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实时电化学 PCR 与 DNA 插入型氧化还原探针。

Real-time electrochemical PCR with a DNA intercalating redox probe.

机构信息

Laboratoire d'Electrochimie Moléculaire, UMR CNRS 7591, Université Paris Diderot, Paris, France.

出版信息

Anal Chem. 2011 Mar 1;83(5):1815-21. doi: 10.1021/ac1033374. Epub 2011 Jan 31.

Abstract

The proof-of-principle of a nonoptical real-time PCR method based on the electrochemical monitoring of a DNA intercalating redox probe that becomes considerably less easily electrochemically detectable once intercalated to the amplified double-stranded DNA is demonstrated. This has been made possible thanks to the finding of a redox intercalator that (i) strongly and specifically binds to the amplified double-stranded DNA, (ii) does not significantly inhibit PCR, (iii) is chemically stable under PCR cycling, and (iv) is sensitively detected by square wave voltammetry during PCR cycling. Among the different DNA intercalating redox probes that we have investigated, namely, methylene blue, Os(bpy)(2)phen, Os(bpy)(2)DPPZ, Os(4,4'-dimethyl-bpy)(2)DPPZ and Os(4,4'-diamino-bpy)(2)DPPZ (with bpy = 2,2'-bipyridine, phen = phenanthroline, and DPPZ = dipyrido[3,2-a:2',3'-c]phenazine), the one and only compound with which it has been possible to demonstrate the proof-of-concept is the Os(bpy)(2)DPPZ. In terms of analytical performances, the methodology described here compares well with optical-based real-time PCRs, offering finally the same advantages than the popular and routinely used SYBR Green-based real-time fluorescent PCR, but with the additional incomes of being potentially much cheaper and easier to integrate in a hand-held miniaturized device.

摘要

基于电化学监测嵌入双链 DNA 的 DNA 嵌入型氧化还原探针的非光学实时 PCR 方法的原理得到了验证。这要归功于发现了一种氧化还原嵌入剂,它 (i) 能与扩增的双链 DNA 强烈且特异性结合,(ii) 不会显著抑制 PCR,(iii) 在 PCR 循环中化学稳定,以及 (iv) 在 PCR 循环中通过方波伏安法敏感地检测。在我们研究的不同 DNA 嵌入型氧化还原探针中,即亚甲蓝、Os(bpy)(2)phen、Os(bpy)(2)DPPZ、Os(4,4'-dimethyl-bpy)(2)DPPZ 和 Os(4,4'-diamino-bpy)(2)DPPZ(其中 bpy = 2,2'-联吡啶,phen = 菲咯啉,和 DPPZ = 二吡啶并[3,2-a:2',3'-c]吩嗪),只有 Os(bpy)(2)DPPZ 才有可能证明这一概念。就分析性能而言,这里描述的方法与基于光学的实时 PCR 相当,最终提供了与流行且常规使用的基于 SYBR Green 的实时荧光 PCR 相同的优势,但具有潜在的更便宜和更容易集成到手持式小型设备中的额外优势。

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