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Kinetic sequence discrimination of cationic bis-PNAs upon targeting of double-stranded DNA.

机译:靶向双链DNA的阳离子bis-PNAs的动力学序列判别。

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摘要

Strand displacement binding kinetics of cationic pseudoisocytosine-containing linked homopyrimidine peptide nucleic acids (bis-PNAs) to fully matched and singly mismatched decapurine targets in double-stranded DNA (dsDNA) are reported. PNA-dsDNA complex formation was monitored by gel mobility shift assay and pseudo-first order kinetics of binding was obeyed in all cases studied. The kinetic specificity of PNA binding to dsDNA, defined as the ratio of the initial rates of binding to matched and mismatched targets, increases with increasing ionic strength, whereas the apparent rate constant for bis-PNA-dsDNA complex formation decreases exponentially. Surprisingly, at very low ionic strength two equally charged bis-PNAs which have the same sequence of nucleobases but different linkers and consequently different locations of three positive charges differ in their specificity of binding by one order of magnitude. Under appropriate experimental conditions the kinetic specificity for bis-PNA targeting of dsDNA is as high as 300. Thus multiply charged cationic bis-PNAs containing pseudoisocytosines (J bases) in the Hoogsteen strand combined with enhanced binding affinity also exhibit very high sequence specificity, thereby making such reagents extremely efficient for sequence-specific targeting of duplex DNA.
机译:报道了含阳离子假异胞嘧啶的连接的高嘧啶肽核酸(bis-PNA)与双链DNA(dsDNA)中完全匹配和单错配的癸硫氨酸靶标的链置换结合动力学。通过凝胶迁移率变动分析监测PNA-dsDNA复合物的形成,并且在所有研究的案例中均遵循伪一级动力学结合动力学。 PNA与dsDNA结合的动力学特异性(定义为与匹配和错配靶标的初始结合速率之比)随离子强度的增加而增加,而bis-PNA-dsDNA复合物形成的表观速率常数则呈指数下降。令人惊讶地,在非常低的离子强度下,两个具有相同电荷的双-PNA,其具有相同的核碱基序列,但具有不同的连接体,因此三个正电荷的位置不同,其结合特异性相差一个数量级。在适当的实验条件下,针对dsDNA的bis-PNA的动力学特异性高达300。因此,在Hoogsteen链中含有假异胞嘧啶(J碱基)的多电荷阳离子bis-PNAs与增强的结合亲和力相结合,也显示出很高的序列特异性,因此使此类试剂对于双链DNA的序列特异性靶向极为有效。

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