Abstract
Following traumatic brain injury (TBI), treatment with rapamycin suppresses mammalian (mechanistic) target of rapamycin (mTOR) activity and specific components of hippocampal synaptic reorganization associated with altered cortical excitability and seizure susceptibility. Reemergence of seizures after cessation of rapamycin treatment suggests, however, an incomplete suppression of epileptogenesis. Hilar inhibitory interneurons regulate dentate granule cell (DGC) activity, and de novo synaptic input from both DGCs and CA3 pyramidal cells after TBI increases their excitability but effects of rapamycin treatment on the injuryinduced plasticity of interneurons is only partially described. Using transgenic mice in which enhanced green fluorescent protein (eGFP) is expressed in the somatostatinergic subset of hilar inhibitory interneurons, we tested the effect of daily systemic rapamycin treatment (3 mg/kg) on the excitability of hilar inhibitory interneurons after controlled cortical impact (CCI)-induced focal brain injury. Rapamycin treatment reduced, but did not normalize, the injury-induced increase in excitability of surviving eGFP+ hilar interneurons. The injury-induced increase in response to selective glutamate photostimulation of DGCs was reduced to normal levels after mTOR inhibition, but the postinjury increase in synaptic excitation arising from CA3 pyramidal cell activity was unaffected by rapamycin treatment. The incomplete suppression of synaptic reorganization in inhibitory circuits after brain injury could contribute to hippocampal hyperexcitability and the eventual reemergence of the epileptogenic process upon cessation of mTOR inhibition. Further, the cell-selective effect of mTOR inhibition on synaptic reorganization after CCI suggests possible mechanisms by which rapamycin treatment modifies epileptogenesis in some models but not others.
| Original language | English |
|---|---|
| Article number | e0134-17.2017 |
| Journal | eNeuro |
| Volume | 4 |
| Issue number | 5 |
| DOIs | |
| State | Published - Sep 1 2017 |
Bibliographical note
Publisher Copyright:© 2017 Butler et al.
Funding
Received April 17, 2017; accepted September 20, 2017; First published September 25, 2017. The authors declare no competing financial interests. Author contributions: C.R.B., J.A.B., and B.N.S. designed research; C.R.B. and J.A.B. performed research; C.R.B., J.A.B., and B.N.S. analyzed data; C.R.B., J.A.B., and B.N.S. wrote the paper. This work was supported by the National Institutes of Health Grant R21 NS088608 (to B.N.S.). *C.R.B. and J.A.B. contributed equally to this work. Correspondence should be addressed to Bret N. Smith, Department of Physiology, University of Kentucky College of Medicine, MS508 Chandler Medical Center, 800 Rose Street, Lexington, KY 40536, E-mail: [email protected]. DOI:http://dx.doi.org/10.1523/ENEURO.0134-17.2017 Copyright © 2017 Butler et al. This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license, which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
| Funders | Funder number |
|---|---|
| National Institutes of Health (NIH) | |
| Institute of Neurological Disorders and Stroke National Advisory Neurological Disorders and Stroke Council | R21NS088608 |
Keywords
- Dentate gyrus
- Epilepsy
- Interneuron
- Mossy fiber
- Photostimulation
- mTOR
ASJC Scopus subject areas
- General Neuroscience
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