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Enzyme-linked DNA dendrimer nanosensors for acetylcholine

  • Ryan Walsh
  • , Jennifer M. Morales
  • , Christopher G. Skipwith
  • , Timothy T. Ruckh
  • , Heather A. Clark

Research output: Contribution to journalArticlepeer-review

Abstract

It is currently difficult to measure small dynamics of molecules in the brain with high spatial and temporal resolution while connecting them to the bigger picture of brain function. A step towards understanding the underlying neural networks of the brain is the ability to sense discrete changes of acetylcholine within a synapse. Here we show an efficient method for generating acetylcholine-detecting nanosensors based on DNA dendrimer scaffolds that incorporate butyrylcholinesterase and fluorescein in a nanoscale arrangement. These nanosensors are selective for acetylcholine and reversibly respond to levels of acetylcholine in the neurophysiological range. This DNA dendrimer architecture has the potential to overcome current obstacles to sensing in the synaptic environment, including the nanoscale size constraints of the synapse and the ability to quantify the spatio-temporal fluctuations of neurotransmitter release. By combining the control of nanosensor architecture with the strategic placement of fluorescent reporters and enzymes, this novel nanosensor platform can facilitate the development of new selective imaging tools for neuroscience.

Original languageEnglish (US)
Article number14832
JournalScientific reports
Volume5
DOIs
StatePublished - Oct 7 2015
Externally publishedYes

ASJC Scopus subject areas

  • General

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