Single Cell Real-Time miRNAs Sensing Based on Nanomotors

ACS Nano. 2015 Jul 28;9(7):6756-64. doi: 10.1021/acsnano.5b02807. Epub 2015 Jun 4.

Abstract

A nanomotor-based strategy for rapid single-step intracellular biosensing of a target miRNA, expressed in intact cancer cells, at the single cell level is described. The new concept relies on the use of ultrasound (US) propelled dye-labeled single-stranded DNA (ssDNA)/graphene-oxide (GO) coated gold nanowires (AuNWs) capable of penetrating intact cancer cells. Once the nanomotor is internalized into the cell, the quenched fluorescence signal (produced by the π-π interaction between GO and a dye-labeled ssDNA) is recovered due to the displacement of the dye-ssDNA probe from the motor GO-quenching surface upon binding with the target miRNA-21, leading to an attractive intracellular "OFF-ON" fluorescence switching. The faster internalization process of the US-powered nanomotors and their rapid movement into the cells increase the likelihood of probe-target contacts, leading to a highly efficient and rapid hybridization. The ability of the nanomotor-based method to screen cancer cells based on the endogenous content of the target miRNA has been demonstrated by measuring the fluorescence signal in two types of cancer cells (MCF-7 and HeLa) with significantly different miRNA-21 expression levels. This single-step, motor-based miRNAs sensing approach enables rapid "on the move" specific detection of the target miRNA-21, even in single cells with an extremely low endogenous miRNA-21 content, allowing precise and real-time monitoring of intracellular miRNA expression.

Keywords: graphene oxide; miRNAs; nanomotors; real-time biosensing; single intact cancer cells; ultrasound.

Publication types

  • Research Support, Non-U.S. Gov't
  • Research Support, U.S. Gov't, Non-P.H.S.

MeSH terms

  • Biosensing Techniques / methods*
  • DNA, Single-Stranded / chemistry
  • Fluorescent Dyes / chemistry
  • Gold / chemistry
  • Graphite / chemistry
  • HeLa Cells
  • High-Energy Shock Waves
  • Humans
  • MCF-7 Cells
  • MicroRNAs / genetics
  • MicroRNAs / metabolism*
  • Microscopy, Fluorescence / methods
  • Nanowires / chemistry*
  • Nanowires / radiation effects
  • Single-Cell Analysis / methods*
  • Sonication / methods

Substances

  • DNA, Single-Stranded
  • Fluorescent Dyes
  • MicroRNAs
  • Gold
  • Graphite