Spatiotemporal dynamics of optogenetically induced and spontaneous seizure transitions in primary generalized epilepsy

Author:

Wagner Fabien B.12,Truccolo Wilson134,Wang Jing2,Nurmikko Arto V.123

Affiliation:

1. Department of Neuroscience, Brown University, Providence, Rhode Island;

2. School of Engineering, Brown University, Providence, Rhode Island;

3. Institute for Brain Science, Brown University, Providence, Rhode Island; and

4. Center for Neurorestoration and Neurotechnology, Department of Veterans Affairs, Providence, Rhode Island

Abstract

Transitions into primary generalized epileptic seizures occur abruptly and synchronously across the brain. Their potential triggers remain unknown. We used optogenetics to causally test the hypothesis that rhythmic population bursting of excitatory neurons in a local neocortical region can rapidly trigger absence seizures. Most previous studies have been purely correlational, and it remains unclear whether epileptiform events induced by rhythmic stimulation (e.g., sensory/electrical) mimic actual spontaneous seizures, especially regarding their spatiotemporal dynamics. In this study, we used a novel combination of intracortical optogenetic stimulation and microelectrode array recordings in freely moving WAG/Rij rats, a model of absence epilepsy with a cortical focus in the somatosensory cortex (SI). We report three main findings: 1) Brief rhythmic bursting, evoked by optical stimulation of neocortical excitatory neurons at frequencies around 10 Hz, induced seizures consisting of self-sustained spike-wave discharges (SWDs) for about 10% of stimulation trials. The probability of inducing seizures was frequency-dependent, reaching a maximum at 10 Hz. 2) Local field potential power before stimulation and response amplitudes during stimulation both predicted seizure induction, demonstrating a modulatory effect of brain states and neural excitation levels. 3) Evoked responses during stimulation propagated as cortical waves, likely reaching the cortical focus, which in turn generated self-sustained SWDs after stimulation was terminated. Importantly, SWDs during induced and spontaneous seizures propagated with the same spatiotemporal dynamics. Our findings demonstrate that local rhythmic bursting of excitatory neurons in neocortex at particular frequencies, under susceptible ongoing brain states, is sufficient to trigger primary generalized seizures with stereotypical spatiotemporal dynamics.

Funder

DOD | Defense Advanced Research Projects Agency (DARPA)

Epilepsy Foundation

National Science Foundation (NSF)

HHS | National Institutes of Health (NIH)

U.S. Department of Veterans Affairs (VA)

Publisher

American Physiological Society

Subject

Physiology,General Neuroscience

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