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Updated: Jun 29, 2026

Determination of the Relative Cell Surface and Total Expression of Recombinant Ion Channels Using Flow Cytometry
Published on: September 28, 2016
Disease causing mutations of calcium channels
Nancy M Lorenzon1, Kurt G Beam
1Department of Biological Sciences, University of Denver, Denver, Colorado, USA.
Abstract:
Calcium ions play an important role in the electrical excitability of nerve and muscle, as well as serving as a critical second messenger for diverse cellular functions. As a result, mutations of genes encoding calcium channels may have subtle affects on channel function yet strongly perturb cellular behavior. This review discusses the effects of calcium channel mutations on channel function, the pathological consequences for cellular physiology, and possible links between altered channel function and disease. Many cellular functions are directly or indirectly regulated by the free cytosolic calcium concentration. Thus, calcium levels must be very tightly regulated in time and space. Intracellular calcium ions are essential second messengers and play a role in many functions including, action potential generation, neurotransmitter and hormone release, muscle contraction, neurite outgrowth, synaptogenesis, calcium-dependent gene expression, synaptic plasticity and cell death. Calcium ions that control cell activity can be supplied to the cell cytosol from two major sources: the extracellular space or intracellular stores. Voltage-gated and ligand-gated channels are the primary way in which Ca(2+) ions enter from the extracellular space. The sarcoplasm reticulum (SR) in muscle and the endoplasmic reticulum in non-muscle cells are the main intracellular Ca(2+) stores: the ryanodine receptor (RyR) and inositol-triphosphate receptor channels are the major contributors of calcium release from internal stores.
Insights
Calcium channel mutations disrupt cellular functions and physiology, impacting nerve and muscle excitability. Understanding these genetic changes is key to linking altered calcium signaling to various diseases.
Area of Science:
- Cellular Physiology
- Molecular Biology
- Neuroscience
Background:
- Calcium ions (Ca2+) are vital for electrical excitability in nerve and muscle cells.
- Ca2+ acts as a critical second messenger regulating diverse cellular functions.
- Tight spatiotemporal regulation of cytosolic Ca2+ concentration is essential for cell activity.
Purpose of the Study:
- To review the impact of calcium channel mutations on channel function.
- To explore the pathological consequences of altered calcium handling in cellular physiology.
- To investigate potential links between calcium channel dysfunction and disease.
Main Methods:
- Review of existing literature on calcium channel genetics and function.
- Analysis of the role of calcium ions in cellular signaling pathways.
- Discussion of the physiological effects of genetic mutations affecting calcium channels.
Main Results:
- Mutations in calcium channel genes can subtly alter channel function but significantly impact cellular behavior.
- Altered calcium homeostasis due to mutations can lead to various pathological conditions.
- Specific calcium channels, including voltage-gated, ligand-gated, ryanodine receptors, and inositol-triphosphate receptors, are implicated.
Conclusions:
- Calcium channel mutations represent a significant factor in cellular dysfunction and disease pathogenesis.
- Further research into calcium channelopathies is crucial for understanding and treating related diseases.
- Understanding the intricate roles of calcium ions in cellular processes is fundamental to biomedical science.
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