Nucleic Acids Research · 2024 · 23 citations · 46 references
CRISPR-Cas systems with dual functions offer precise sequence-based recognition and efficient catalytic cleavage of nucleic acids, making them highly promising in biosensing and diagnostic technologies. However, current methods encounter challenges of complexity, low turnover efficiency, and the necessity for sophisticated probe design. To better integrate the dual functions of Cas proteins, we proposed a novel approach called CRISPR-Cas Autocatalysis Amplification driven by LNA-modified Split Activators (CALSA) for the highly efficient detection of single-stranded DNA (ssDNA) and genomic DNA. By introducing split ssDNA activators and the site-directed trans-cleavage mediated by LNA modifications, an autocatalysis-driven positive feedback loop of nucleic acids based on the LbCas12a system was constructed. Consequently, CALSA enabled one-pot and real-time detection of genomic DNA and cell-free DNA (cfDNA) from different tumor cell lines. Notably, CALSA achieved high sensitivity, single-base specificity, and remarkably short reaction times. Due to the high programmability of nucleic acid circuits, these results highlighted the immense potential of CALSA as a powerful tool for cascade signal amplification. Moreover, the sensitivity and specificity further emphasized the value of CALSA in biosensing and diagnostics, opening avenues for future clinical applications.
46
Primer-Directed Enzymatic Amplification of DNA with a Thermostable DNA Polymerase
Randall K. Saiki, David H. Gelfand, Susanne Stoffel et al. · Science · 1988 · 17.1K citations
CRISPR Provides Acquired Resistance Against Viruses in Prokaryotes
Rodolphe Barrangou, Christophe Fremaux, Hélène Deveau et al. · Science · 2007 · 6.2K citations
Nucleic acid detection with CRISPR-Cas13a/C2c2
Jonathan S. Gootenberg, Omar O. Abudayyeh, Jeong Wook Lee et al. · Science · 2017 · 3.6K citations · Full text
Crystal Structure of Cas9 in Complex with Guide RNA and Target DNA
Hiroshi Nishimasu, F. Ann Ran, Patrick D. Hsu et al. · Cell · 2014 · 2.3K citations · Full text