Department of Medicinal and Life Sciences, Faculty of Pharmaceutical Sciences, Tokyo University of Science, 2641 Yamazaki, Noda, Chiba 278-8510, Japan.
Department of Neurology and Neurological Science, Graduate School of Medical and Dental Sciences, Tokyo Medical and Dental University, 1-5-45, Yushima, Bunkyo-Ku, Tokyo 113-8519, Japan.
Org Biomol Chem. 2022 Nov 2;20(42):8243-8258. doi: 10.1039/d2ob01575g.
Recently, double-stranded oligonucleotide therapeutics with A-type duplex structures such as short interfering RNAs have gained considerable attention. We have reported the synthesis of cationic oligosaccharides that selectively bind to A-type oligonucleotide duplexes. In particular, oligodiaminogalactose (ODAGal) has a strong stabilizing effect on A-type oligonucleotide duplexes. However, an efficient synthetic method has not been established for ODAGals and the properties of ODAGals have been investigated only up to 4mer. The most crucial problem of the synthesis was side reactions on a -methoxybenzyl (PMB) protecting group of a 3-hydroxy group. In this paper, the benzyl (Bn) group was chosen as a protecting group of the 3-hydroxy group to suppress the side reactions on protecting groups, and the yields of glycosylation reactions were significantly improved. Moreover, optimization of the conditions for the deprotection of the Bn groups allowed the efficient synthesis of fully deprotected ODAGals, and ODAGal 5mer and 6mer were synthesized for the first time. In addition, we systematically investigated the effects of these ODAGals on the properties of several oligonucleotide duplexes. It was found that ODAGal 4-6mers stabilized the A-type oligonucleotide duplexes thermally and biologically, typically without their structural changes and the effect was notable with longer ODAGals.
最近,具有 A 型双螺旋结构的双链寡核苷酸疗法,如短干扰 RNA,受到了相当多的关注。我们已经报道了阳离子寡糖的合成,这些寡糖可以选择性地与 A 型寡核苷酸双链结合。特别是,二氨基半乳糖(ODAGal)对 A 型寡核苷酸双链具有很强的稳定作用。然而,ODAGal 的高效合成方法尚未建立,并且仅对 4 聚体的 ODAGal 进行了性质研究。合成中最关键的问题是 3-羟基的 -甲氧基苄基(PMB)保护基上的副反应。在本文中,选择苄基(Bn)作为 3-羟基的保护基,以抑制保护基上的副反应,糖苷化反应的产率显著提高。此外,优化脱保护 Bn 基团的条件可以有效地合成完全脱保护的 ODAGal,并且首次合成了 ODAGal 5 聚体和 6 聚体。此外,我们系统地研究了这些 ODAGal 对几种寡核苷酸双链性质的影响。结果发现,ODAGal 4-6 聚体在热和生物学上稳定了 A 型寡核苷酸双链,通常不会改变其结构,并且长链 ODAGal 的效果更为显著。