Glycotechnology Group, Basque Research and Technology Alliance (BRTA) CIC biomaGUNE, Paseo Miramon 194, 20014, Donostia-San Sebastián, Spain.
Current address: Memorial Sloan Kettering Cancer Center New York, New York, 10065, USA.
Chemistry. 2023 Sep 15;29(52):e202301494. doi: 10.1002/chem.202301494. Epub 2023 Aug 10.
The isolation from organisms and readily available glycoproteins has become an increasingly convenient source of N-glycans for multiple applications including glycan microarrays, as reference standards in glycan analysis or as reagents that improve bioavailability of protein and peptide therapeutics through conjugation. A problematic step in the isolation process on a preparative scale can be the attachment of a linker for the improved purification, separation, immobilization and quantification of the glycan structures. Addressing this issue, we firstly aimed for the development of an UV active linker for a fast and reliable attachment to anomeric glycosylamines via urea bond formation. Secondly, we validated the new linker on glycan arrays in a comparative study with a collection of N-glycans which were screened against various lectins. In total, we coupled four structurally varied N-glycans to four different linkers, immobilized all constructs on a microarray and compared their binding affinities to four plant and fungal lectins of widely described specificity. Our study shows that the urea type linker showed an overall superior performance for lectin binding and once more, highlights the often neglected influence of the choice of linker on lectin recognition.
从生物体和现成的糖蛋白中分离出来,已经成为多种应用的一个越来越方便的 N-聚糖来源,包括糖基化微阵列,作为糖基化分析的参考标准,或作为通过缀合提高蛋白质和肽治疗剂生物利用度的试剂。在制备规模的分离过程中,一个有问题的步骤可能是连接子的连接,以改善聚糖结构的纯化、分离、固定化和定量。为了解决这个问题,我们首先旨在开发一种 UV 活性连接子,通过形成脲键,快速可靠地连接到端基糖苷胺。其次,我们在糖基化微阵列上用一组 N-聚糖进行了新连接子的验证研究,这些 N-聚糖与各种凝集素进行了筛选。总的来说,我们将四个结构不同的 N-聚糖与四个不同的连接子偶联,将所有构建体固定在微阵列上,并比较它们与四种具有广泛描述特异性的植物和真菌凝集素的结合亲和力。我们的研究表明,脲型连接子在与凝集素结合方面表现出总体上的优越性,再次强调了连接子选择对凝集素识别的影响往往被忽视。