Zhang Yan, Lin Yanan, Li Ruoxuan, Jiang Dawei, Cai Ruiyang, Su Gaoxing, Yu Yanyan, Qu Guangbo
School of Pharmacy, Nantong University, Nantong 226019, China.
School of Environment, Hangzhou Institute for Advanced Study, University of Chinese Academy of Sciences, Hangzhou 310024, China.
Anal Chem. 2025 Jul 1;97(25):13577-13585. doi: 10.1021/acs.analchem.5c02037. Epub 2025 Jun 17.
Pathogen nucleic acid analysis has emerged as an indispensable component of contemporary healthcare systems, serving dual roles in personalized clinical management and population-level disease surveillance. Herein, we present a novel G-quadruplex-integrated CRISPR-Cas biosensing platform that performs in a signal-on mechanism for colorimetric detection of pathogen nucleic acids in one-pot. By harnessing the unique properties of split G4 structures, we develop a universal visual probe that generates a distinct green colorimetric signal upon target recognition, which effectively couples with both Cas12 and Cas13 systems. Using the monkeypox virus (MPXV) B7R gene and a conserved respiratory syncytial virus (RSV) sequence as model targets for Cas12a and Cas13, respectively, we establish a detection workflow combining recombinase polymerase amplification (RPA) with CRISPR-mediated cleavage, visualized through enzymatic mediated color conversion. The tube-in-tube cartridge architecture adopted in this work enables seamless integration of RPA and CRISPR-based detection within a single closed-tube system, effectively eliminating cross-contamination risks. We successfully validate the platform for detection of MPXV in environmental samples and RSV in clinical specimens, achieving a detection limit of 1 copy per test and perfect concordance with PCR methods (40/40 agreement). The colorimetric biosensing platform developed herein demonstrates rapid (<60 min) and facial performance, establishing a novel molecular diagnostic paradigm that achieves laboratory-comparable accuracy for real-time surveillance and point-of-care applications.
病原体核酸分析已成为当代医疗系统中不可或缺的组成部分,在个性化临床管理和人群层面的疾病监测中发挥着双重作用。在此,我们展示了一种新型的整合G-四链体的CRISPR-Cas生物传感平台,该平台以信号开启机制在一锅法中对病原体核酸进行比色检测。通过利用分裂G4结构的独特性质,我们开发了一种通用的视觉探针,在目标识别时产生独特的绿色比色信号,该信号能有效地与Cas12和Cas13系统结合。分别使用猴痘病毒(MPXV)的B7R基因和呼吸道合胞病毒(RSV)的保守序列作为Cas12a和Cas13的模型靶点,我们建立了一种将重组酶聚合酶扩增(RPA)与CRISPR介导的切割相结合的检测工作流程,并通过酶介导的颜色转换实现可视化。本研究采用的管中管盒式结构能够在单个封闭管系统中无缝整合RPA和基于CRISPR的检测,有效消除交叉污染风险。我们成功验证了该平台用于检测环境样本中的MPXV和临床标本中的RSV,检测限达到每次测试1拷贝,与PCR方法完全一致(40/40一致)。本文开发的比色生物传感平台展示了快速(<60分钟)且简便的性能,建立了一种新型分子诊断模式,可实现与实验室相当的准确性,用于实时监测和即时检测应用。