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下丘脑-延髓网络对环境应激的生理反应。

A hypothalamomedullary network for physiological responses to environmental stresses.

机构信息

Department of Integrative Physiology, Nagoya University Graduate School of Medicine, Nagoya, Japan.

Nagoya University Institute for Advanced Research, Nagoya, Japan.

出版信息

Nat Rev Neurosci. 2022 Jan;23(1):35-52. doi: 10.1038/s41583-021-00532-x. Epub 2021 Nov 2.

Abstract

Various environmental stressors, such as extreme temperatures (hot and cold), pathogens, predators and insufficient food, can threaten life. Remarkable progress has recently been made in understanding the central circuit mechanisms of physiological responses to such stressors. A hypothalamomedullary neural pathway from the dorsomedial hypothalamus (DMH) to the rostral medullary raphe region (rMR) regulates sympathetic outflows to effector organs for homeostasis. Thermal and infection stress inputs to the preoptic area dynamically alter the DMH → rMR transmission to elicit thermoregulatory, febrile and cardiovascular responses. Psychological stress signalling from a ventromedial prefrontal cortical area to the DMH drives sympathetic and behavioural responses for stress coping, representing a psychosomatic connection from the corticolimbic emotion circuit to the autonomic and somatic motor systems. Under starvation stress, medullary reticular neurons activated by hunger signalling from the hypothalamus suppress thermogenic drive from the rMR for energy saving and prime mastication to promote food intake. This Perspective presents a combined neural network for environmental stress responses, providing insights into the central circuit mechanism for the integrative regulation of systemic organs.

摘要

各种环境应激源,如极端温度(热和冷)、病原体、捕食者和食物不足,都可能威胁生命。最近,人们在理解生理应激反应的中枢回路机制方面取得了显著进展。从背内侧下丘脑(DMH)到喙状腹侧中缝核区域(rMR)的下丘脑-延髓神经通路调节自主传出,以维持效应器的稳态。热和感染应激传入视前区会动态改变 DMH→rMR 传递,从而引发体温调节、发热和心血管反应。来自腹侧前额皮质区的心理应激信号传递到 DMH 会驱动自主神经和行为反应以应对压力,这代表了从皮质边缘情绪回路到自主和躯体运动系统的身心连接。在饥饿应激下,由下丘脑发出的饥饿信号激活的延髓网状神经元抑制来自 rMR 的产热驱动,以节省能量并促进咀嚼,从而促进食物摄入。本观点提出了一个用于环境应激反应的综合神经网络,为系统器官综合调节的中枢回路机制提供了见解。

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