Engineering Research Center of Bio-process, Ministry of Education, School of Food and Biological Engineering, Hefei University of Technology, Hefei, 230009, PR China.
Key Laboratory for Agricultural Products Processing of Anhui Province, Hefei University of Technology, Hefei, 230009, PR China; Anhui Province Institute of Product Quality Supervision & Inspection, Hefei, 230051, China.
Talanta. 2024 Jan 1;266(Pt 2):125061. doi: 10.1016/j.talanta.2023.125061. Epub 2023 Aug 7.
Seeking new molecular diagnostic method for pathogenic bacteria detection is of utmost importance for ensuring food safety and protecting human health. Herein, we have engineered an adaptive tandem CRISPR/Cas12a molecular amplifier specifically designed for robust analysis of vibrio parahaemolyticus (V. parahaemolyticus), one of the most harmful pathogens. Our strategy involves the integration of three crucial processes: recombinase polymerase amplification (RPA) for copy number amplification, terminal deoxynucleotidyl transferase (TdT) for template-free strand elongation, and CRISPR/Cas12a-mediated trans-cleavage of a reporter molecule. By combining these processes, the target genomic DNA extracted from V. parahaemolyticus is able to activate many CRISPR/Cas12a units (CRISPR/Cas12a) simultaneously, resulting in a greatly amplified target signal to indicate the presence and concentration of V. parahaemolyticus. This unique model offers more advantages compared to traditional amplification models that use one RPA amplicon to activate one CRISPR/Cas12a unit. Under optimized conditions, our method enables the detection of target V. parahaemolyticus within a linear range of 1 × 10-1 × 10 CFU/mL, with an impressive limit of detection as low as 12.4 CFU/mL. It is conceivable that the adaptive tandem CRISPR/Cas12a molecular amplifier could be adapted as routine diagnostic kits in future for in-field detection of pathogens.
寻求新的分子诊断方法来检测致病菌对于确保食品安全和保护人类健康至关重要。在这里,我们专门设计了一种自适应串联 CRISPR/Cas12a 分子放大器,用于对副溶血性弧菌(V. parahaemolyticus)进行稳健分析,副溶血性弧菌是最具危害性的病原体之一。我们的策略涉及三个关键过程的整合:重组酶聚合酶扩增(RPA)用于拷贝数扩增、末端脱氧核苷酸转移酶(TdT)用于无模板链延伸,以及 CRISPR/Cas12a 介导的报告分子的转切割。通过结合这些过程,从副溶血性弧菌中提取的目标基因组 DNA 能够激活许多 CRISPR/Cas12a 单元(CRISPR/Cas12a),从而大大放大目标信号以指示副溶血性弧菌的存在和浓度。与传统的扩增模型相比,该模型具有更多优势,传统的扩增模型使用一个 RPA 扩增子来激活一个 CRISPR/Cas12a 单元。在优化条件下,我们的方法能够在 1×10-1×10 CFU/mL 的线性范围内检测目标副溶血性弧菌,检测限低至 12.4 CFU/mL。可以想象,自适应串联 CRISPR/Cas12a 分子放大器可以作为常规诊断试剂盒,用于未来现场检测病原体。