Department of Chemistry, Portland State University, P.O. Box 751, Portland, Oregon, 97207-0751, and Department of Chemistry, KTH-Royal Institute of Technology, Teknikringen 30, S-10044 Stockholm, Sweden.
Anal Chem. 2010 Nov 1;82(21):9082-9. doi: 10.1021/ac102114z. Epub 2010 Oct 13.
Glyconanomaterials, nanomaterials carrying multiple carbohydrate ligands, provide an excellent platform for sensitive protein recognition. Using nanomaterials as the scaffold, multivalent interactions between glycan ligands and proteins have been demonstrated. However, the quantitative analysis of the binding affinity of these glyconanomaterials has been lacking. In this Article, we report a new method to measure the binding affinity of glyconanoparticle (GNP)-protein interactions based on a fluorescent competition binding assay, which yielded the apparent dissociation constant (K(d)) of GNPs with the interacting protein. Au nanoparticles conjugated with underivatized mono-, oligo-, and polysaccharides were synthesized using our recently developed photocoupling chemistry. The affinities of these GNPs with lectins were measured and were several orders of magnitude higher than the corresponding free ligands with lectins. The effect of ligand display on the binding affinity of GNPs was, furthermore, studied where GNPs of varying linker type, spacer length, ligand density, and nanoparticle size were prepared and K(d) values determined. The long spacer linker containing hydrocarbon and ethylene oxide units gave the highest binding affinity as well as assay sensitivity. The binding affinity increased with ligand density in general, showing a drastic increase in affinity at low ligand density. In addition, the affinity enhancement was more pronounced on smaller NPs than the larger ones. These results not only demonstrate that the binding affinity of GNPs is highly influenced by how the ligands are presented on the nanoparticles but also pave the way for tailor-made glyconanomaterials with tunable affinity by way of ligand display.
糖基纳米材料是携带多个碳水化合物配体的纳米材料,为敏感的蛋白质识别提供了极好的平台。利用纳米材料作为支架,已经证明了糖配体和蛋白质之间的多价相互作用。然而,这些糖基纳米材料的结合亲和力的定量分析一直缺乏。在本文中,我们报告了一种基于荧光竞争结合测定法测量糖基纳米粒子(GNP)-蛋白质相互作用结合亲和力的新方法,该方法给出了与相互作用蛋白的 GNP 的表观解离常数(Kd)。使用我们最近开发的光偶联化学,合成了与未衍生的单糖、寡糖和多糖偶联的金纳米粒子。测量了这些 GNP 与凝集素的亲和力,其亲和力比相应的游离配体与凝集素的亲和力高几个数量级。此外,还研究了配体展示对 GNP 结合亲和力的影响,其中制备了具有不同连接体类型、间隔长度、配体密度和纳米颗粒大小的 GNP,并确定了 Kd 值。含有烃和氧化亚乙基单元的长间隔连接体提供了最高的结合亲和力和检测灵敏度。一般来说,配体密度增加,亲和力增加,在低配体密度下亲和力急剧增加。此外,较小的 NPs 比较大的 NPs 的亲和力增强更为明显。这些结果不仅表明 GNP 的结合亲和力受配体在纳米粒子上的呈现方式的强烈影响,而且还为通过配体展示定制具有可调亲和力的糖基纳米材料铺平了道路。