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探索软质仿生界面中配体-受体介导黏附的多价性。

Probing multivalency in ligand-receptor-mediated adhesion of soft, biomimetic interfaces.

作者信息

Schmidt Stephan, Wang Hanqing, Pussak Daniel, Mosca Simone, Hartmann Laura

机构信息

Universität Leipzig, Institut für Biochemie, Johannisalle 21-23, D-04103 Leipzig, Germany.

Max Planck Institute of Colloids and Interfaces, Research Campus Golm, 14424 Potsdam, Germany ; Heinrich-Heine-Universität Düsseldorf, Institut für Organische und Makromolekulare Chemie, Universitätsstr. 1, 40225 Düsseldorf, Germany.

出版信息

Beilstein J Org Chem. 2015 May 12;11:720-9. doi: 10.3762/bjoc.11.82. eCollection 2015.

Abstract

Many biological functions at cell level are mediated by the glycocalyx, a dense carbohydrate-presenting layer. In this layer specific interactions between carbohydrate ligands and protein receptors are formed to control cell-cell recognition, cell adhesion and related processes. The aim of this work is to shed light on the principles of complex formation between surface anchored carbohydrates and receptor surfaces by measuring the specific adhesion between surface bound mannose on a concanavalin A (ConA) layer via poly(ethylene glycol)-(PEG)-based soft colloidal probes (SCPs). Special emphasis is on the dependence of multivalent presentation and density of carbohydrate units on specific adhesion. Consequently, we first present a synthetic strategy that allows for controlled density variation of functional groups on the PEG scaffold using unsaturated carboxylic acids (crotonic acid, acrylic acid, methacrylic acid) as grafting units for mannose conjugation. We showed by a range of analytic techniques (ATR-FTIR, Raman microscopy, zeta potential and titration) that this synthetic strategy allows for straightforward variation in grafting density and grafting length enabling the controlled presentation of mannose units on the PEG network. Finally we determined the specific adhesion of PEG-network-conjugated mannose units on ConA surfaces as a function of density and grafting type. Remarkably, the results indicated the absence of a molecular-level enhancement of mannose/ConA interaction due to chelate- or subsite-binding. The results seem to support the fact that weak carbohydrate interactions at mechanically flexible interfaces hardly undergo multivalent binding but are simply mediated by the high number of ligand-receptor interactions.

摘要

许多细胞水平的生物学功能是由糖萼介导的,糖萼是一层密集的碳水化合物呈现层。在这一层中,碳水化合物配体与蛋白质受体之间形成特定的相互作用,以控制细胞间识别、细胞黏附及相关过程。本研究的目的是通过基于聚乙二醇(PEG)的软胶体探针(SCP)测量伴刀豆球蛋白A(ConA)层上表面结合甘露糖之间的特异性黏附,来阐明表面锚定碳水化合物与受体表面之间形成复合物的原理。特别强调碳水化合物单元的多价呈现和密度对特异性黏附的依赖性。因此,我们首先提出一种合成策略,该策略使用不饱和羧酸(巴豆酸、丙烯酸、甲基丙烯酸)作为甘露糖共轭的接枝单元,能够控制PEG支架上官能团的密度变化。我们通过一系列分析技术(衰减全反射傅里叶变换红外光谱、拉曼显微镜、zeta电位和滴定)表明,这种合成策略能够直接改变接枝密度和接枝长度,从而在PEG网络上实现甘露糖单元的可控呈现。最后,我们确定了PEG网络共轭甘露糖单元在ConA表面的特异性黏附与密度和接枝类型的函数关系。值得注意的是,结果表明由于螯合或亚位点结合,甘露糖/ConA相互作用在分子水平上没有增强。这些结果似乎支持了这样一个事实,即在机械柔性界面上的弱碳水化合物相互作用几乎不发生多价结合,而只是由大量的配体-受体相互作用介导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c80/4464160/8ca164e9465e/Beilstein_J_Org_Chem-11-720-g002.jpg

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