Rapid LAMP-driven strand displacement for PAM-free CRISPR-based pathogen diagnostics

IF 8 1区 化学 Q1 CHEMISTRY, ANALYTICAL
Tian Meng , Zhiyun Lin , Lin Lu , Baokai Shao , Yanchi Luo , Yihua Ren , Jiquan Zhang , Masoud Negahdary , Haimei Mao , Yun Sun , Yi Wan , Fengge Song
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Abstract

Accurate and rapid nucleic acid testing for pathogen diagnostics is central to controlling the spread of infectious diseases. Here, we report an assay for rapid bacterial DNA detection via PAM (protospacer adjacent motif)-free Cas12f biosensor. The assay, which is named LSD12f (LAMP-driven strand displacement for Cas12f detection), involved multiplexed loop-mediated isothermal amplification (LAMP) followed by isothermal strand displacement reaction and Cas12f-mediated cleavage of a quenched fluorophore. The core of LSD12f was engineered with forward/reverse inner primers, which made LAMP products recognized and cut by enzyme digestion, triggering single-stranded DNA (ssDNA) production. Moreover, CRISPR-Cas12f could especially recognize target ssDNA region without PAM sites to reduce false-positive amplification. LSD12f could detect Streptococcus pyogenes in blood and flesh samples within 60 min with 100 % specificity and 100 % accuracy when validated by quantitative PCR (qPCR). LSD12f showed impressive specificity and sensitivity as a rapid and adaptive toolkit to broaden the use of molecular diagnostics.

基于无 PAM CRISPR 的病原体诊断的快速 LAMP 驱动的链置换
准确、快速的病原体诊断核酸检测是控制传染病传播的核心。在这里,我们报告了一种通过不含 PAM(protospacer adjacent motif)的 Cas12f 生物传感器快速检测细菌 DNA 的方法。该检测方法被命名为 LSD12f(用于 Cas12f 检测的 LAMP 驱动的链置换),包括多重环介导等温扩增(LAMP),然后进行等温链置换反应和 Cas12f 介导的淬灭荧光团裂解。LSD12f 的核心设计有正向/反向内引物,可使 LAMP 产物被酶消化识别和切割,从而引发单链 DNA(ssDNA)的产生。此外,CRISPR-Cas12f 还能识别没有 PAM 位点的目标 ssDNA 区域,从而减少假阳性扩增。经定量 PCR(qPCR)验证,LSD12f 可在 60 分钟内检测血液和肉类样本中的化脓性链球菌,特异性和准确性均为 100%。LSD12f 的特异性和灵敏度令人印象深刻,是一种快速、适应性强的工具包,可扩大分子诊断的应用范围。
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来源期刊
Sensors and Actuators B: Chemical
Sensors and Actuators B: Chemical 工程技术-电化学
CiteScore
14.60
自引率
11.90%
发文量
1776
审稿时长
3.2 months
期刊介绍: Sensors & Actuators, B: Chemical is an international journal focused on the research and development of chemical transducers. It covers chemical sensors and biosensors, chemical actuators, and analytical microsystems. The journal is interdisciplinary, aiming to publish original works showcasing substantial advancements beyond the current state of the art in these fields, with practical applicability to solving meaningful analytical problems. Review articles are accepted by invitation from an Editor of the journal.
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