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Neurobehavioral phenotyping of Gαq knockout mice reveals impairments in motor functions and spatial working memory without changes in anxiety or behavioral despair

机译:Gαq基因敲除小鼠的神经行为表型揭示了运动功能和空间工作记忆受损,而焦虑或行为绝望没有改变

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摘要

Many neurotransmitters, hormones, and sensory stimuli elicit their cellular responses through the targeted activation of receptors coupled to the Gαq family of heterotrimeric G proteins. Nevertheless, we still understand little about the consequences of loss of this signaling activity on brain function. We therefore examined the effects of genetic inactivation of Gnaq, the gene that encode for Gαq, on responsiveness in a battery of behavioral tests in order to assess the contribution of Gαq signaling capacity in the brain circuits mediating expression of affective behaviors (anxiety and behavioral despair), spatial working memory, and locomotor output (coordination, strength, spontaneous activity, and drug-induced responses). First, we replicated and extended findings showing clear motor deficits in Gαq knockout mice as assessed on an accelerating rotarod and the inverted screen test. We then assessed the contribution of the basal ganglia motor loops to these impairments, using open field testing and analysis of drug-induced locomotor responses to the psychostimulant cocaine, the benzazepine D1 receptor agonists SKF83822 and SKF83959, and the NMDA receptor antagonist MK-801. We observed significant increases in drug-induced locomotor activity in Gαq knockout mice from the dopaminergic agonists but not MK-801, indicating that basal ganglia locomotor circuitry is largely intact in the absence of Gαq. Additionally, we observed normal phenotypes in both the elevated zero maze and the forced swim test indicating that anxiety and depression-related circuitry appears to be largely intact after loss of Gnaq expression. Lastly, use of the Y-maze revealed spatial memory deficits in Gαq knockout mice, indicating that receptors signaling through Gαq are necessary in these circuits for proficiency in this task.
机译:许多神经递质,激素和感觉刺激通过与异源三聚体G蛋白的Gαq家族偶联的受体的靶向激活而引发细胞反应。尽管如此,我们对这种信号活性丧失对脑功能的后果仍然知之甚少。因此,我们在一系列行为测试中检查了Gnaq(编码Gαq的基因)的基因失活对反应性的影响,以便评估Gαq信号传递能力在介导情感行为表达(焦虑和行为绝望)的大脑回路中的作用),空间工作记忆和运动输出(协调,力量,自发活动和药物诱导的反应)。首先,我们重复并扩展了发现,根据加速的旋转脚架和倒置屏幕测试评估,显示出在Gαq基因敲除小鼠中明显的运动缺陷。然后,我们使用旷场测试和药物诱导的对精神刺激性可卡因,苯并ze庚因D1受体激动剂SKF83822和SKF83959以及NMDA受体拮抗剂MK-801的运动反应进行评估,从而评估了基底节运动回路对这些损伤的贡献。我们观察到多巴胺能激动剂引起的Gαq基因敲除小鼠中药物诱导的自发活动显着增加,但MK-801却没有,这表明在缺乏Gαq的情况下,基底神经节的自发运动在很大程度上是完整的。此外,我们在升高的零迷宫和强迫游泳测试中均观察到正常表型,这表明在失去Gnaq表达后,与焦虑和抑郁相关的电路似乎基本完好无损。最后,使用Y迷宫揭示了Gαq基因敲除小鼠的空间记忆缺陷,这表明在这些电路中,通过Gαq信号传导的受体对于精通这项任务是必需的。

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