Skip to main content

Emergent bursting and synchrony in computer simulations of neuronal cultures.

Publication ,  Journal Article
Maheswaranathan, N; Ferrari, S; Vandongen, AMJ; Henriquez, CS
Published in: Front Comput Neurosci
2012

Experimental studies of neuronal cultures have revealed a wide variety of spiking network activity ranging from sparse, asynchronous firing to distinct, network-wide synchronous bursting. However, the functional mechanisms driving these observed firing patterns are not well understood. In this work, we develop an in silico network of cortical neurons based on known features of similar in vitro networks. The activity from these simulations is found to closely mimic experimental data. Furthermore, the strength or degree of network bursting is found to depend on a few parameters: the density of the culture, the type of synaptic connections, and the ratio of excitatory to inhibitory connections. Network bursting gradually becomes more prominent as either the density, the fraction of long range connections, or the fraction of excitatory neurons is increased. Interestingly, biologically prevalent values of parameters result in networks that are at the transition between strong bursting and sparse firing. Using principal components analysis, we show that a large fraction of the variance in firing rates is captured by the first component for bursting networks. These results have implications for understanding how information is encoded at the population level as well as for why certain network parameters are ubiquitous in cortical tissue.

Duke Scholars

Altmetric Attention Stats
Dimensions Citation Stats

Published In

Front Comput Neurosci

DOI

EISSN

1662-5188

Publication Date

2012

Volume

6

Start / End Page

15

Location

Switzerland

Related Subject Headings

  • 3209 Neurosciences
  • 3202 Clinical sciences
  • 1109 Neurosciences
  • 1103 Clinical Sciences
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Maheswaranathan, N., Ferrari, S., Vandongen, A. M. J., & Henriquez, C. S. (2012). Emergent bursting and synchrony in computer simulations of neuronal cultures. Front Comput Neurosci, 6, 15. https://doi.org/10.3389/fncom.2012.00015
Maheswaranathan, Niru, Silvia Ferrari, Antonius M. J. Vandongen, and Craig S. Henriquez. “Emergent bursting and synchrony in computer simulations of neuronal cultures.Front Comput Neurosci 6 (2012): 15. https://doi.org/10.3389/fncom.2012.00015.
Maheswaranathan N, Ferrari S, Vandongen AMJ, Henriquez CS. Emergent bursting and synchrony in computer simulations of neuronal cultures. Front Comput Neurosci. 2012;6:15.
Maheswaranathan, Niru, et al. “Emergent bursting and synchrony in computer simulations of neuronal cultures.Front Comput Neurosci, vol. 6, 2012, p. 15. Pubmed, doi:10.3389/fncom.2012.00015.
Maheswaranathan N, Ferrari S, Vandongen AMJ, Henriquez CS. Emergent bursting and synchrony in computer simulations of neuronal cultures. Front Comput Neurosci. 2012;6:15.

Published In

Front Comput Neurosci

DOI

EISSN

1662-5188

Publication Date

2012

Volume

6

Start / End Page

15

Location

Switzerland

Related Subject Headings

  • 3209 Neurosciences
  • 3202 Clinical sciences
  • 1109 Neurosciences
  • 1103 Clinical Sciences