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通过竞争的需求状态抑制疼痛的神经回路
Amber L Alhadeff1, Zhenwei Su1, Elen Hernandez1
1Department of Biology, University of Pennsylvania, Philadelphia, PA 19104, USA.
Cell
|March 24, 2018
概括
饥饿会通过激活特定的大脑回路来减轻炎症性疼痛的影响. 这项研究确定了一条神经通路,涉及到AgRP神经元和神经Y的信号传递,用于抑制疼痛.
科学领域:
- 神经科学
- 疼痛研究
- 代谢信号
背景情况:
- 为了生存,我们必须平衡饥饿和痛苦等需求.
- 这些生存信号的优先级神经机制尚不清楚.
研究的目的:
- 研究饥饿如何影响对炎症疼痛的感知和反应.
- 确定神经回路和分子通路参与这种相互作用.
主要方法:
- 利用动物模型研究不同饥饿状态下对炎症疼痛的行为反应.
- 研究了表达agouti相关蛋白 (AgRP) 神经元及其预测的作用.
- 检查了神经Y (NPY) 在核 (PBN) 信号的参与.
主要成果:
- 饥饿会减轻对炎症疼痛的行为和情感反应,而不会影响急性痛感.
- 激活AgRP神经元可以集中控制这种抗nociceptive作用.
- AgRP 投射到双臂核 (PBN) 是至关重要的,因为刺激 AgRP → PBN 神经元模仿饥饿诱导的疼痛缓解.
- 神经Y (NPY) 信号,特别是通过PBN中的NPY Y1受体,调解饥饿的抗效应.
结论:
- 一个特定的神经回路涉及AgRP神经元及其投射到PBN中介于饥饿优先于炎症疼痛.
- 在PBN中的NPY Y1受体信号代表了抑制疼痛的潜在治疗标.
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