A tensegrity driven DNA nanopore

Nanoscale. 2017 Jul 13;9(27):9762-9769. doi: 10.1039/c7nr01901g.

Abstract

Control of transport across membranes, whether natural or synthetic, is fundamental in many biotechnology applications, including sensing and drug release. Mutations of naturally existing protein channels, such as hemolysin, have been explored in the past. More recently, DNA channels with conductivities in the nanosiemens range have been designed. Regulating transport across DNA channels in response to external stimuli remains an important challenge. Previous designs relied on steric hindrance to control the inner diameter of the channel, which resulted in unstable electric signatures. In this paper we introduce a new design to control electric channel conductance of a DNA nanopore. The tensegrity driven mechanism inhibits the flux of small analytes while keeping a tightly controlled ionic transport modulated by the addition of specific DNA sequences. Current signals are clearly defined, with no sign of gating, opening new perspectives in single molecule DNA sensing.

MeSH terms

  • DNA / chemistry*
  • Hemolysin Proteins
  • Ion Channel Gating
  • Lipid Bilayers / chemistry
  • Nanopores*
  • Nanotechnology
  • Patch-Clamp Techniques
  • Unilamellar Liposomes

Substances

  • Hemolysin Proteins
  • Lipid Bilayers
  • Unilamellar Liposomes
  • DNA