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应激加速了老鼠对逼近刺激的防御反应,涉及蓝斑-上丘投射。

Stress Accelerates Defensive Responses to Looming in Mice and Involves a Locus Coeruleus-Superior Colliculus Projection.

机构信息

Shenzhen Key Lab of Neuropsychiatric Modulation and Collaborative Innovation Center for Brain Science, Guangdong Provincial Key Laboratory of Brain Connectome and Behavior, CAS Center for Excellence in Brain Science and Intelligence Technology, the Brain Cognition and Brain Disease Institute (BCBDI), Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, China.

Shenzhen Key Lab of Neuropsychiatric Modulation and Collaborative Innovation Center for Brain Science, Guangdong Provincial Key Laboratory of Brain Connectome and Behavior, CAS Center for Excellence in Brain Science and Intelligence Technology, the Brain Cognition and Brain Disease Institute (BCBDI), Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, China; University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Curr Biol. 2018 Mar 19;28(6):859-871.e5. doi: 10.1016/j.cub.2018.02.005. Epub 2018 Mar 1.

Abstract

Defensive responses to threatening stimuli are crucial to the survival of species. While expression of these responses is considered to be instinctive and unconditional, their magnitude may be affected by environmental and internal factors. The neural circuits underlying this modulation are still largely unknown. In mice, looming-evoked defensive responses are mediated by the superior colliculus (SC), a subcortical sensorimotor integration center. We found that repeated stress caused an anxiety-like state in mice and accelerated defensive responses to looming. Stress also induced c-fos activation in locus coeruleus (LC) tyrosine hydroxylase (TH) neurons and modified adrenergic receptor expression in SC, suggesting a possible Th::LC-SC projection that may be involved in the accelerated defensive responses. Indeed, both anterograde and retrograde neural tracing confirmed the anatomical Th::LC-SC projection and that the SC-projecting TH neurons in LC were activated by repeated stress. Optogenetic stimulation of either LC TH neurons or the Th::LC-SC fibers also caused anxiety-like behaviors and accelerated defensive responses to looming. Meanwhile, chemogenetic inhibition of LC TH neurons and the infusion of an adrenergic receptor antagonist in SC abolished the enhanced looming defensive responses after repeated stress, confirming the necessity of this pathway. These findings suggest that the Th::LC-SC pathway plays a key role in the sophisticated adjustments of defensive behaviors induced by changes in physiological states.

摘要

防御性反应对威胁性刺激至关重要,这对物种的生存至关重要。虽然这些反应的表达被认为是本能和无条件的,但它们的幅度可能会受到环境和内部因素的影响。这种调节的神经回路在很大程度上仍然未知。在小鼠中,迫近诱发的防御反应是由上丘(SC)介导的,上丘是一个皮质下感觉运动整合中心。我们发现,重复的压力会导致小鼠出现焦虑状态,并加速对迫近的防御反应。压力还会诱导蓝斑核(LC)酪氨酸羟化酶(TH)神经元中的 c-fos 激活,并改变 SC 中的肾上腺素能受体表达,这表明可能存在 Th::LC-SC 投射,可能参与加速防御反应。事实上,顺行和逆行神经追踪都证实了 Th::LC-SC 投射的解剖结构,并且 LC 中的 SC 投射 TH 神经元被重复压力激活。LC TH 神经元或 Th::LC-SC 纤维的光遗传学刺激也会引起焦虑样行为,并加速对迫近的防御反应。同时,化学遗传抑制 LC TH 神经元和 SC 中的肾上腺素能受体拮抗剂的输注消除了重复压力后增强的迫近防御反应,证实了该途径的必要性。这些发现表明,Th::LC-SC 通路在生理状态变化引起的防御行为的复杂调节中起着关键作用。

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