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DNA聚合酶催化的重复六核苷酸序列的延伸:在创建重复DNA文库中的应用。

DNA polymerase-catalyzed elongation of repetitive hexanucleotide sequences: application to creation of repetitive DNA libraries.

作者信息

Kurihara Hiroyuki, Nagamune Teruyuki

机构信息

Department of Chemistry and Biotechnology, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.

出版信息

Biotechnol Prog. 2004 Nov-Dec;20(6):1855-60. doi: 10.1021/bp049925z.

DOI:10.1021/bp049925z
PMID:15575722
Abstract

We demonstrate the elongation of various hexanucleotide sequences with thermophilic DNA polymerase, under isothermal or thermal cyclic reaction conditions. We prepared 10 types of double repeat hexanucleotide duplexes with various GC compositions containing between 0 and 6 GC nucleotides per repeat and incubated these duplexes with thermophilic Taq DNA polymerase and dNTPs at various temperatures. All of the model repetitive short duplexes were elongated under the isothermal incubation conditions, although there were some differences in the elongation efficiencies derived from the GC composition in the repetitive sequences. It was also found that all of the model repetitive duplexes were extended more effectively by a 3-step thermal cyclic reaction involving denaturation, annealing, and extension. On the basis of this technique, we prepared a glutamate-encoding short repetitive duplex and created long repetitive DNAs under isothermal and thermal cyclic reaction conditions. DNA sequencing analysis of the cloned repetitive DNA revealed that well-ordered long repetitive DNAs of various chain lengths were created by this DNA polymerase-catalyzed ligation method, and these were easily cloned into vectors by the TA-cloning method. This method could be useful for obtaining DNAs encoding arbitrary long repetitive amino acid sequences more effectively than the conventional T4 ligase-catalyzed ligation method.

摘要

我们展示了在等温或热循环反应条件下,嗜热DNA聚合酶对各种六核苷酸序列的延伸。我们制备了10种具有不同GC组成的双重复六核苷酸双链体,每个重复中含有0至6个GC核苷酸,并在不同温度下将这些双链体与嗜热Taq DNA聚合酶和dNTPs一起孵育。所有模型重复短双链体在等温孵育条件下均能延伸,尽管重复序列中的GC组成导致延伸效率存在一些差异。还发现,通过包括变性、退火和延伸的三步热循环反应,所有模型重复双链体都能更有效地延伸。基于该技术,我们制备了编码谷氨酸的短重复双链体,并在等温及热循环反应条件下创建了长重复DNA。对克隆的重复DNA进行的DNA测序分析表明,通过这种DNA聚合酶催化的连接方法创建了各种链长的有序长重复DNA,并且这些DNA通过TA克隆方法很容易克隆到载体中。与传统的T4连接酶催化的连接方法相比,该方法可能有助于更有效地获得编码任意长重复氨基酸序列的DNA。

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