Literature DB >> 28425097

Seizure frequency correlates with loss of dentate gyrus GABAergic neurons in a mouse model of temporal lobe epilepsy.

Paul S Buckmaster1,2, Emily Abrams1, Xiling Wen1.   

Abstract

Epilepsy occurs in one of 26 people. Temporal lobe epilepsy is common and can be difficult to treat effectively. It can develop after brain injuries that damage the hippocampus. Multiple pathophysiological mechanisms involving the hippocampal dentate gyrus have been proposed. This study evaluated a mouse model of temporal lobe epilepsy to test which pathological changes in the dentate gyrus correlate with seizure frequency and help prioritize potential mechanisms for further study. FVB mice (n = 127) that had experienced status epilepticus after systemic treatment with pilocarpine 31-61 days earlier were video-monitored for spontaneous, convulsive seizures 9 hr/day every day for 24-36 days. Over 4,060 seizures were observed. Seizure frequency ranged from an average of one every 3.6 days to one every 2.1 hr. Hippocampal sections were processed for Nissl stain, Prox1-immunocytochemistry, GluR2-immunocytochemistry, Timm stain, glial fibrillary acidic protein-immunocytochemistry, glutamic acid decarboxylase in situ hybridization, and parvalbumin-immunocytochemistry. Stereological methods were used to measure hilar ectopic granule cells, mossy cells, mossy fiber sprouting, astrogliosis, and GABAergic interneurons. Seizure frequency was not significantly correlated with the generation of hilar ectopic granule cells, the number of mossy cells, the extent of mossy fiber sprouting, the extent of astrogliosis, or the number of GABAergic interneurons in the molecular layer or hilus. Seizure frequency significantly correlated with the loss of GABAergic interneurons in or adjacent to the granule cell layer, but not with the loss of parvalbumin-positive interneurons. These findings prioritize the loss of granule cell layer interneurons for further testing as a potential cause of temporal lobe epilepsy.
© 2017 Wiley Periodicals, Inc.

Entities:  

Keywords:  GFAP; Prox1; RRID: AB_10000344; RRID: AB_10013382; RRID: AB_10064230; RRID: AB_2247874; Timm stain; hippocampus; mossy cell; pilocarpine

Mesh:

Year:  2017        PMID: 28425097      PMCID: PMC5963263          DOI: 10.1002/cne.24226

Source DB:  PubMed          Journal:  J Comp Neurol        ISSN: 0021-9967            Impact factor:   3.215


  123 in total

1.  Rapid deletion of mossy cells does not result in a hyperexcitable dentate gyrus: implications for epileptogenesis.

Authors:  Anna d H Ratzliff; Allyson L Howard; Vijayalakshmi Santhakumar; Imola Osapay; Ivan Soltesz
Journal:  J Neurosci       Date:  2004-03-03       Impact factor: 6.167

2.  Medial ganglionic eminence-derived neural stem cell grafts ease spontaneous seizures and restore GDNF expression in a rat model of chronic temporal lobe epilepsy.

Authors:  Ben Waldau; Bharathi Hattiangady; Ramkumar Kuruba; Ashok K Shetty
Journal:  Stem Cells       Date:  2010-07       Impact factor: 6.277

3.  Comparison of NADPH diaphorase histochemistry, somatostatin immunohistochemistry, and silver impregnation in detecting structural and functional impairment in experimental status epilepticus.

Authors:  T Kotti; T Halonen; J Sirviö; P Riekkinen; R Miettinen
Journal:  Neuroscience       Date:  1997-09       Impact factor: 3.590

4.  Granule cell hyperexcitability in the early post-traumatic rat dentate gyrus: the 'irritable mossy cell' hypothesis.

Authors:  V Santhakumar; R Bender; M Frotscher; S T Ross; G S Hollrigel; Z Toth; I Soltesz
Journal:  J Physiol       Date:  2000-04-01       Impact factor: 5.182

5.  A reorganized GABAergic circuit in a model of epilepsy: evidence from optogenetic labeling and stimulation of somatostatin interneurons.

Authors:  Zechun Peng; Nianhui Zhang; Weizheng Wei; Christine S Huang; Yliana Cetina; Thomas S Otis; Carolyn R Houser
Journal:  J Neurosci       Date:  2013-09-04       Impact factor: 6.167

Review 6.  Glia as drivers of abnormal neuronal activity.

Authors:  Stefanie Robel; Harald Sontheimer
Journal:  Nat Neurosci       Date:  2016-01       Impact factor: 24.884

7.  Long-term seizure suppression and optogenetic analyses of synaptic connectivity in epileptic mice with hippocampal grafts of GABAergic interneurons.

Authors:  Katharine W Henderson; Jyoti Gupta; Stephanie Tagliatela; Elizabeth Litvina; XiaoTing Zheng; Meghan A Van Zandt; Nicholas Woods; Ethan Grund; Diana Lin; Sara Royston; Yuchio Yanagawa; Gloster B Aaron; Janice R Naegele
Journal:  J Neurosci       Date:  2014-10-01       Impact factor: 6.167

8.  Early activation of ventral hippocampus and subiculum during spontaneous seizures in a rat model of temporal lobe epilepsy.

Authors:  Izumi Toyoda; Mark R Bower; Fernando Leyva; Paul S Buckmaster
Journal:  J Neurosci       Date:  2013-07-03       Impact factor: 6.167

9.  Hilar mossy cell degeneration causes transient dentate granule cell hyperexcitability and impaired pattern separation.

Authors:  Seiichiro Jinde; Veronika Zsiros; Zhihong Jiang; Kazuhito Nakao; James Pickel; Kenji Kohno; Juan E Belforte; Kazu Nakazawa
Journal:  Neuron       Date:  2012-12-20       Impact factor: 17.173

10.  Somatostatin, neuropeptide Y, neurokinin B and cholecystokinin immunoreactivity in two chronic models of temporal lobe epilepsy.

Authors:  C Schwarzer; J M Williamson; E W Lothman; A Vezzani; G Sperk
Journal:  Neuroscience       Date:  1995-12       Impact factor: 3.590

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  24 in total

1.  Calpain activation and neuronal death during early epileptogenesis.

Authors:  Philip M Lam; Marco I González
Journal:  Neurobiol Dis       Date:  2018-11-10       Impact factor: 5.996

2.  Glycolytic inhibitor 2-deoxyglucose prevents cortical hyperexcitability after traumatic brain injury.

Authors:  Jenny B Koenig; David Cantu; Cho Low; Mary Sommer; Farzad Noubary; Danielle Croker; Michael Whalen; Dong Kong; Chris G Dulla
Journal:  JCI Insight       Date:  2019-04-30

3.  Proportional loss of parvalbumin-immunoreactive synaptic boutons and granule cells from the hippocampus of sea lions with temporal lobe epilepsy.

Authors:  Starr Cameron; Ariana Lopez; Raisa Glabman; Emily Abrams; Shawn Johnson; Cara Field; Frances M D Gulland; Paul S Buckmaster
Journal:  J Comp Neurol       Date:  2019-03-22       Impact factor: 3.215

4.  Neurovascular Drug Biotransformation Machinery in Focal Human Epilepsies: Brain CYP3A4 Correlates with Seizure Frequency and Antiepileptic Drug Therapy.

Authors:  Sherice Williams; Mohammed Hossain; Lisa Ferguson; Robyn M Busch; Nicola Marchi; Jorge Gonzalez-Martinez; Emilio Perucca; Imad M Najm; Chaitali Ghosh
Journal:  Mol Neurobiol       Date:  2019-06-26       Impact factor: 5.590

Review 5.  Selective vulnerability of hippocampal interneurons to graded traumatic brain injury.

Authors:  Jan C Frankowski; Young J Kim; Robert F Hunt
Journal:  Neurobiol Dis       Date:  2018-07-19       Impact factor: 5.996

Review 6.  Prospects of Cannabidiol for Easing Status Epilepticus-Induced Epileptogenesis and Related Comorbidities.

Authors:  Dinesh Upadhya; Olagide W Castro; Raghavendra Upadhya; Ashok K Shetty
Journal:  Mol Neurobiol       Date:  2018-01-25       Impact factor: 5.590

7.  AP-1 and the injury response of the GFAP gene.

Authors:  Michael Brenner; Albee Messing; Michelle L Olsen
Journal:  J Neurosci Res       Date:  2018-10-22       Impact factor: 4.164

8.  α-Amino-3-Hydroxy-5-Methyl-4-Isoxazolepropionic Acid Receptor Plasticity Sustains Severe, Fatal Status Epilepticus.

Authors:  Nadia Adotevi; Ewa Lewczuk; Huayu Sun; Suchitra Joshi; Natalia Dabrowska; Sarah Shan; John Williamson; Jaideep Kapur
Journal:  Ann Neurol       Date:  2019-11-20       Impact factor: 10.422

9.  Induction of Temporal Lobe Epilepsy in Mice with Pilocarpine.

Authors:  Muhammad Nauman Arshad; Janice R Naegele
Journal:  Bio Protoc       Date:  2020-02-20

Review 10.  Revealing the Precise Role of Calretinin Neurons in Epilepsy: We Are on the Way.

Authors:  Yingbei Qi; Heming Cheng; Yi Wang; Zhong Chen
Journal:  Neurosci Bull       Date:  2021-07-29       Impact factor: 5.203

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