Light-Driven Nano-oscillators for Label-Free Single-Molecule Monitoring of MicroRNA.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 29781275.
- Also identified by DOI 10.1021/acs.nanolett.8b00993.
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Abstract
Here, we present a mapping tool based on individual light-driven nano-oscillators for label-free single-molecule monitoring of microRNA. This design uses microRNA as a single-molecule damper for nano-oscillators by forming a rigid dual-strand structure in the gap between nano-oscillators and the immobilized surface. The ultrasensitive detection is attributed to comparable dimensions of the gap and microRNA. A developed surface plasmon-coupled scattering imaging technology enables us to directly measure the real-time gap distance vibration of multiple nano-oscillators with high accuracy and fast dynamics. High-level and low-level states of the oscillation amplitude indicate melting and hybridization statuses of microRNA. Lifetimes of two states reveal that the hybridization rate of microRNA is determined by the three-dimensional diffusion. This imaging technique contributes application potentials in a single-molecule detection and nanomechanics study.
Medical subject headings
- MicroRNAs
- Surface Plasmon Resonance