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Comparison of Spike Parameters from Optically Identified GABAergic and Glutamatergic Neurons in Sparse Cortical Cultures

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Specialty Cell Biology
Date 2015 Feb 3
PMID 25642167
Citations 34
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Abstract

Primary neuronal cultures share many typical features with the in vivo situation, including similarities in distinct electrical activity patterns and synaptic network interactions. Here, we use multi-electrode array (MEA) recordings from spontaneously active cultures of wildtype and glutamic acid decarboxylase 67 (GAD67)-green fluorescent protein (GFP) transgenic mice to evaluate which spike parameters differ between GABAergic interneurons and principal, putatively glutamatergic neurons. To analyze this question we combine MEA recordings with optical imaging in sparse cortical cultures to assign individual spikes to visually-identified single neurons. In our culture system, excitatory and inhibitory neurons are present at a similar ratio as described in vivo, and spike waveform characteristics and firing patterns are fully developed after 2 weeks in vitro. Spike amplitude, but not other spike waveform parameters, correlated with the distance between the recording electrode and the location of the assigned neuron's soma. Cluster analysis of spike waveform properties revealed no particular cell population that may be assigned to putative inhibitory or excitatory neurons. Moreover, experiments in primary cultures from transgenic GAD67-GFP mice, which allow optical identification of GABAergic interneurons and thus unambiguous assignment of extracellular signals, did not reveal any significant difference in spike timing and spike waveform parameters between inhibitory and excitatory neurons. Despite of our detailed characterization of spike waveform and temporal spiking properties we could not identify an unequivocal electrical parameter to discriminate between individual excitatory and inhibitory neurons in vitro. Our data suggest that under in vitro conditions cellular classifications of single neurons on the basis of their extracellular firing properties should be treated with caution.

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References
1.
Klausberger T, Magill P, Marton L, Roberts J, Cobden P, Buzsaki G . Brain-state- and cell-type-specific firing of hippocampal interneurons in vivo. Nature. 2003; 421(6925):844-8. DOI: 10.1038/nature01374. View

2.
Baltz T, de Lima A, Voigt T . Contribution of GABAergic interneurons to the development of spontaneous activity patterns in cultured neocortical networks. Front Cell Neurosci. 2010; 4:15. PMC: 2896208. DOI: 10.3389/fncel.2010.00015. View

3.
Cohen E, Ivenshitz M, Amor-Baroukh V, Greenberger V, Segal M . Determinants of spontaneous activity in networks of cultured hippocampus. Brain Res. 2008; 1235:21-30. DOI: 10.1016/j.brainres.2008.06.022. View

4.
Kamioka H, Maeda E, Jimbo Y, ROBINSON H, Kawana A . Spontaneous periodic synchronized bursting during formation of mature patterns of connections in cortical cultures. Neurosci Lett. 1996; 206(2-3):109-12. DOI: 10.1016/s0304-3940(96)12448-4. View

5.
Sun J, Kilb W, Luhmann H . Self-organization of repetitive spike patterns in developing neuronal networks in vitro. Eur J Neurosci. 2010; 32(8):1289-99. DOI: 10.1111/j.1460-9568.2010.07383.x. View