpg

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