Dipartimento di Biotecnologie Mediche e Medicina Traslazionale, Università degli Studi di Milano, Via Saldini 50, 20133 Milano, Italy.
Dipartimento di Scienze del Farmaco, Università degli Studi del Piemonte Orientale, Largo Donegani 2, 28100 Novara, Italy.
Bioorg Med Chem. 2018 Nov 15;26(21):5682-5690. doi: 10.1016/j.bmc.2018.10.016. Epub 2018 Oct 19.
Streptococcus pneumoniae (SP) is a common human pathogen associated with a broad spectrum of diseases and it is still a leading cause of mortality and morbidity worldwide, especially in children. Moreover, SP is increasingly associated with drug resistance. Vaccination against the pathogen may thus represent an important strategy to overcome its threats to human health. In this context, revealing the molecular determinants of SP immunoreactivity may be relevant for the development of novel molecules with therapeutic perspectives as vaccine components. Serogroup 19 comprises the immune-cross reactive types 19F, 19A, 19B and 19C and it accounts for a high percentage of invasive pneumococcal diseases, mainly caused by serotypes 19F and 19A. Herein, we report the synthesis and biological evaluation of an aminopropyl derivative of the trisaccharide repeating unit of SP 19A. We compare two different synthetic strategies, based on different disconnections between the three monosaccharides which make up the final trisaccharide, to define the best approach for the preparation of the trisaccharide. Synthetic accessibility to the trisaccharide repeating unit lays the basis for the development of more complex biopolymer as well as saccharide conjugates. We also evaluate the binding affinity of the trisaccharide for anti-19A and anti-19F sera and discuss the relationship between the chemical properties of the trisaccharide unit and biological activity.
肺炎链球菌(SP)是一种常见的人类病原体,与广泛的疾病有关,它仍然是全球死亡率和发病率的主要原因,特别是在儿童中。此外,SP 越来越与耐药性有关。因此,针对病原体的疫苗接种可能代表着克服其对人类健康威胁的重要策略。在这种情况下,揭示 SP 免疫原性的分子决定因素可能与开发具有治疗前景的新型分子作为疫苗成分有关。血清型 19 包括免疫交叉反应性的 19F、19A、19B 和 19C 型,它占侵袭性肺炎球菌病的很大比例,主要由血清型 19F 和 19A 引起。在此,我们报告了肺炎链球菌 19A 三糖重复单元的氨基丙基衍生物的合成和生物学评价。我们比较了两种不同的合成策略,这些策略基于构成最终三糖的三种单糖之间的不同断开,以确定制备三糖的最佳方法。三糖重复单元的合成可及性为更复杂的生物聚合物以及糖缀合物的开发奠定了基础。我们还评估了三糖对抗 19A 和抗 19F 血清的结合亲和力,并讨论了三糖单元的化学性质与生物学活性之间的关系。