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research article

Cell-type- and activity-dependent extracellular correlates of intracellular spiking

Anastassiou, Constantinos  
•
Perin, Rodrigo de Campos  
•
Buzsaki, Gyorgy
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2015
Journal of Neurophysiology

Despite decades of extracellular action potential (EAP) recordings monitoring brain activity, the biophysical origin and inherent variability of these signals remains enigmatic. We performed whole-cell patch recordings of excitatory and inhibitory neurons in rat somatosensory cortex slice while positioning a silicon probe in their vicinity to concurrently record intra- and extracellular voltages for spike frequencies under 20 Hz. We characterize biophysical events and properties (intracellular spiking, extracellular resistivity, temporal jitter, etc.) related to EAP-recordings at the single-neuron level in a layer-specific manner. EAP-amplitude was found to decay as the inverse of distance between the soma and the recording electrode with similar (but not identical) resistivity across layers. Furthermore, we assessed a number of EAP-features and their variability with spike activity: amplitude (but not temporal) features varied substantially (approx. 30-50% compared to mean) and non-monotonically as a function of spike frequency and spike order. Such EAP-variation only partly reflects intracellular somatic spike variability and points to the plethora of processes contributing to the EAP. Also, we show that the shape of the EAP-waveform is qualitative similar to the negative of the temporal derivative to the intracellular somatic voltage - as expected from theory. Finally, we tested to what extent EAPs can impact the lowpass filtered part of extracellular recordings, the local field potential (LFP), typically associated with synaptic activity. We found that spiking of excitatory neurons can significantly impact the LFP at frequencies as low as 20 Hz. Our results question the common assertion that LFPs act as proxy for synaptic activity.

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Type
research article
DOI
10.1152/jn.00628.2014
Web of Science ID

WOS:000360556600019

Author(s)
Anastassiou, Constantinos  
Perin, Rodrigo de Campos  
Buzsaki, Gyorgy
Markram, Henry  
Koch, Christof
Date Issued

2015

Published in
Journal of Neurophysiology
Volume

114

Issue

1

Start page

608

End page

23

Subjects

clustering

•

extracellular recordings

•

intracellular spikes

•

LFP

•

spike waveform

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LNMC  
BBP-CORE  
Available on Infoscience
June 24, 2015
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/115381
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