Chemical modifications of artificial restriction DNA cutter (ARCUT) to promote its in vivo and in vitro applications.

Makoto Komiyama
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引用次数: 5

Abstract

Recently, completely chemistry-based tools for site-selective scission of DNA (ARCUT) have been prepared by combining 2 strands of pseudo-complementary PNA (pcPNA: site-selective activator) and a Ce(IV)-EDTA complex (molecular scissors). Its site-specificity is sufficient to cut the whole human genome at one predetermined site. In this first-generation ARCUT, however, there still remain several problems to be solved for wider applications. This review presents recent approaches to solve these problems. They are divided into (i) covalent modification of pcPNA with other functional groups and (ii) new strategies using conventional PNA, in place of pcPNA, as site-selective activator. Among various chemical modifications, conjugation with positively-charged nuclear localization signal peptide is especially effective. Furthermore, unimolecular activators, a single strand of which successfully activates the target site in DNA for site-selective scission, have been also developed. As the result of these modifications, the site-selective scission by Ce(IV)-EDTA was achieved promptly even under high salt conditions which are otherwise unfavourable for double-duplex invasion. Furthermore, it has been shown that "molecular crowding effect," which characterizes the inside of living cells, enormously promotes the invasion, and thus the invasion seems to proceed effectively and spontaneously in the cells. Strong potential of pcPNA for further applications in vivo and in vitro has been confirmed.

人工限制性DNA切割剂(ARCUT)的化学修饰,以促进其在体内和体外的应用。
最近,通过结合2股伪互补PNA(pcPNA:位点选择性激活剂)和Ce(IV)-EDTA复合物(分子剪刀),已经制备了用于DNA位点选择性切割的完全基于化学的工具(ARCUT)。其位点特异性足以在一个预定位点切割整个人类基因组。然而,在第一代ARCUT中,对于更广泛的应用,仍有几个问题需要解决。这篇综述介绍了解决这些问题的最新方法。它们分为(i)用其他官能团共价修饰pcPNA和(ii)使用传统PNA代替pcPNA作为位点选择性激活剂的新策略。在各种化学修饰中,与带正电荷的核定位信号肽结合尤其有效。此外,还开发了单分子激活剂,其单链成功地激活DNA中的靶位点进行位点选择性切割。由于这些修饰,即使在高盐条件下,Ce(IV)-EDTA也能迅速实现位点选择性断裂,否则不利于双相入侵。此外,研究表明,活细胞内部的“分子拥挤效应”极大地促进了入侵,因此入侵似乎在细胞中有效而自发地进行。pcPNA在体内外进一步应用的强大潜力已经得到证实。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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