Seizures initiate in zones of relative hyperexcitation in a zebrafish epilepsy model

Author:

Niemeyer James E12ORCID,Gadamsetty Poornima1,Chun Chanwoo3,Sylvester Sherika3,Lucas Jacob P1,Ma Hongtao12,Schwartz Theodore H12,Aksay Emre R F3

Affiliation:

1. Department of Neurological Surgery, Weill Cornell Medicine , New York, NY 10065 , USA

2. Feil Family Brain and Mind Research Institute, Weill Cornell Medicine , New York, NY 10065 , USA

3. Institute for Computational Biomedicine and the Department of Physiology and Biophysics, Weill Cornell Medicine , New York, NY 10065 , USA

Abstract

Abstract Seizures are thought to arise from an imbalance of excitatory and inhibitory neuronal activity. While most classical studies suggest excessive excitatory neural activity plays a generative role, some recent findings challenge this view and instead argue that excessive activity in inhibitory neurons initiates seizures. We investigated this question of imbalance in a zebrafish seizure model with two-photon imaging of excitatory and inhibitory neuronal activity throughout the brain using a nuclear-localized calcium sensor. We found that seizures consistently initiated in circumscribed zones of the midbrain before propagating to other brain regions. Excitatory neurons were both more prevalent and more likely to be recruited than inhibitory neurons in initiation as compared with propagation zones. These findings support a mechanistic picture whereby seizures initiate in a region of hyperexcitation, then propagate more broadly once inhibitory restraint in the surround is overcome.

Funder

Weill Cornell Medicine

NIH

Publisher

Oxford University Press (OUP)

Subject

Neurology (clinical)

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