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XNA字母表。

The XNA alphabet.

作者信息

Chaput John C, Egli Martin, Herdewijn Piet

机构信息

Department of Pharmaceutical Sciences, University of California, Irvine, CA 92697-3958, United States.

Department of Chemistry, University of California, Irvine, CA 92697-3958, United States.

出版信息

Nucleic Acids Res. 2025 Jul 8;53(13). doi: 10.1093/nar/gkaf635.

Abstract

Inspired by nature, chemists have spent the last 50 years systematically designing and synthesizing a vast array of sugar-modified nucleic acids, so-called xenonucleic acids (XNAs), collectively forming what we now describe as the XNA alphabet. Within the alphabet, systems can be categorized into two major groups: those capable of interacting with natural nucleic acids and those that do not cross-pair with DNA or RNA. The sugar component of XNAs plays a crucial role in defining their conformational space, which, in turn, influences their hybridization properties and potential applications across biotechnology and synthetic biology. This review provides an overview of sugar-modified XNA systems developed to date as well as the geometric parameters and physicochemical principles that have enhanced our understanding of XNA conformational behavior, particularly in relation to their orthogonality to (i.e. inability to cross-pair with) natural nucleic acids. These insights are essential for developing a more rational approach to key processes such as XNA replication and evolution, ultimately paving the way for applications in areas including synthetic genetics, nucleic acid therapeutics, diagnostics, and nanotechnology.

摘要

受自然启发,化学家在过去50年里系统地设计并合成了大量糖修饰核酸,即所谓的异源核酸(XNA),共同构成了我们现在所说的XNA字母表。在这个字母表中,系统可分为两大类:能够与天然核酸相互作用的,以及不能与DNA或RNA交叉配对的。XNA的糖组分在定义其构象空间方面起着关键作用,而构象空间又反过来影响其杂交特性以及在生物技术和合成生物学中的潜在应用。本综述概述了迄今为止开发的糖修饰XNA系统,以及增强我们对XNA构象行为理解的几何参数和物理化学原理,特别是关于它们与天然核酸的正交性(即不能与天然核酸交叉配对)。这些见解对于开发更合理的XNA复制和进化等关键过程的方法至关重要,最终为合成遗传学、核酸治疗、诊断和纳米技术等领域的应用铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6ee1/12255307/226d3ccc756a/gkaf635figgra1.jpg

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