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Targeting DNA G-quadruplex structures with peptide nucleic acids

机译:用肽核酸靶向DNA G-四链体结构

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Regulation of genetic functions based on targeting DNA or RNA sequences with complementary oligonucleotides is especially attractive in the post-genome era. Oligonucleotides can be rationally designed to bind their targets based on simple nucleic acid base pairing rules. However, the use of natural DNA and RNA oligonucleotides as targeting probes can cause numerous off-target effects. In addition, natural nucleic acids are prone to degradation in vivo by various nucleases. To address these problems, nucleic acid mimics such as peptide nucleic acids (PNA) have been developed. They are more stable, show less off-target effects, and, in general, have better binding affinity to their targets. However, their high affinity to DNA can reduce their sequence-specificity. The formation of alternative DNA secondary structures, such as the G-quadruplex, provides an extra level of specificity as targets for PNA oligomers. PNA probes can target the loops of G-quadruplex, invade the core by forming PNA-DNA guanine-tetrads, or bind to the open bases on the complementary cytosine-rich strand. Not only could the development of such G-quadruplex-specific probes allow regulation of gene expression, but it will also provide a means to clarify the biological roles G-quadruplex structures may possess.
机译:在后基因组时代,基于用互补寡核苷酸靶向DNA或RNA序列的遗传功能调控特别有吸引力。寡核苷酸可以基于简单的核酸碱基配对规则合理地设计以结合其靶标。然而,使用天然 DNA 和 RNA 寡核苷酸作为靶向探针会导致许多脱靶效应。此外,天然核酸在体内容易被各种核酸酶降解。为了解决这些问题,已经开发了核酸模拟物,例如肽核酸(PNA)。它们更稳定,显示出更少的脱靶效应,并且通常与靶标具有更好的结合亲和力。然而,它们对 DNA 的高亲和力会降低它们的序列特异性。替代DNA二级结构(如G-四链体)的形成为PNA寡聚体的靶标提供了额外的特异性。PNA 探针可以靶向 G-四链体的环,通过形成 PNA-DNA 鸟嘌呤四四体侵入核心,或与富含互补胞嘧啶的链上的开放碱基结合。这种G-四链体特异性探针的开发不仅可以调节基因表达,而且还将提供一种方法来阐明G-四链体结构可能具有的生物学作用。

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