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Non-Gaussian Membrane Potential Dynamics Imply Sparse, Synchronous Activity in Auditory Cortex
- Source :
- The Journal of Neuroscience. 26:12206-12218
- Publication Year :
- 2006
- Publisher :
- Society for Neuroscience, 2006.
-
Abstract
- Many models of cortical dynamics have focused on the high-firing regime, in which neurons are driven near their maximal rate. Here we consider the responses of neurons in auditory cortex under typical low-firing rate conditions, when stimuli have not been optimized to drive neurons maximally. We used whole-cell patch-clamp recordingin vivoto measure subthreshold membrane potential fluctuations in rat primary auditory cortex in both the anesthetized and awake preparations. By analyzing the subthreshold membrane potential dynamics on single trials, we made inferences about the underlying population activity. We found that, during both spontaneous and evoked responses, membrane potential was highly non-Gaussian, with dynamics consisting of occasional large excursions (sometimes tens of millivolts), much larger than the small fluctuations predicted by most random walk models that predict a Gaussian distribution of membrane potential. Thus, presynaptic inputs under these conditions are organized into quiescent periods punctuated by brief highly synchronous volleys, or “bumps.” These bumps were typically so brief that they could not be well characterized as “up states” or “down states.” We estimate that hundreds, perhaps thousands, of presynaptic neurons participate in the largest volleys. These dynamics suggest a computational scheme in which spike timing is controlled by concerted firing among input neurons rather than by small fluctuations in a sea of background activity.
- Subjects :
- Patch-Clamp Techniques
Time Factors
Models, Neurological
Population
Tetrodotoxin
Biology
Auditory cortex
Membrane Potentials
Rats, Sprague-Dawley
Cortex (anatomy)
medicine
Animals
Anesthetics, Local
Cortical Synchronization
Wakefulness
education
Auditory Cortex
Neurons
Membrane potential
education.field_of_study
Subthreshold conduction
General Neuroscience
Lidocaine
Neural Inhibition
Articles
Electric Stimulation
Rats
Electrophysiology
medicine.anatomical_structure
Acoustic Stimulation
Animals, Newborn
Nonlinear Dynamics
nervous system
Neural coding
Neuroscience
Subjects
Details
- ISSN :
- 15292401 and 02706474
- Volume :
- 26
- Database :
- OpenAIRE
- Journal :
- The Journal of Neuroscience
- Accession number :
- edsair.doi.dedup.....d98be88ed9ff05cfaf3fd71f34ea3ad6
- Full Text :
- https://doi.org/10.1523/jneurosci.2813-06.2006