Catalytic amplification by transition-state molecular switches for direct and sensitive detection of SARS-CoV-2.
Noah R SundahAuginia NataliaYu LiuNicholas R Y HoHaitao ZhaoYuan ChenQing Hao MiowYu WangDarius L L BehKa Lip ChewDouglas ChanPaul Anantharajah TambyahCatherine W M OngHuilin ShaoPublished in: Science advances (2021)
Despite the importance of nucleic acid testing in managing the COVID-19 pandemic, current detection approaches remain limited due to their high complexity and extensive processing. Here, we describe a molecular nanotechnology that enables direct and sensitive detection of viral RNA targets in native clinical samples. The technology, termed catalytic amplification by transition-state molecular switch (CATCH), leverages DNA-enzyme hybrid complexes to form a molecular switch. By ratiometric tuning of its constituents, the multicomponent molecular switch is prepared in a hyperresponsive state-the transition state-that can be readily activated upon the binding of sparse RNA targets to turn on substantial enzymatic activity. CATCH thus achieves superior performance (~8 RNA copies/μl), direct fluorescence detection that bypasses all steps of PCR (<1 hour at room temperature), and versatile implementation (high-throughput 96-well format and portable microfluidic assay). When applied for clinical COVID-19 diagnostics, CATCH demonstrated direct and accurate detection in minimally processed patient swab samples.
Keyphrases
- sensitive detection
- nucleic acid
- loop mediated isothermal amplification
- sars cov
- high throughput
- quantum dots
- single molecule
- label free
- room temperature
- healthcare
- primary care
- coronavirus disease
- real time pcr
- living cells
- high resolution
- transcription factor
- nitric oxide
- fluorescent probe
- mass spectrometry
- respiratory syndrome coronavirus
- case report
- quality improvement
- circulating tumor cells
- dna binding