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首页> 外文期刊>Bioconjugate Chemistry >Hydrophilic and Cell-Penetrable Pyrrolidinyl Peptide Nucleic Acid via Post-synthetic Modification with Hydrophilic Side Chains
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Hydrophilic and Cell-Penetrable Pyrrolidinyl Peptide Nucleic Acid via Post-synthetic Modification with Hydrophilic Side Chains

机译:通过亲水侧链的合成后修饰后亲水和细胞可渗透吡咯烷基肽核酸

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摘要

Peptide nucleic acid (PNA) is a nucleic acid mimic in which the deoxyribose phosphate was replaced by a peptide-like backbone. The absence of negative charge in the PNA backbone leads to several unique behaviors including a stronger binding and salt independency of the PNA-DNA duplex stability. However, PNA possesses poor aqueous solubility and cannot directly penetrate cell membranes. These are major obstacles that limit in vivo applications of PNA. In previous strategies, the PNA can be conjugated to macromolecular carriers or modified with positively charged side chains such as guanidinium groups to improve the aqueous solubility and cell permeability. In general, a preformed modified PNA monomer was required. In this study, a new approach for post-synthetic modification of PNA backbone with one or more hydrophilic groups was proposed. The PNA used in this study was the conformationally constrained pyrrolidinyl PNA with prolyl-2-amino-cyclopentanecarboxylic acid dipeptide backbone (acpcPNA) that shows several advantages over the conventional PNA. The aldehyde modifiers carrying different linkers (alkylene and oligo(ethylene glycol)) and end groups (-OH, -NH2, and guanidinium) were synthesized and attached to the backbone of modified acpcPNA by reductive alkylation. The hybrids between the modified acpcPNAs and DNA exhibited comparable or superior thermal stability with base-pairing specificity similar to those of unmodified acpcPNA. Moreover, the modified apcPNAs also showed the improvement of aqueous solubility (10-20 folds compared to unmodified PNA) and readily penetrate cell membranes without requiring any special delivery agents. This study not only demonstrates the practicality of the proposed post-synthetic modification approach for PNA modification, which could be readily applied to other systems, but also opens up opportunities for using pyrrolidinyl PNA in various applications such as intracellular RNA sensing, specific gene detection, and antisense and antigene therapy.
机译:肽核酸(PNA)是核酸模拟,其中脱氧磷酸磷酸盐被肽状骨架代替。在PNA骨架中没有负电荷导致几种独特的行为,包括PNA-DNA双相稳定性的更强的结合和盐独立性。然而,PNA具有差的水溶性并且不能直接穿透细胞膜。这些是PCNA的体内应用限制的主要障碍。在以前的策略中,PNA可以与大分子载体缀合或用带正电的侧链进行修饰,例如胍基团,以改善含水溶解度和细胞渗透性。通常,需要预先形成的修饰的PNA单体。在该研究中,提出了一种具有一种或多种亲水基团的PNA骨架的合成改性的新方法。本研究中使用的PNA是具有脯氨酰-2-氨基 - 环戊烷基羧酸二肽骨架(ACPCPNA)的构象约束的吡咯烷基PNA,其显示出与常规PNA上的若干优点。通过还原烷基化合成携带不同接头(亚烷基和亚硫醇(乙二醇))和端基(-OH,-NH 2和胍)的醛改性剂,并连接到改性的ACPCPNA的主链上。修饰的ACPCPNA和DNA之间的杂种具有与未修饰的ACPCPNA类似的基础配对特异性的相当或优异的热稳定性。此外,修饰的APCPNA还显示出水溶性的改善(与未修饰的PNA相比,10-20倍),并且易于渗透细胞膜而不需要任何特殊的递送剂。这项研究不仅证明了PACA改性的提出的合成后修饰方法的实用性,这可以容易地应用于其他系统,而且还为在各种应用中使用吡咯烷基PNA的机会,例如细胞内RNA感应,特定基因检测,和反义和抗原治疗。

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  • 来源
    《Bioconjugate Chemistry》 |2017年第9期|共9页
  • 作者单位

    Naresuan Univ Dept Chem Fac Sci Muang 65000 Phitsanulok Thailand;

    Chulalongkorn Univ Dept Chem Organ Synth Res Unit Fac Sci Phayathai Rd Bangkok 10330 Thailand;

    Chulalongkorn Univ Dept Chem Organ Synth Res Unit Fac Sci Phayathai Rd Bangkok 10330 Thailand;

    Chulalongkorn Univ Program Biotechnol Fac Sci Phayathai Rd Bangkok 10330 Thailand;

    Chulalongkorn Univ Dept Chem Fac Sci Phayathai Rd Bangkok 10330 Thailand;

    Chulalongkorn Univ Dept Chem Fac Sci Phayathai Rd Bangkok 10330 Thailand;

    Chulalongkorn Univ Dept Microbiol Fac Sci Phayathai Rd Bangkok 10330 Thailand;

    Rajamankala Univ Technol Rattanakosin Wang Klai Kangwon Campus Huahin 77110 Prachuap Khiri Thailand;

    Naresuan Univ Dept Chem Fac Sci Muang 65000 Phitsanulok Thailand;

    Chulalongkorn Univ Dept Chem Organ Synth Res Unit Fac Sci Phayathai Rd Bangkok 10330 Thailand;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
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