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Published on: August 17, 2011
The role of T-type calcium channels in epilepsy and pain
M T Nelson1, S M Todorovic, E Perez-Reyes
1Department of Anesthesiology, University of Virginia, Charlottesville, VA 22908, USA.
Abstract:
T-type calcium channels open in response to small depolarizations of the plasma membrane. The entry of two positive charges with every calcium ion leads to a further depolarization of the membrane, the low threshold spike, and opening of channels that have a higher threshold. In this manner, T-channels play an important pacemaker role in gating the activity of Na+ and Ca2+ channels. T-channels are preferentially expressed in dendrites, suggesting they play important roles in synaptic integration. Pharmacological evidence indicates that they are expressed in the receptive fields of sensory neurons, suggesting they play a primary role in nociception. Molecular cloning of the three T-channel genes has allowed detailed studies on their channel properties, pharmacology, distribution in the brain, up-regulation in animal models of disease, and provided the tools to screen for novel drugs. Studies on transgenic animals have provided the proof-of-concept that T-channels are important drug targets for the treatment of absence epilepsy and neuropathic pain. Mutations in ion channel genes, or channelopathies, have been found in many diseases. Similarly, T-channel gene mutations have been found in patients with childhood absence epilepsy. Considering the important role T-channels play in the thalamus, it is likely that T-channel mutations also contribute to a wider range of disorders characterized by thalamocortical dysrhythmia.
Insights
T-type calcium channels are crucial for brain activity and synaptic integration. Mutations in these channels are linked to absence epilepsy and neuropathic pain, highlighting their therapeutic potential.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- T-type calcium channels (T-channels) activate with small membrane depolarizations.
- They play a pacemaker role, influencing other ion channels and contributing to neuronal excitability.
- T-channels are implicated in synaptic integration and nociception due to their expression patterns.
Purpose of the Study:
- To review the properties, distribution, and disease relevance of T-type calcium channels.
- To highlight the role of T-channels as drug targets for neurological disorders.
- To discuss the implications of T-channel mutations (channelopathies) in diseases.
Main Methods:
- Molecular cloning of T-channel genes for detailed study.
- Pharmacological characterization of T-channel properties and distribution.
- Analysis of transgenic animal models and human genetic studies.
Main Results:
- T-channels are key regulators of neuronal firing and synaptic function.
- Studies confirm T-channels as viable drug targets for absence epilepsy and neuropathic pain.
- T-channel gene mutations are identified in childhood absence epilepsy.
Conclusions:
- T-type calcium channels are critical for thalamocortical function.
- Mutations in T-channels contribute to various neurological disorders, including epilepsy.
- Targeting T-channels offers therapeutic strategies for pain and seizure disorders.
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