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基于双切割CRISPR Cas12a和超支化滚环扩增上的双重聚合反应构建的灵敏且具选择性的DNA检测电化学传感器。

Sensitive and selective DNA detecting electrochemical sensor via double cleaving CRISPR Cas12a and dual polymerization on hyperbranched rolling circle amplification.

作者信息

You Juneseok, Park Hyunjun, Lee Hakbeom, Jang Kuewhan, Park Jinsung, Na Sungsoo

机构信息

Department of Mechanical Engineering, Korea University, Seoul, 02841, Republic of Korea.

School of Mechanical and Automotive Engineering, Hoseo University, Asan, 31499, Republic of Korea.

出版信息

Biosens Bioelectron. 2023 Mar 15;224:115078. doi: 10.1016/j.bios.2023.115078. Epub 2023 Jan 10.

Abstract

Electrochemical sensors are widely used for nucleic acid detection. However, they exhibit low sensitivity and specificity. To overcome these limitations, DNA amplification method is necessary. In this study, we introduced CRISPR (Clustered regularly interspaced short palindromic repeats) Cas12a-dependent hyperbranched rolling circle amplification (HRCA) into an electrochemical sensor platform. By resolving the existing false-positive issue of HRCA, CRISPR Cas12a determines the real positive amplification that able to enhance its sensitivity for extremely low concentrations of nucleic acids and specificity for single-point mutations. In detail, CRISPR Cas12a, which activates the nucleic acid amplification reaction, was used for both trans and cis cleavage for the first time. Finally, selectively amplified DNA was detected using a screen-printed electrode. Using the change in surface coverage by DNA, the electrochemical sensor detected a decrease in the redox signal. In summary, combining a novel DNA amplification method and electrochemical sensor platform, our proposed method compensates for the shortcomings of existing RCA and hyperbranched RCA, secures a high sensitivity of 10 aM, and overcomes false-positivity problems. Moreover, such creative applications of CRISPR Cas12a may lead to the expansion of its applications to other nucleic acid amplification methods.

摘要

电化学传感器被广泛用于核酸检测。然而,它们表现出低灵敏度和特异性。为了克服这些限制,DNA扩增方法是必要的。在本研究中,我们将CRISPR(成簇规律间隔短回文重复序列)Cas12a依赖性超分支滚环扩增(HRCA)引入到一个电化学传感器平台中。通过解决HRCA现有的假阳性问题,CRISPR Cas12a确定了能够提高其对极低浓度核酸的灵敏度和对单点突变的特异性的真正阳性扩增。详细地说,激活核酸扩增反应的CRISPR Cas12a首次用于反式和顺式切割。最后,使用丝网印刷电极检测选择性扩增的DNA。利用DNA表面覆盖率的变化,电化学传感器检测到氧化还原信号的降低。总之,结合一种新型DNA扩增方法和电化学传感器平台,我们提出的方法弥补了现有滚环扩增(RCA)和超分支RCA的缺点,确保了10阿摩尔(aM)的高灵敏度,并克服了假阳性问题。此外,CRISPR Cas12a的这种创新性应用可能会导致其应用扩展到其他核酸扩增方法。

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