Ultrasensitive detection of clinical pathogens through a target-amplification-free collateral-cleavage-enhancing CRISPR-CasΦ tool
Abstract
Abstract Clinical pathogen diagnostics detect targets by qPCR (but with low sensitivity) or blood culturing (but time-consuming). Here we leverage a dual-stem-loop DNA amplifier to enhance non-specific collateral enzymatic cleavage of an oligonucleotide linker between a fluophore and its quencher by CRISPR-CasΦ, achieving ultrasensitive target detection. Specifically, the target pathogens are lysed to release DNA, which binds its complementary gRNA in CRISPR-CasΦ to activate the collateral DNA-cleavage capability of CasΦ, enabling CasΦ to cleave the stem-loops in the amplifier. The cleavage product binds its complementary gRNA in another CRISPR-CasΦ to activate more CasΦ. The activated CasΦ collaterally cleaves the linker, releasing the fluophore to recover its fluorescent signal. The cycle of stem-loop-cleavage/CasΦ-activation/fluorescence-recovery amplifies the detection signal. Our target amplification-free collateral-cleavage-enhancing CRISPR-CasΦ method (TCC), with a detection limit of 0.11 copies/μL, demonstrates enhanced sensitivity compared to qPCR. It can detect pathogenic bacteria as low as 1.2 CFU/mL in serum within 40 min.
Article Details
Authors (21)
Huiyou Chen
Fengge Song
State Key Laboratory for Crop Stress Resistance and High-Efficiency Production, Shaanxi Key Laboratory of Agricultural and Environmental Microbiology, College of Life Sciences, Northwest Agriculture and Forestry University
Buhua Wang
Hui Huang
Center of Basic Molecular Science (CBMS), Department of Chemistry
Yanchi Luo
Xiaosheng Han
Hewen He
Shaolu Lin
Liudang Wan
Zhengliang Huang
Zhaoyong Fu
Rodrigo Ledesma-Amaro
Dapeng Yin
Haimei Mao
Linwen He
Tao Yang
Zijing Chen
Center for Ultrafast Science and Technology, School of Chemistry and Chemical Engineering, Zhang Jiang Institute for Advanced Study, Shanghai Jiao Tong University
Yubin Ma
State Key Laboratory of Advanced Fiber Materials & College of Chemistry and Chemical Engineering
Evelyn Y. Xue
Yi Wan
Chuanbin Mao