恐惧条件下前扣带皮层L1中间神经元活动的双峰调节。

IF 3.4 3区 医学 Q2 NEUROSCIENCES Frontiers in Neural Circuits Pub Date : 2023-06-02 eCollection Date: 2023-01-01 DOI:10.3389/fncir.2023.1138358
Giuliana Fossati, Daniel Kiss-Bodolay, Julien Prados, Ronan Chéreau, Elodie Husi, Christelle Cadilhac, Lucia Gomez, Bianca A Silva, Alexandre Dayer, Anthony Holtmaat
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摘要

前扣带皮层(ACC)在编码、巩固和检索与情绪显著体验(如厌恶和奖励事件)相关的记忆方面发挥着至关重要的作用。各种研究都强调了它对恐惧记忆处理的重要性,但对它的电路机制仍知之甚少。ACC的皮层1层(L1)可能是信号整合的一个特别重要的位点,因为它是受局部抑制严格控制的长程输入的主要入口点。许多L1中间神经元表达离子型血清素受体3a(5HT3aR),该受体与创伤后应激障碍和焦虑模型有关。因此,揭示恐惧记忆过程中L1中间神经元及其亚型的反应动力学可以为调节这一过程的微电路组织提供重要的见解。在这里,通过清醒小鼠的微棱镜,使用基因编码的钙指示剂的2光子激光扫描显微镜,我们在几天内以音调提示的恐惧条件范式纵向监测了ACC中L1中间神经元的活动。我们观察到,在相当一部分成像神经元中,音调引发了反应,在音调与厌恶刺激相关后,这些神经元以双向方式被显著调制。这些神经元的一个亚群,即神经胶质细胞(NGCs),在恐惧条件下表现出音调诱发反应的净增加。总之,这些结果表明,L1中间神经元的不同亚群可能在调节恐惧学习和记忆的ACC电路中发挥不同的功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Bimodal modulation of L1 interneuron activity in anterior cingulate cortex during fear conditioning.

The anterior cingulate cortex (ACC) plays a crucial role in encoding, consolidating and retrieving memories related to emotionally salient experiences, such as aversive and rewarding events. Various studies have highlighted its importance for fear memory processing, but its circuit mechanisms are still poorly understood. Cortical layer 1 (L1) of the ACC might be a particularly important site of signal integration, since it is a major entry point for long-range inputs, which is tightly controlled by local inhibition. Many L1 interneurons express the ionotropic serotonin receptor 3a (5HT3aR), which has been implicated in post-traumatic stress disorder and in models of anxiety. Hence, unraveling the response dynamics of L1 interneurons and subtypes thereof during fear memory processing may provide important insights into the microcircuit organization regulating this process. Here, using 2-photon laser scanning microscopy of genetically encoded calcium indicators through microprisms in awake mice, we longitudinally monitored over days the activity of L1 interneurons in the ACC in a tone-cued fear conditioning paradigm. We observed that tones elicited responses in a substantial fraction of the imaged neurons, which were significantly modulated in a bidirectional manner after the tone was associated to an aversive stimulus. A subpopulation of these neurons, the neurogliaform cells (NGCs), displayed a net increase in tone-evoked responses following fear conditioning. Together, these results suggest that different subpopulations of L1 interneurons may exert distinct functions in the ACC circuitry regulating fear learning and memory.

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来源期刊
CiteScore
6.00
自引率
5.70%
发文量
135
审稿时长
4-8 weeks
期刊介绍: Frontiers in Neural Circuits publishes rigorously peer-reviewed research on the emergent properties of neural circuits - the elementary modules of the brain. Specialty Chief Editors Takao K. Hensch and Edward Ruthazer at Harvard University and McGill University respectively, are supported by an outstanding Editorial Board of international experts. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to researchers, academics and the public worldwide. Frontiers in Neural Circuits launched in 2011 with great success and remains a "central watering hole" for research in neural circuits, serving the community worldwide to share data, ideas and inspiration. Articles revealing the anatomy, physiology, development or function of any neural circuitry in any species (from sponges to humans) are welcome. Our common thread seeks the computational strategies used by different circuits to link their structure with function (perceptual, motor, or internal), the general rules by which they operate, and how their particular designs lead to the emergence of complex properties and behaviors. Submissions focused on synaptic, cellular and connectivity principles in neural microcircuits using multidisciplinary approaches, especially newer molecular, developmental and genetic tools, are encouraged. Studies with an evolutionary perspective to better understand how circuit design and capabilities evolved to produce progressively more complex properties and behaviors are especially welcome. The journal is further interested in research revealing how plasticity shapes the structural and functional architecture of neural circuits.
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