Botulinum Toxin Suppression of CNS Network ActivityIn Vitro

Author:

Pancrazio Joseph J.1,Gopal Kamakshi2,Keefer Edward W.3,Gross Guenter W.4

Affiliation:

1. Department of Bioengineering, George Mason University, 4400 University Drive, Fairfax, VA 22030, USA

2. Department of Speech and Hearing Sciences and CNNS, University of North Texas, Denton, TX 76203, USA

3. Plexon Inc., Dallas, TX 75206, USA

4. Department of Biological Sciences and Center for Network Neuroscience (CNNS), University of North Texas, Denton, TX 76203, USA

Abstract

The botulinum toxins are potent agents which disrupt synaptic transmission. While the standard method for BoNT detection and quantification is based on the mouse lethality assay, we have examined whether alterations in cultured neuronal network activity can be used to detect the functional effects of BoNT. Murine spinal cord and frontal cortex networks cultured on substrate integrated microelectrode arrays allowed monitoring of spontaneous spike and burst activity with exposure to BoNT serotype A (BoNT-A). Exposure to BoNT-A inhibited spike activity in cultured neuronal networks where, after a delay due to toxin internalization, the rate of activity loss depended on toxin concentration. Over a 30 hr exposure to BoNT-A, the minimum concentration detected was 2 ng/mL, a level consistent with mouse lethality studies. A small proportion of spinal cord networks, but not frontal cortex networks, showed a transient increase in spike and burst activity with exposure to BoNT-A, an effect likely due to preferential inhibition of inhibitory synapses expressed in this tissue. Lastly, prior exposure to human-derived antisera containing neutralizing antibodies prevented BoNT-A induced inhibition of network spike activity. These observations suggest that the extracellular recording from cultured neuronal networks can be used to detect and quantify functional BoNT effects.

Funder

Charles Bowen Memorial Endowment to the Center for Network Neuroscience

Publisher

Hindawi Limited

Subject

Pharmacology,Toxicology

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