Issue 11, 2013

Electroporation followed by electrochemical measurement of quantal transmitter release from single cells using a patterned microelectrode

Abstract

An electrochemical microelectrode located immediately adjacent to a single neuroendocrine cell can record spikes of amperometric current that result from exocytosis of oxidizable transmitter from individual vesicles, i.e., quantal exocytosis. Here, we report the development of an efficient method where the same electrochemical microelectrode is used to electropermeabilize an adjacent chromaffin cell and then measure the consequent quantal catecholamine release using amperometry. Trains of voltage pulses, 5–7 V in amplitude and 0.1–0.2 ms in duration, were used to reliably trigger release from cells using gold electrodes. Amperometric spikes induced by electropermeabilization had similar areas, peak heights and durations as amperometric spikes elicited by depolarizing high K+ solutions, therefore release occurs from individual secretory granules. Uptake of trypan blue stain into cells demonstrated that the plasma membrane is permeabilized by the voltage stimulus. Voltage pulses did not degrade the electrochemical sensitivity of the electrodes assayed using a test analyte. Surprisingly, robust quantal release was elicited upon electroporation in the absence of Ca2+ in the bath solution (0 Ca2+/5 mM EGTA). In contrast, electropermeabilization-induced transmitter release required Cl in the bath solution in that bracketed experiments demonstrated a steep dependence of the rate of electropermeabilization-induced transmitter release on [Cl] between 2 and 32 mM. Using the same electrochemical electrode to electroporate and record quantal release of catecholamines from an individual chromaffin cell allows precise timing of the stimulus, stimulation of a single cell at a time, and can be used to load membrane-impermeant substances into a cell.

Graphical abstract: Electroporation followed by electrochemical measurement of quantal transmitter release from single cells using a patterned microelectrode

Supplementary files

Article information

Article type
Paper
Submitted
30 Nov 2012
Accepted
29 Mar 2013
First published
03 Apr 2013

Lab Chip, 2013,13, 2083-2090

Electroporation followed by electrochemical measurement of quantal transmitter release from single cells using a patterned microelectrode

J. Ghosh, X. Liu and K. D. Gillis, Lab Chip, 2013, 13, 2083 DOI: 10.1039/C3LC41324A

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