CEISAM, Chimie Et Interdisciplinarité, Synthèse, Analyse, Modélisation, UMR CNRS 6230, UFR des Sciences et des Techniques, Université de Nantes, 2 rue de la Houssinière, BP 92208, 44322, Nantes Cedex 3, France.
UFR des Sciences et des Techniques, Université de Nantes, UFIP, UMR CNRS 6286, 2 rue de la Houssinière, BP 92208, 44322, Nantes Cedex 3, France.
Chemistry. 2019 Feb 11;25(9):2358-2365. doi: 10.1002/chem.201805790. Epub 2019 Jan 11.
Sialidases (SAs) hydrolyze sialyl residues from glycoconjugates of the eukaryotic cell surface and are virulence factors expressed by pathogenic bacteria, viruses, and parasites. The catalytic domains of SAs are often flanked with carbohydrate-binding module(s) previously shown to bind sialosides and to enhance enzymatic catalytic efficiency. Herein, non-hydrolyzable multivalent thiosialosides were designed as probes and inhibitors of V. cholerae, T. cruzi, and S. pneumoniae (NanA) sialidases. NanA was truncated from the catalytic and lectinic domains (NanA-L and NanA-C) to probe their respective roles upon interacting with sialylated surfaces and the synthetically designed di- and polymeric thiosialosides. The NanA-L domain was shown to fully drive NanA binding, improving affinity for the thiosialylated surface and compounds by more than two orders of magnitude. Importantly, each thiosialoside grafted onto the polymer was also shown to reduce NanA and NanA-C catalytic activity with efficiency that was 3000-fold higher than that of the monovalent thiosialoside reference. These results extend the concept of multivalency for designing potent bacterial and parasitic sialidase inhibitors.
唾液酸酶(SAs)可从真核细胞表面糖缀合物上水解唾液酸残基,是致病菌、病毒和寄生虫表达的毒力因子。SAs 的催化结构域通常被碳水化合物结合模块(carbohydrate-binding module,CBM)包围,这些模块先前被证明可以结合唾液酸苷,并提高酶的催化效率。本文设计了非水解性多价硫代唾液酸作为霍乱弧菌、克氏锥虫和肺炎链球菌(NanA)唾液酸酶的探针和抑制剂。NanA 从催化和凝集结构域(NanA-L 和 NanA-C)截断,以探测它们在与唾液酸化表面相互作用时各自的作用,以及合成设计的二价和聚合物硫代唾液酸。结果表明,NanA-L 结构域可以完全驱动 NanA 结合,提高了对硫代唾液酸化表面和化合物的亲和力,增加了两个数量级以上。重要的是,接枝到聚合物上的每个硫代唾液酸也被证明可以降低 NanA 和 NanA-C 的催化活性,其效率比单价硫代唾液酸参考物高 3000 倍。这些结果扩展了多价设计强效细菌和寄生虫唾液酸酶抑制剂的概念。