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Neuronal circuitry for recognition memory of object and place in rodent models.啮齿类动物模型中对物体和位置识别记忆的神经元回路。
Neurosci Biobehav Rev. 2022 Oct;141:104855. doi: 10.1016/j.neubiorev.2022.104855. Epub 2022 Sep 8.
2
Sex hormone fluctuation and increased female risk for depression and anxiety disorders: From clinical evidence to molecular mechanisms.性激素波动与女性抑郁和焦虑障碍风险增加:从临床证据到分子机制。
Front Neuroendocrinol. 2022 Jul;66:101010. doi: 10.1016/j.yfrne.2022.101010. Epub 2022 Jun 15.
3
Sex-specific multi-level 3D genome dynamics in the mouse brain.雌雄小鼠大脑中特有的多层次 3D 基因组动力学。
Nat Commun. 2022 Jun 15;13(1):3438. doi: 10.1038/s41467-022-30961-w.
4
Hypothalamic modulation of adult hippocampal neurogenesis in mice confers activity-dependent regulation of memory and anxiety-like behavior.下丘脑对成年海马神经发生的调节赋予了记忆和焦虑样行为的活动依赖性调节。
Nat Neurosci. 2022 May;25(5):630-645. doi: 10.1038/s41593-022-01065-x. Epub 2022 May 6.
5
Estrous cycle contributes to state-dependent contextual fear in female rats.动情周期导致雌性大鼠状态依赖的情境性恐惧。
Psychoneuroendocrinology. 2022 Jul;141:105776. doi: 10.1016/j.psyneuen.2022.105776. Epub 2022 Apr 26.
6
Corticosterone induces discrete epigenetic signatures in the dorsal and ventral hippocampus that depend upon sex and genotype: focus on methylated Nr3c1 gene.皮质酮在雄性和雌性及不同基因型大鼠的背侧和腹侧海马诱导出离散的表观遗传特征:甲基化 Nr3c1 基因为重点。
Transl Psychiatry. 2022 Mar 16;12(1):109. doi: 10.1038/s41398-022-01864-7.
7
Influence of estrous cycle stage on acquisition and expression of fear conditioning in female rats.动情周期阶段对雌性大鼠恐惧条件反射获得和表达的影响。
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Estrogen-sensitive medial preoptic area neurons coordinate torpor in mice.雌激素敏感的视前内侧区神经元协调小鼠的蛰伏。
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Sex differences and effects of the estrous stage on hippocampal-prefrontal theta communications.性别的差异和发情期对海马-前额叶θ波通讯的影响。
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Neuroimaging the menstrual cycle: A multimodal systematic review.神经影像学与月经周期:一项多模态的系统综述。
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在动情周期中基于海马体的行为、结构和分子动力学。

Hippocampus-based behavioral, structural, and molecular dynamics across the estrous cycle.

机构信息

Department of Biological Sciences, Fordham University, Bronx, New York, USA.

出版信息

J Neuroendocrinol. 2023 Feb;35(2):e13216. doi: 10.1111/jne.13216. Epub 2022 Dec 29.

DOI:10.1111/jne.13216
PMID:36580348
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10050126/
Abstract

The activity of neurons in the rodent hippocampus contributes to diverse behaviors, with the activity of ventral hippocampal neurons affecting behaviors related to anxiety and emotion regulation, and the activity of dorsal hippocampal neurons affecting performance in learning- and memory-related tasks. Hippocampal cells also express receptors for ovarian hormones, estrogen and progesterone, and are therefore affected by physiological fluctuations of those hormones that occur over the rodent estrous cycle. In this review, we discuss the effects of cycling ovarian hormones on hippocampal physiology. Starting with behavior, we explore the role of the estrous cycle in regulating hippocampus-dependent behaviors. We go on to detail the cellular mechanisms through which cycling estrogen and progesterone, through changes in the structural and functional properties of hippocampal neurons, may be eliciting these changes in behavior. Then, providing a basis for these cellular changes, we outline the epigenetic, chromatin regulatory mechanisms through which ovarian hormones, by binding to their receptors, can affect the regulation of behavior- and synaptic plasticity-related genes in hippocampal neurons. We also highlight an unconventional role that chromatin dynamics may have in regulating neuronal function across the estrous cycle, including in sex hormone-driven X chromosome plasticity and hormonally-induced epigenetic priming. Finally, we discuss directions for future studies and the translational value of the rodent estrous cycle for understanding the effects of the human menstrual cycle on hippocampal physiology and brain disease risk.

摘要

啮齿动物海马体中的神经元活动有助于多种行为,其中腹侧海马体神经元的活动影响与焦虑和情绪调节相关的行为,而背侧海马体神经元的活动影响与学习和记忆相关任务的表现。海马体细胞还表达卵巢激素雌激素和孕激素的受体,因此受啮齿动物动情周期中这些激素生理波动的影响。在这篇综述中,我们讨论了循环卵巢激素对海马体生理学的影响。首先从行为开始,我们探讨了动情周期在调节海马体依赖性行为中的作用。接着,我们详细介绍了循环雌激素和孕激素通过改变海马体神经元的结构和功能特性,可能引发这些行为变化的细胞机制。然后,为这些细胞变化提供基础,我们概述了通过与受体结合,卵巢激素可以影响海马体神经元中与行为和突触可塑性相关基因的调节的表观遗传、染色质调节机制。我们还强调了染色质动力学在调节跨动情周期神经元功能方面的一种非传统作用,包括 X 染色体可塑性和激素诱导的表观遗传启动中的作用。最后,我们讨论了未来研究的方向以及啮齿动物动情周期在理解人类月经周期对海马体生理学和大脑疾病风险的影响方面的转化价值。