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Published on: May 19, 2017
Regulator of G-protein signaling 14 protein modulates Ca²+ influx through Cav1 channels
Elisa Martín-Montañez1, Maria José Acevedo, Juan Félix López-Téllez
1Laboratory of Neurobiology at CIMES, University of Malaga, Malaga, Spain.
Abstract:
Calcium flux through L-type voltage-activated calcium (Cav1) channels is crucial for regulating brain functions including memory formation and behavior. Alterations in Ca²+ homeostasis have been linked to many cognitive disorders, and understanding the regulation of this process is crucial for their remedy. Therefore, here, we have evaluated the effect of a multifunctional protein known to be involved in memory functions called regulator of G-protein signaling 14 (RGS-14) on Cav1 channel activity in neuronal cell lines NG108-15 and SH-SY5Y. RGS-14 protein produced significant reduction in Ca²+ influx in both cell lines and this effect was dependent on nifedipine-sensitive Cav1 channels. Thus, our results provide evidence supporting the idea that RGS-14 may facilitate the cognitive processing by modulating Cav1 channel-mediated intracellular Ca²+ transients.
Insights
Regulator of G-protein signaling 14 (RGS-14) protein reduces calcium influx via L-type voltage-activated calcium (Cav1) channels. This finding suggests RGS-14 may enhance cognitive functions by modulating Cav1 channel activity.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Physiology
Background:
- Calcium influx through L-type voltage-activated calcium (Cav1) channels is vital for brain functions like memory and behavior.
- Disruptions in calcium (Ca²⁺) homeostasis are associated with cognitive disorders, highlighting the need to understand Cav1 channel regulation.
Purpose of the Study:
- To investigate the impact of the multifunctional protein regulator of G-protein signaling 14 (RGS-14) on Cav1 channel activity.
- To determine if RGS-14 influences intracellular calcium transients in neuronal cell lines.
Main Methods:
- Utilized neuronal cell lines NG108-15 and SH-SY5Y for experiments.
- Assessed the effect of RGS-14 protein on Ca²⁺ influx.
- Examined the dependence of RGS-14's effect on nifedipine-sensitive Cav1 channels.
Main Results:
- RGS-14 protein significantly decreased Ca²⁺ influx in both NG108-15 and SH-SY5Y cell lines.
- The observed reduction in Ca²⁺ influx by RGS-14 was dependent on nifedipine-sensitive Cav1 channels.
Conclusions:
- RGS-14 modulates the activity of nifedipine-sensitive Cav1 channels.
- RGS-14 may play a role in facilitating cognitive processing through the regulation of Cav1 channel-mediated intracellular Ca²⁺ signaling.
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