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催乳素增强育龄期雌性小鼠海马突触可塑性。

Prolactin enhances hippocampal synaptic plasticity in female mice of reproductive age.

机构信息

Laboratory of Neurophysiology and Synaptic Plasticity, Instituto Cajal, Consejo Superior de Investigaciones Científicas, Madrid, Spain.

出版信息

Hippocampus. 2021 Mar;31(3):281-293. doi: 10.1002/hipo.23288. Epub 2020 Dec 7.

Abstract

Dynamic signaling between the endocrine system (ES) and the nervous system (NS) is essential for brain and body homeostasis. In particular, reciprocal interaction occurs during pregnancy and motherhood that may involve changes in some brain plasticity processes. Prolactin (PRL), a hormone with pleiotropic effects on the NS, promotes maternal behavior and has been linked to modifications in brain circuits during motherhood; however, it is unclear whether PRL may regulate synaptic plasticity. Therefore, the main aim of the present work was to determine the cellular and molecular mechanisms triggered by PRL that regulate synaptic plasticity in the hippocampus. By analyzing extracellular recordings in CA3-CA1 synapses of hippocampal slices, we report that PRL modifies short and long-term synaptic plasticity in female mice of reproductive age, but not in sexually immature females or adult males. This effect is carried out through mechanisms that include participation of GABA receptors and activation of the JAK2-mediated signaling pathway. These findings show for the first time how PRL enhances the synaptic strength in hippocampal circuits and that this effect is sexually dimorphic, which would influence complex brain processes in physiological conditions like pregnancy and lactation.

摘要

内分泌系统 (ES) 和神经系统 (NS) 之间的动态信号对于大脑和身体的稳态至关重要。特别是,在怀孕和母亲时期会发生相互作用,这可能涉及一些大脑可塑性过程的变化。催乳素 (PRL) 是一种对神经系统具有多种作用的激素,它促进了母性行为,并与母亲时期大脑回路的改变有关;然而,尚不清楚 PRL 是否可以调节突触可塑性。因此,本工作的主要目的是确定 PRL 触发的调节海马体突触可塑性的细胞和分子机制。通过分析海马脑片 CA3-CA1 突触的细胞外记录,我们报告 PRL 可调节生殖年龄雌性小鼠的短期和长期突触可塑性,但不能调节未成熟雌性或成年雄性小鼠的短期和长期突触可塑性。这种作用是通过包括 GABA 受体参与和 JAK2 介导的信号通路激活的机制来实现的。这些发现首次表明 PRL 如何增强海马体回路中的突触强度,并且这种作用具有性别二态性,这将影响怀孕和哺乳等生理条件下的复杂大脑过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3d56/7983975/af2eaa5f99ce/HIPO-31-281-g002.jpg

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