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PMID: 16832874 Published · ppublish English Corrected and Republished Article Journal Article Research Support, N.I.H., Extramural Review

Erratum to "Cellular mechanisms underlying acquired epilepsy: the calcium hypothesis of the induction and maintenance of epilepsy." [Pharmacol. Ther. 105(3) (2005) 229-266].

Pharmacology & therapeutics ·Vol. 111 ·No. 1 ·2006-07-00 ·Pages 288-325

DeLorenzo RJ, Sun DA, Deshpande LS

Abstract

Epilepsy is one of the most common neurological disorders. Although epilepsy can be idiopathic, it is estimated that up to 50% of all epilepsy cases are initiated by neurological insults and are called acquired epilepsy (AE). AE develops in 3 phases: (1) the injury [central nervous system (CNS) insult]. (2) epileptogenesis (latency), and (3) the chronic epileptic (spontaneous recurrent seizure) phases. Status epilepticus (SE), stroke, and traumatic brain injury (TBI) are 3 major examples of common brain injuries that can lead to the development of AE. It is especially important to understand the molecular mechanisms that cause AE because it may lead to innovative strategies to prevent or cure this common condition. Recent studies have offered new insights into the cause of AE and indicate that injury-induced alterations in intracellular calcium concentration levels ([Ca(2+)](i)) and calcium homeostatic mechanisms play a role in the development and maintenance of AE. The injuries that cause AE are different, but the share a common molecular mechanism for producing brain damage--an increase in extracellular glutamate and are exposed to increased [Ca(2+)](i) are the cellular substrates to develop epilepsy because dead cells do not seize. The neurons that survive injury sustain permanent long-term plasticity changes in [Ca(2+)](i) and calcium homeostatic mechanisms that are permanent and are a prominent feature of the epileptic phenotype. In the last several years, evidence has accumulated indicating that the prolonged alteration in neuronal calcium dynamics plays an important role in the induction and maintenance of the prolonged neuroplasticity changes underlying the epileptic phenotype. Understanding the role of calcium as a second messenger in the induction and maintenance of epilepsy may provide novel insights into therapeutic advances that will prevent and even cure AE.

MeSH Terms
Animals Anticonvulsants Brain Injuries/complications,physiopathology Calcium/metabolism,physiology Epilepsy/etiology,metabolism,physiopathology Glutamic Acid/metabolism Homeostasis/physiology Humans
Chemicals
Anticonvulsants Glutamic Acid Calcium
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
DeLorenzo Robert J
Department of Neurology, Virginia Commonwealth University, School of Medicine, Richmond, 23298-0599, USA. [email protected]
Sun David A
Deshpande Laxmikant S
Article Info
Journal
Pharmacology & therapeutics
Abbr.
Pharmacol Ther
ISSN
0163-7258
Published
2006-07-00
Pages
288-325
Language
English
Region
England
NLM ID
7905840
Subset
IM
Grants
NINDS NIH HHS · P50-NS · United States
NINDS NIH HHS · R01-NS · United States
Corrections
RepublishedFrom
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