Journal Article PreJuSER-47889

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Cell-transistor coupling: Investigation of potassium currents recorded with p- and n-channel FETs

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2005
Rockefeller Univ. Press New York, NY

Biophysical journal 89, 3628 - 3638 () [10.1529/biophysj.104.049809]

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Abstract: Microelectronic-based biosensors that allow noninvasive measurement of cell activity are in the focus of current developments, however, the mechanisms underlying the cell-transistor coupling are not completely understood. In particular, characteristic properties of the extracellular voltage response such as the waveform and amplitude are not satisfactorily described by electrical circuit models. Here we examine the electrical coupling between a nonmetallized field-effect transistor (FET) and a cell line expressing a voltage-gated EAG K+ channel. The activation kinetics of this channel depends on the voltage pulse protocol and extracellular divalent cations. This feature allows testing, whether the extracellular voltage signal recorded with the FET faithfully tracks the current simultaneously recorded with the patch-clamp technique. We find that the FET signals contain different kinetic components that cannot be entirely explained by equivalent electrical-circuit models. Rather, we suggest that changes in ion concentration in the small cleft between cell and FET may change the surface potential of the FET. This study provides evidence that the electrochemical processes at the cell-transistor interface are complex and that at least two different mechanisms contribute to the shape and amplitude of transistor signals.

Keyword(s): Action Potentials (MeSH) ; Biophysics: instrumentation (MeSH) ; Biophysics: methods (MeSH) ; Biosensing Techniques (MeSH) ; Cell Line (MeSH) ; Cell Membrane: metabolism (MeSH) ; Dose-Response Relationship, Drug (MeSH) ; Electronics (MeSH) ; Electrophysiology: methods (MeSH) ; Humans (MeSH) ; Ions (MeSH) ; Kinetics (MeSH) ; Large-Conductance Calcium-Activated Potassium Channels: chemistry (MeSH) ; Membrane Potentials (MeSH) ; Microscopy (MeSH) ; Models, Statistical (MeSH) ; Patch-Clamp Techniques (MeSH) ; Potassium: chemistry (MeSH) ; Potassium Channels: chemistry (MeSH) ; Time Factors (MeSH) ; Transistors, Electronic (MeSH) ; Ions ; Large-Conductance Calcium-Activated Potassium Channels ; Potassium Channels ; Potassium ; J

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Note: Record converted from VDB: 12.11.2012

Contributing Institute(s):
  1. Zelluläre Signalverarbeitung (IBI-1)
  2. Institut für Bio- und Chemosensoren (ISG-2)
  3. Center of Nanoelectronic Systems for Information Technology (CNI)
Research Program(s):
  1. Materialien, Prozesse und Bauelemente für die Mikro- und Nanoelektronik (I01)
  2. Neurowissenschaften (L01)

Appears in the scientific report 2005
Notes: This version is available at the following Publisher URL: http://www.biophysj.org/
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Document types > Articles > Journal Article
Institute Collections > IBI > IBI-1
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IBN > IBN-2
ICS > ICS-4
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Open Access

 Record created 2012-11-13, last modified 2020-04-23