{"title":"Highly Effective Chemical Ligation of DNA and l-aTNA","authors":"Hikari Okita, Keiji Murayama, Hiroyuki Asanuma","doi":"10.1002/cpz1.70140","DOIUrl":null,"url":null,"abstract":"<p>Chemical ligation of nucleic acids is a significant strategy for the establishment of a variety of functional biological tools and other applications. However, the conventional methodology has been suffering from low reaction efficiency or generation of unnatural structures at the ligation site. This article describes an effective chemical ligation method that connects the hydroxyl group and the monophosphate group at the nick site on the template, generating a natural phosphodiester bond. The method uses only <i>N</i>-cyanoimidazole (CNIm) and divalent metal cations to achieve chemical ligation in a template-directed manner, which can be applied to the ligations of not only DNA but also artificial nucleic acids such as <i>acyclic</i> <span>l</span>-threoninol nucleic acid (<span>l</span>-<i>a</i>TNA). Quantitative ligation is available within 10 min for <span>l</span>-<i>a</i>TNA fragments on an <span>l</span>-<i>a</i>TNA template, and within 2 hr for DNA fragments on a DNA template under optimized conditions. The effective chemical ligation system reported here will enable the development of biotechnology and nanotechnology, including exploration of <span>l</span>-<i>a</i>TNA aptamer via in vitro selection, chemical synthesis of genome-sized DNA and <span>l</span>-<i>a</i>TNA, functionalization of nanostructure, and creation of an <span>l</span>-<i>a</i>TNA-based artificial life in the future. © 2025 Wiley Periodicals LLC.</p><p><b>Basic Protocol 1</b>: Chemical ligation using CNIm and divalent metal cation</p><p><b>Basic Protocol 2</b>: Imaging analysis of ligation reaction</p><p><b>Basic Protocol 3</b>: Mass spectrometry of ligation products</p><p><b>Support Protocol</b>: Kinetic analysis</p>","PeriodicalId":93970,"journal":{"name":"Current protocols","volume":"5 5","pages":""},"PeriodicalIF":2.2000,"publicationDate":"2025-05-07","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Current protocols","FirstCategoryId":"1085","ListUrlMain":"https://currentprotocols.onlinelibrary.wiley.com/doi/10.1002/cpz1.70140","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
Chemical ligation of nucleic acids is a significant strategy for the establishment of a variety of functional biological tools and other applications. However, the conventional methodology has been suffering from low reaction efficiency or generation of unnatural structures at the ligation site. This article describes an effective chemical ligation method that connects the hydroxyl group and the monophosphate group at the nick site on the template, generating a natural phosphodiester bond. The method uses only N-cyanoimidazole (CNIm) and divalent metal cations to achieve chemical ligation in a template-directed manner, which can be applied to the ligations of not only DNA but also artificial nucleic acids such as acyclic l-threoninol nucleic acid (l-aTNA). Quantitative ligation is available within 10 min for l-aTNA fragments on an l-aTNA template, and within 2 hr for DNA fragments on a DNA template under optimized conditions. The effective chemical ligation system reported here will enable the development of biotechnology and nanotechnology, including exploration of l-aTNA aptamer via in vitro selection, chemical synthesis of genome-sized DNA and l-aTNA, functionalization of nanostructure, and creation of an l-aTNA-based artificial life in the future. © 2025 Wiley Periodicals LLC.
Basic Protocol 1: Chemical ligation using CNIm and divalent metal cation
Basic Protocol 2: Imaging analysis of ligation reaction
Basic Protocol 3: Mass spectrometry of ligation products
Support Protocol: Kinetic analysis
高效化学连接DNA和l-aTNA
核酸的化学连接是建立多种功能性生物工具和其他应用的重要策略。然而,传统的方法一直存在反应效率低或在结扎部位产生非自然结构的问题。本文描述了一种有效的化学连接方法,将羟基与模板上缺口处的单磷酸基团连接起来,生成天然的磷酸二酯键。该方法仅使用n -氰咪唑(CNIm)和二价金属阳离子,以模板导向的方式实现化学连接,不仅可用于DNA的连接,也可用于无环l-苏氨酸醇核酸(l-aTNA)等人工核酸的连接。在优化条件下,l-aTNA片段在10分钟内可在l-aTNA模板上定量结扎,DNA片段在2小时内可在DNA模板上定量结扎。本文报道的有效的化学连接系统将促进生物技术和纳米技术的发展,包括通过体外选择探索l-aTNA适配体,基因组大小的DNA和l-aTNA的化学合成,纳米结构的功能化,以及未来基于l-aTNA的人工生命的创造。©2025 Wiley期刊有限公司基本方案1:使用CNIm和二价金属阳离子的化学连接基本方案2:连接反应的成像分析基本方案3:连接产物的质谱分析支持方案:动力学分析
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