数字农科院2.0

A Portable One-Tube Assay Integrating RT-RPA and CRISPR/Cas12a for Rapid Visual Detection of Eurasian Avian-like H1N1 Swine Influenza Virus in the Field

文献类型: 外文期刊

作者: Changhai Tian;Lulu Feng;Xu Zhou;Kailun Huang;Feifei Wang;Ru Luo;Fei Meng;Huanliang Yang;Chuanling Qiao;Xiurong Wang;Jianzhong Shi;Yan Chen

作者机构:

关键词: Cas12a;CRISPR;Eurasian Avian-like H1N1 swine influenza virus;RT-RPA;visual detection

期刊名称: Viruses

ISSN: 1999-4915

年卷期: 2025 年 18 卷 1 期

页码:

收录情况: SCIE(2025版)

摘要: The widespread circulation of Eurasian avian-like H1N1 (EA H1N1) swine influenza virus poses significant zoonotic and pandemic risks worldwide. However, current diagnostic methods are difficult to deploy in the field, as they generally require specialized laboratory infrastructure and trained personnel. Here, we present a novel dual-signal detection platform that combines reverse transcription recombinase polymerase amplification (RT-RPA) with CRISPR/Cas12a technology for rapid, on-site EA H1N1 detection. We established an integrated one-tube assay by designing and optimizing RT-RPA primers targeting a conserved region of the hemagglutinin (HA) gene, together with engineered CRISPR/Cas12a guide RNAs exhibiting high specificity. The platform incorporates two complementary readout modes: real-time fluorescence monitoring and visual colorimetric detection using a smartphone. The assay shows excellent analytical specificity, with no cross-reactivity observed against other swine influenza virus subtypes or common swine pathogens, (including CSFV, PRRSV, PEDV, PCV, TGEV, and RV). The detection limit is 2 copies/μL, and the entire procedure can be completed within 30 mins using simple portable equipment. When evaluated on 86 clinical samples, the assay demonstrated 94.18% concordance with RT-qPCR. Compared with conventional diagnostic methods, this RT-RPA–CRISPR/Cas12a assay offers greater convenience and cost-effectiveness. Its strong potential for field-based rapid testing underscores promising application prospects in swine influenza surveillance and control programs.

分类号:

  • 相关文献

[1]水稻CRISPR/Cas12a系统的优化及其介导的腺嘌呤碱基编辑器的建立. 王敬文,严芳,柳浪,周雪平,王道文,周焕斌. 2021

[2]On-Site and Visual Detection of the H5 Subtype Avian Influenza Virus Based on RT-RPA and CRISPR/Cas12a. Xu Zhou,Siwen Wang,Yue Ma,Yongping Jiang,Yanbing Li,Jianzhong Shi,Guohua Deng,Guobin Tian,Huihui Kong,Xiurong Wang. 2024

[3]PCDetection: PolyA-CRISPR/Cas12a-based miRNA detection without PAM restriction. Zhong, Mingtian,Chen, Kaizhao,Sun, Wenjun,Li, Xiangyang,Huang, Shisheng,Meng, Qingzhou,Sun, Bo,Huang, Xingxu,Wang, Xinjie,Ma, Xiaodong,Ma, Peixiang. 2022

[4]An advanced approach for rapid visual identification of Liposcelis bostrychophila (Psocoptera: Liposcelididae) based on CRISPR/Cas12a combined with RPA. Deng, Wenxin,Feng, Shiqian,Stejskal, Vaclav,Opit, George,Li, Zhihong. 2023

[5]A CRISPR-Cas12a-based platform facilitates the detection and serotyping of Streptococcus suis serotype 2. Wang, Lu,Sun, Jing,Zhao, Jiyu,Bai, Jieyu,Zhang, Yueling,Zhu, Yao,Zhang, Wanjiang,Wang, Chunlai,Langford, Paul R.,Liu, Siguo,Li, Gang. 2023

[6]Recombinase Polymerase Amplification Coupled with CRISPR-Cas12a Technology for Rapid and Highly Sensitive Detection of Heterodera avenae and Heterodera filipjevi. Shao, Hudie,Jian, Jinzhuo,Peng, Deliang,Yao, Ke,Abdulsalam, Sulaiman,Huang, Wenkun,Kong, Lingan,Li, Chuanren,Peng, Huan. 2023

[7]A sensitive visual method for onsite detection of quarantine pathogenic bacteria from horticultural crops using an LbCas12a variant system. Jian Jiao,Mengjie Yang,Tengfei Zhang,Yingli Zhang,Mengli Yang,Ming Li,Chonghuai Liu,Shangwei Song,Tuanhui Bai,Chunhui Song,Miaomiao Wang,Hongguang Pang,Jiancan Feng,Xianbo Zheng. 2022

[8]CRISPR-Cas12a在病原快速检测中的应用. 周旭,王思文,王秀荣. 2022

[9]Intranasal Administration of Cold-Adapted Live-Attenuated Eurasian Avian-like H1N1 Vaccine Candidate Confers Protection Against Different-Lineage H1N1 Viruses in Mice. Qiu Zhong,Zuchen Song,Fei Meng,Yanwen Wang,Yijie Zhang,Zijian Feng,Yali Zhang,Yujia Zhai,Yan Chen,Chuanling Qiao,Hualan Chen,Huanliang Yang. 2025

[10]Development Of Real-Time And Lateral F.low Strip Reverse Transcription R ecombinase Polymerase Amplification Assays For Rapid Detection Of Peste Des Petits Ruminants Virus. Yang, Y,Qin, XD,Song, YM,Zhang, W,Hu, GW,Dou, YX,Li, YM,Zhang, ZD. 2017

[11]Characterization of an isolate of citrus concave gum-associated virus from apples in china and development of an rt-rpa assay for the rapid detection of the virus. Zhen Liu, Zhenfei Dong, Binhui Zhan, Shifang Li. 2021

[12]Rapid detection of avian influenza virus based on CRISPR-Cas12a. Xu Zhou,Siwen Wang,Yue Ma,Yanbing Li,Guohua Deng,Jianzhong Shi,Xiurong Wang. 2023

[13]运用CRISPR/Cas系统对植物基因组进行定点编辑. 宋时奎,王影,于洋,耿立召,张春翔,李相敢,韩天富. 2014

[14]基因编辑技术及其在作物育种中的应用与安全管理. ,,龙艳,,裴新梧. 2018

[15]CRISPR技术在病毒学研究中的应用. 高帅,李芳,李赞,王涛,赵东明,步志高. 2020

[16]基于专利文献的全球CRISPR技术研发进展分析与展望. 王友华1 邹婉侬1 张熠2 樊君丽3 孙国庆1. 2018

[17]利用CRISPR技术鉴定拟南芥miR171a的功能. 黄格格,张静文,张天豹,柯智,翟楠鑫,龙艳,袁潜华,裴新梧. 2019

[18]基于CRISPR的快速灵敏便捷分子检测. 孙雯君,黄行许,王鑫杰. 2023

[19]基于CRISPR系统的基因编辑技术的研究进展. 郑基坛(综述),闫娜娜,左二伟(审校). 2021

[20]CRISPR相关技术在肉牛领域的研究进展. 吴天弋,党靖宇,王添祯,张路培,高雪,李俊雅,徐凌洋. 2023

作者其他论文 更多>>