Meng Melissa, Ducho Christian
Department of Pharmacy, Pharmaceutical and Medicinal Chemistry, Saarland University, Campus C2 3, 66123 Saarbrücken, Germany.
Beilstein J Org Chem. 2018 Jun 4;14:1293-1308. doi: 10.3762/bjoc.14.111. eCollection 2018.
Their unique ability to selectively bind specific nucleic acid sequences makes oligonucleotides promising bioactive agents. However, modifications of the nucleic acid structure are an essential prerequisite for their application in vivo or even in cellulo. The oligoanionic backbone structure of oligonucleotides mainly hampers their ability to penetrate biological barriers such as cellular membranes. Hence, particular attention has been given to structural modifications of oligonucleotides which reduce their overall number of negative charges. One such approach is the site-specific replacement of the negatively charged phosphate diester linkage with alternative structural motifs which are positively charged at physiological pH, thus resulting in zwitterionic or even oligocationic backbone structures. This review provides a general overview of this concept and summarizes research on four according artificial backbone linkages: aminoalkylated phosphoramidates (and related systems), guanidinium groups, -methylthiourea motifs, and nucleosyl amino acid (NAA)-derived modifications. The synthesis and properties of the corresponding oligonucleotide analogues are described.
寡核苷酸具有选择性结合特定核酸序列的独特能力,使其成为有前景的生物活性剂。然而,核酸结构的修饰是其在体内甚至细胞内应用的必要前提。寡核苷酸的寡阴离子主链结构主要阻碍了它们穿透生物屏障如细胞膜的能力。因此,人们特别关注寡核苷酸的结构修饰,以减少其负电荷总数。一种方法是用在生理pH下带正电荷的替代结构基序对带负电荷的磷酸二酯键进行位点特异性取代,从而产生两性离子甚至寡阳离子主链结构。本综述对这一概念进行了概述,并总结了对四种相应人工主链连接的研究:氨基烷基化磷酸二酰胺酯(及相关体系)、胍基、甲基硫脲基序和核苷氨基酸(NAA)衍生的修饰。描述了相应寡核苷酸类似物的合成及性质。