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用于生物有机化学和药物化学应用的三唑修饰核酸。

Triazole-Modified Nucleic Acids for the Application in Bioorganic and Medicinal Chemistry.

作者信息

Baraniak Dagmara, Boryski Jerzy

机构信息

Institute of Bioorganic Chemistry, Polish Academy of Sciences, Noskowskiego 12/14, 61-704 Poznan, Poland.

出版信息

Biomedicines. 2021 May 31;9(6):628. doi: 10.3390/biomedicines9060628.

Abstract

This review covers studies which exploit triazole-modified nucleic acids in the range of chemistry and biology to medicine. The 1,2,3-triazole unit, which is obtained via click chemistry approach, shows valuable and unique properties. For example, it does not occur in nature, constitutes an additional pharmacophore with attractive properties being resistant to hydrolysis and other reactions at physiological pH, exhibits biological activity (i.e., antibacterial, antitumor, and antiviral), and can be considered as a rigid mimetic of amide linkage. Herein, it is presented a whole area of useful artificial compounds, from the clickable monomers and dimers to modified oligonucleotides, in the field of nucleic acids sciences. Such modifications of internucleotide linkages are designed to increase the hybridization binding affinity toward native DNA or RNA, to enhance resistance to nucleases, and to improve ability to penetrate cell membranes. The insertion of an artificial backbone is used for understanding effects of chemically modified oligonucleotides, and their potential usefulness in therapeutic applications. We describe the state-of-the-art knowledge on their implications for synthetic genes and other large modified DNA and RNA constructs including non-coding RNAs.

摘要

本综述涵盖了在化学、生物学及医学领域利用三唑修饰核酸的研究。通过点击化学方法获得的1,2,3 - 三唑单元具有宝贵且独特的性质。例如,它在自然界中不存在,构成了一个具有吸引人特性的额外药效基团,在生理pH值下对水解和其他反应具有抗性,具有生物活性(即抗菌、抗肿瘤和抗病毒),并且可被视为酰胺键的刚性模拟物。本文介绍了核酸科学领域中从可点击单体和二聚体到修饰寡核苷酸的一整个有用人工化合物领域。核苷酸间连接的此类修饰旨在增加对天然DNA或RNA的杂交结合亲和力,增强对核酸酶的抗性,并提高穿透细胞膜的能力。人工主链的插入用于理解化学修饰寡核苷酸的作用及其在治疗应用中的潜在用途。我们描述了关于它们对合成基因以及包括非编码RNA在内的其他大型修饰DNA和RNA构建体影响的最新知识。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c4f7/8229351/ad831def74a0/biomedicines-09-00628-g001.jpg

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