TY - JOUR
T1 - Behavioral and neurochemical characterization of mice deficient in the N-type Ca 2+ channel α 1B subunit
AU - Nakagawasai, Osamu
AU - Onogi, Hiroshi
AU - Mitazaki, Satoru
AU - Sato, Atsushi
AU - Watanabe, Kenya
AU - Saito, Hiroko
AU - Murai, Shigeo
AU - Nakaya, Kota
AU - Murakami, Manabu
AU - Takahashi, Eiki
AU - Tan-No, Koichi
AU - Tadano, Takeshi
N1 - Funding Information:
This study was supported in part by NISHINOMIYA Basic Research Fund , Grants-in-Aid for Scientific Research ( 20790309 ) and for High Technology Research Program from the Ministry of Education, Culture, Sports, Science and Technology of Japan.
PY - 2010/3/17
Y1 - 2010/3/17
N2 - N-type voltage-dependent calcium channels (VDCCs) play an important role in neurotransmission, synaptic plasticity, and brain development. They are composed of several subunits named α 1, α 2, δ, β and γ. The α 1 subunit is essential for channel functions and determines fundamental channel properties. Since N-type VDCC are critically involved in the release of neurotransmitters and clinical relevance, we predicted that α 1 subunit KO mice would show several alterations in behavior. In the present study, we investigated neuronal functions in mice lacking the α 1B (Ca V2.2) subunit of the N-type calcium channels. Ca V2.2 -/- mice exhibited a significant increase in locomotion on an activity wheel during the dark phase. Furthermore, when challenged with apomorphine, mutant mice showed enhanced locomotor activity. Cognitive functions were examined using a Y-maze task for short-term memory and a passive avoidance task for long-term memory. The Y-maze revealed no differences in spontaneous alternation behavior between mutant and wild-type mice. The passive avoidance test revealed that the latency time in mutant mice was significantly decreased. The mutant mice showed prepulse inhibition deficits reminiscent of the sensorimotor gating deficits observed in a large majority of schizophrenic patients. Decreases in baseline levels of dopamine and serotonin within the striata and frontal cortices of mutant mice were also observed. These results suggest that Ca 2+ in the central nervous system modulates various neurophysiological functions, such as locomotor activity, long-term memory, and sensorimotor gating through the α 1B subunit of the N-type calcium channels.
AB - N-type voltage-dependent calcium channels (VDCCs) play an important role in neurotransmission, synaptic plasticity, and brain development. They are composed of several subunits named α 1, α 2, δ, β and γ. The α 1 subunit is essential for channel functions and determines fundamental channel properties. Since N-type VDCC are critically involved in the release of neurotransmitters and clinical relevance, we predicted that α 1 subunit KO mice would show several alterations in behavior. In the present study, we investigated neuronal functions in mice lacking the α 1B (Ca V2.2) subunit of the N-type calcium channels. Ca V2.2 -/- mice exhibited a significant increase in locomotion on an activity wheel during the dark phase. Furthermore, when challenged with apomorphine, mutant mice showed enhanced locomotor activity. Cognitive functions were examined using a Y-maze task for short-term memory and a passive avoidance task for long-term memory. The Y-maze revealed no differences in spontaneous alternation behavior between mutant and wild-type mice. The passive avoidance test revealed that the latency time in mutant mice was significantly decreased. The mutant mice showed prepulse inhibition deficits reminiscent of the sensorimotor gating deficits observed in a large majority of schizophrenic patients. Decreases in baseline levels of dopamine and serotonin within the striata and frontal cortices of mutant mice were also observed. These results suggest that Ca 2+ in the central nervous system modulates various neurophysiological functions, such as locomotor activity, long-term memory, and sensorimotor gating through the α 1B subunit of the N-type calcium channels.
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U2 - 10.1016/j.bbr.2009.11.042
DO - 10.1016/j.bbr.2009.11.042
M3 - Article
C2 - 19963013
AN - SCOPUS:77951885292
SN - 0166-4328
VL - 208
SP - 224
EP - 230
JO - Behavioural Brain Research
JF - Behavioural Brain Research
IS - 1
ER -