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Updated: Jan 6, 2026

Controlled Cortical Impact Model for Traumatic Brain Injury
Published on: August 5, 2014
A Pharmacological Perspective on Targeting the Voltage-Gated Calcium Channel Subunit α2δ(1-2) to Mitigate Traumatic
Jijo Stebin Justus1, Marcelo S Rodolphi2, Bruna Valdameri2
1Laboratory of Neurotrauma and Biomarkers, Department of Biochemistry, ICBS, Federal University of Rio Grande do Sul - UFRGS, Porto Alegre, RS, Brazil. jijo.stebin@ufrgs.br.
None:
Traumatic brain injury (TBI) is a significant global public health issue, affecting millions annually. Excessive calcium influx in neurons and astrocytes triggers a cascade of neurotoxic events, including mitochondrial dysfunction, increased production of reactive oxygen species, and hypometabolism, all of which contribute to impaired neurological function. Following TBI, alterations in presynaptic voltage-gated calcium channels (VGCCs) and the formation of plasma membrane pores facilitate Ca2+ influx, membrane depolarization, and an increased vesicular release of glutamate and Ca2+ into the synaptic cleft. This leads to the overactivation of NMDA receptors and the propagation of neurotoxic Ca2+ signals to neighboring neurons, further spreading neurobiochemical disruptions. Given this, blocking Ca2+ influx may mitigate excitotoxicity, and mitochondrial alterations caused by TBI. Among the pathways involved in Ca2+ cytotoxicity, the alpha-2-delta (α2δ(1-2)) subunit of VGCCs, located at the presynaptic terminal, remains the least explored. In this review, we briefly examine the pathophysiological hallmarks of TBI and their connection to Ca2+ dysregulation, while exploring the distribution of VGCC subtypes in the brain. Additionally, we highlight pregabalin, an analog of gabapentin and a selective antagonist of the α2δ(1-2) subunit, as a promising therapeutic strategy to counteract Ca2+-induced neurotoxicity following TBI.
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