Krage Clemens, Adigüzel Seyma, Thongrom Boonya, Dimde Mathias, Block Stephan, Saeed Mohamed, Schulze Maiko, Junge Florian, Klimek Anton, Achazi Katharina, Netz Roland R, Schedler Uwe, Haag Rainer
Fachbereich Physik, Freie Universität Berlin, Takustrasse 3, D-14195 Berlin, Germany.
PolyAn GmbH, Schkopauer Ring 6, D-12681 Berlin, Germany.
Anal Chem. 2025 Mar 25;97(11):6329-6337. doi: 10.1021/acs.analchem.5c00499. Epub 2025 Mar 13.
We developed a three-dimensional (3D) polyglycerol-poly(ethylene glycol)-based hydrogel as a new biosensing matrix for affinity analysis by surface plasmon resonance to enable a high loading of ligands for small molecule analysis while lacking a carbohydrate structure to reduce nonspecific binding. The hydrogel was synthesized by cross-linking a polyglycerol functionalized with carboxylate and maleimide groups with a dithiolated poly(ethylene glycol) by thiol-click chemistry. We demonstrated that the hydrogel coating enabled a high immobilization capacity of biomolecules and led to less nonspecific binding. Here, the degree of loading with carbonic anhydrase II and the resulting binding signal of acetazolamide were increased by a factor of 5 compared to standard CMD sensors (CM5), and the loading was comparable to CMD sensors specialized for maximum loading (CM7). This high loading capacity, combined with the reduced nonspecific binding due to the missing carbohydrate structure, presents an innovative matrix for a broad application range of surface plasmon resonance (SPR) experiments since no current commercial SPR biosensor combines these two key features.
我们开发了一种基于三维(3D)聚甘油-聚(乙二醇)的水凝胶,作为一种新型生物传感基质,用于通过表面等离子体共振进行亲和力分析,以便在缺乏碳水化合物结构以减少非特异性结合的情况下,实现用于小分子分析的配体的高负载量。该水凝胶是通过巯基点击化学将用羧酸盐和马来酰亚胺基团功能化的聚甘油与二硫醇化聚(乙二醇)交联而合成的。我们证明,水凝胶涂层能够实现生物分子的高固定能力,并减少非特异性结合。在此,与标准CMD传感器(CM5)相比,碳酸酐酶II的负载程度以及所得的乙酰唑胺结合信号增加了5倍,并且该负载量与专门用于最大负载的CMD传感器(CM7)相当。这种高负载能力,再加上由于缺少碳水化合物结构而导致的非特异性结合减少,为表面等离子体共振(SPR)实验的广泛应用提供了一种创新基质,因为目前没有商业SPR生物传感器兼具这两个关键特性。