Improving the specificity of nucleic acid detection with endonuclease-actuated degradation.
Roger S ZouMomčilo GavrilovYang LiuDominique RasolosonMadison ConteJustin HardickLeo L ShenSiqi ChenAndrew S PekoszGeraldine SeydouxYukari C ManabeTaekjip HaPublished in: Communications biology (2022)
Nucleic acid detection is essential for numerous biomedical applications, but often requires complex protocols and/or suffers false-positive readouts. Here, we describe SENTINEL, an approach that combines isothermal amplification with a sequence-specific degradation method to detect nucleic acids with high sensitivity and sequence-specificity. Target single-stranded RNA or double-stranded DNA molecules are amplified by loop-mediated isothermal amplification (LAMP) and subsequently degraded by the combined action of lambda exonuclease and a sequence-specific DNA endonuclease (e.g., Cas9). By combining the sensitivity of LAMP with the precision of DNA endonucleases, the protocol achieves attomolar limits of detection while differentiating between sequences that differ by only one or two base pairs. The protocol requires less than an hour to complete using a 65 °C heat block and fluorometer, and detects SARS-CoV-2 virus particles in human saliva and nasopharyngeal swabs with high sensitivity.
Keyphrases
- nucleic acid
- loop mediated isothermal amplification
- sensitive detection
- sars cov
- randomized controlled trial
- endothelial cells
- dna repair
- blood pressure
- magnetic resonance imaging
- circulating tumor
- amino acid
- quantum dots
- magnetic resonance
- cell free
- coronavirus disease
- dna damage
- circulating tumor cells
- binding protein
- pluripotent stem cells