生物传感器
纳米技术
反式激活crRNA
自催化
化学
模板
合成生物学
检出限
适体
灵敏度(控制系统)
清脆的
生物物理学
信号(编程语言)
脱氧核酶
生物系统
临床诊断
计算机科学
DNA
设计要素和原则
材料科学
计算生物学
纳米生物技术
互补序列
作者
Mei Su,Meng-Mei Lv,Mingxi Pan,Cheng-Jun Zha,Yin-Gang Nie,Zhan-Ming Ying
出处
期刊:ACS Sensors
[American Chemical Society]
日期:2026-02-13
卷期号:11 (3): 2697-2706
被引量:1
标识
DOI:10.1021/acssensors.5c04673
摘要
Despite the success of non-classical crRNA designs in Cas12a-based biosensing, application to Cas13a systems faces fundamental challenges. Our research discovers that site-specific splitting within the crRNA seed region enables effective activation of Cas13a trans-cleavage. Here, we developed an autocatalytic Cas13a circuit that transitions from self-processing to responsive assembly for enhanced biosensing (PRA-Cas13a). The system employs engineered pre-crRNA as a molecular switch, which undergoes self-processing upon target binding to assemble an active Cas13a complex and activate its trans-cleavage activity. By integrating a dual-UUU site DNA switch template and a T7 RNA polymerase-mediated signal amplification module, a "processing-assembly-amplification" cycle is constructed to enhance the detection signal. Through validation using various targets including miRNA, mRNA, and viral DNA, the PRA-Cas13a system not only achieves an attomolar (aM) level detection limit but also enables visual field detection within 10 min using a lateral flow test strip. Analysis of single-base mutations demonstrated that its sensitivity is significantly superior to conventional CRISPR-based methods. Moreover, the system successfully enabled accurate detection of survivin mRNA in different cell lines and HPV16 in clinical cervical swab samples, showing strong concordance with qPCR gold standard methods. The PRA-Cas13a strategy leverages intrinsic self-processing assembly and autocatalytic signal amplification, addresses the critical issue of off-target cleavage inherent in conventional Cas13a systems while expanding the range of applicable targets, and demonstrates high specificity and point-of-care testing potential in cancer and viral diagnostics.
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