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Updated: Apr 7, 2026

Mutagenesis and Functional Analysis of Ion Channels Heterologously Expressed in Mammalian Cells
Published on: October 1, 2010
Comprehensive behavioral analysis of voltage-gated calcium channel beta-anchoring and -regulatory protein knockout
Akito Nakao1, Takafumi Miki2, Hirotaka Shoji3
1Division of Systems Medical Science, Institute for Comprehensive Medical Science, Fujita Health University Toyoake, Japan.
Abstract:
Calcium (Ca(2+)) influx through voltage-gated Ca(2+) channels (VGCCs) induces numerous intracellular events such as neuronal excitability, neurotransmitter release, synaptic plasticity, and gene regulation. It has been shown that genes related to Ca(2+) signaling, such as the CACNA1C, CACNB2, and CACNA1I genes that encode VGCC subunits, are associated with schizophrenia and other psychiatric disorders. Recently, VGCC beta-anchoring and -regulatory protein (BARP) was identified as a novel regulator of VGCC activity via the interaction of VGCC β subunits. To examine the role of the BARP in higher brain functions, we generated BARP knockout (KO) mice and conducted a comprehensive battery of behavioral tests. BARP KO mice exhibited greatly reduced locomotor activity, as evidenced by decreased vertical activity, stereotypic counts in the open field test, and activity level in the home cage, and longer latency to complete a session in spontaneous T-maze alteration test, which reached "study-wide significance." Acoustic startle response was also reduced in the mutants. Interestingly, they showed multiple behavioral phenotypes that are seemingly opposite to those seen in the mouse models of schizophrenia and its related disorders, including increased working memory, flexibility, prepulse inhibition, and social interaction, and decreased locomotor activity, though many of these phenotypes are statistically weak and require further replications. These results demonstrate that BARP is involved in the regulation of locomotor activity and, possibly, emotionality. The possibility was also suggested that BARP KO mice may serve as a unique tool for investigating the pathogenesis/pathophysiology of schizophrenia and related disorders. Further evaluation of the molecular and physiological phenotypes of the mutant mice would provide new insights into the role of BARP in higher brain functions.
Insights
The voltage-gated calcium channel beta-anchoring and -regulatory protein (BARP) regulates locomotor activity. BARP knockout mice show reduced movement and altered behaviors, offering insights into brain function and psychiatric disorders.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Calcium (Ca2+) influx via voltage-gated Ca2+ channels (VGCCs) regulates key neuronal functions.
- Genes encoding VGCC subunits are linked to psychiatric disorders like schizophrenia.
- VGCC beta-anchoring and -regulatory protein (BARP) is a newly identified regulator of VGCCs.
Purpose of the Study:
- To investigate the role of BARP in higher brain functions.
- To characterize the behavioral phenotypes of BARP knockout (KO) mice.
Main Methods:
- Generation of BARP knockout (KO) mice.
- Comprehensive battery of behavioral tests including open field, spontaneous T-maze alteration, and acoustic startle response tests.
Main Results:
- BARP KO mice exhibited significantly reduced locomotor activity and vertical activity.
- A longer latency to complete sessions in the spontaneous T-maze alteration test was observed.
- Reduced acoustic startle response and some opposing phenotypes to schizophrenia models were noted, requiring further validation.
Conclusions:
- BARP plays a role in regulating locomotor activity and potentially emotionality.
- BARP KO mice may serve as a valuable model for studying schizophrenia pathophysiology.
- Further research into BARP's molecular and physiological roles is warranted.
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