在口渴调节的基础上的层次神经架构
Vineet Augustine1,2, Sertan Kutal Gokce2, Sangjun Lee2
1Computation and Neural Systems, California Institute of Technology, Pasadena, California, USA.
Nature
|March 1, 2018
概括
研究人员在小鼠中发现了一种层次神经电路, 通过将同位素需求与饮酒行为相结合来调节口渴. 这种电路使用特定的神经元来控制液体摄入和腹感, 保持水平衡.
科学领域:
- 神经科学
- 生理学
背景情况:
- 胃口调节涉及同位体信号和消化行为.
- 这些干渴刺激的神经回路组织尚不清楚.
研究的目的:
- 为了阐明神经回路结构调节小鼠的口渴.
- 了解内部和外部刺激是如何集成控制饮酒行为.
主要方法:
- 使用小鼠模型来研究脑膜末端的神经回路.
- 使用基因操纵来研究特定的神经元群的功能 (例如,氧化合成酶和GLP1R表达的神经元).
- 监测神经活动和饮酒行为以应对液体摄入.
主要成果:
- 确定了在膜末端调节口渴的等级电路.
- 证明中部预视核 (MnPO) 中的氧化合成酶表达神经元集成来自亚视器官 (SFO) 渴望神经元的信号.
- 发现了一种涉及MnPO GABAergic神经元表达葡萄糖类1受体 (GLP1R) 的抑制电路,该电路在饮酒时抑制SFO口渴神经元.
- 表明这些抑制反应是特定于饮用液体的,并与饮酒开始/消退时间相锁定.
- 发现GLP1R表达MnPO神经元的功能丧失导致过度饮酒 (多重饮食症).
结论:
- 脑膜末端的神经群形成一个对口渴调节的层次循环.
- 通过实时监测液体摄入,GLP1R表达的MnPO神经元在快速满足口渴方面发挥着关键作用.
- 这种电路可以动态地整合流体需求与饮用行为, 以保持水平衡.
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