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Updated: Jul 18, 2026

Methods for Cell-attached Capacitance Measurements in Mouse Adrenal Chromaffin Cell
Published on: October 22, 2014
A cell-semiconductor synapse: transistor recording of vesicle release in chromaffin cells
Janosch Lichtenberger1, Peter Fromherz
1Department of Membrane and Neurophysics, Max Planck Institute for Biochemistry, Martinsried/Munich, D 82152 Germany.
Abstract:
The release of dense-core vesicles in bovine chromaffin cells is a model for the presynaptic process in neurons. It is usually studied by microamperometry of catecholamines with carbon fibers. Here we introduce transistor recording as a tool to study vesicle release. When we stimulate a chromaffin cell placed on a field-effect transistor, the gate voltage exhibits peaks that correlate with a simultaneously performed amperometric recording. We attribute the transistor signal to a release of protons from the extruded matrix of vesicles that lowers the extracellular pH and changes the electrical surface potential of the gate oxide. The rise time of the transistor signals is similar to that of amperometric responses, whereas their duration is distinctly longer. In a model computation, the rise time is identified with the extrusion of vesicle matrix into the narrow extracellular space between cell and gate oxide, and the decay time is attributed to pH equilibration through slow diffusion in the extruded matrix. Because the transistor recording relies on protons, it can be applied to acidic vesicles with electrochemically inactive hormones or transmitters.
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