BioOrg NMR Lab, Department of Biotechnology and Biosciences, University of Milano-Bicocca, P.zza della Scienza, 2, 20126 Milan, Italy.
Department of Chemistry, Life Sciences and Environmental Sustainability, Parco Area delle Scienze 17/a, 43124 Parma, Italy.
Bioorg Chem. 2023 Sep;138:106613. doi: 10.1016/j.bioorg.2023.106613. Epub 2023 May 18.
We report the synthesis and biological characterization of a novel class of multivalent glycoconjugates as hit compounds for the design of new antiadhesive therapies against urogenital tract infections (UTIs) caused by uropathogenic E. coli strains (UPEC). The first step of UTIs is the molecular recognition of high mannose N-glycan expressed on the surface of urothelial cells by the bacterial lectin FimH, allowing the pathogen adhesion required for mammalian cell invasion. The inhibition of FimH-mediated interactions is thus a validated strategy for the treatment of UTIs. To this purpose, we designed and synthesized d-mannose multivalent dendrons supported on a calixarene core introducing a significant structural change from a previously described family of dendrimers bearing the same dendrons units on a flexible pentaerythritol scaffold core. The new molecular architecture increased the inhibitory potency against FimH-mediated adhesion processes by about 16 times, as assessed by yeast agglutination assay. Moreover, the direct molecular interaction of the new compounds with FimH protein was assessed by on-cell NMR experiments acquired in the presence of UPEC cells.
我们报告了一类新型多价糖缀合物的合成和生物学特性,这些缀合物是设计针对由尿路致病性大肠杆菌(UPEC)引起的尿路感染(UTI)的新型抗黏附治疗方法的有效化合物。UTI 的第一步是细菌凝集素 FimH 对尿路上皮细胞表面表达的高甘露糖 N-聚糖的分子识别,使病原体能够与哺乳动物细胞黏附,从而实现入侵。因此,抑制 FimH 介导的相互作用是治疗 UTI 的有效策略。为此,我们设计并合成了在杯芳烃核心上支持的 D-甘露糖多价树突,与之前描述的一系列具有相同树突单元的树枝状聚合物相比,该核心在柔性季戊四醇支架核心上引入了显著的结构变化。新的分子结构通过酵母凝集试验评估,增加了对 FimH 介导的黏附过程的抑制效力约 16 倍。此外,通过在存在 UPEC 细胞的情况下进行的细胞内 NMR 实验评估了新化合物与 FimH 蛋白的直接分子相互作用。