在正常沙鼠和听力受损沙鼠短暂的联想学习时间窗口中,后纹状体出现了听觉感觉表征的形成。

IF 3.5 4区 医学 Q2 NEUROSCIENCES
Frontiers in Systems Neuroscience Pub Date : 2025-09-29 eCollection Date: 2025-01-01 DOI:10.3389/fnsys.2025.1642595
Jared B Smith, Sean S Hong, Damian J Murphy, Shrivaishnavi Chandrasekar, Evelynne Dangcil, Jacqueline Nacipucha, Aaron Tucker, Nicolas L Carayannopoulos, Sofia Carayannopoulos, Eran Peci, Matthew Y Kiel, Nikhil Suresh, Maureen Guirguis, Umut A Utku, Nihaad Paraouty, Jennifer D Gay, P Ashley Wackym, Justin D Yao, Todd M Mowery
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引用次数: 0

摘要

简介:纹状体后尾接收来自皮层和丘脑感觉区以及中脑多巴胺能神经支配的密集输入,为联想感觉学习提供神经基质。之前,我们已经证明发育性听力损失与纹状体中棘神经元(MSNs)的异常生理状态有关。方法:在听觉发育关键期,对短暂发展性听力损失或假性听力损失的成年蒙古沙鼠纹状体的听觉联想学习障碍进行直接研究。我们利用电生理学揭示了动物在学习“去/不去”听觉辨别任务时,体内神经元群体的反应以及体外中棘神经元的内在和突触特性的显著变化。在体内实验中,在纹状体后尾的听觉区植入一个64通道电极,并在动物学习任务时进行神经元记录。在体外实验中,在训练的每一天从动物身上制备皮质纹状体切片。结果:在naïve实验中,两组动物在体内对任何一种听觉刺激都没有锁相,而在体外,θ波爆发刺激导致长期抑郁。此外,正常听力动物的内在和突触特性未受影响;然而,听力损失组的突触抑制、突触过度兴奋和内在兴奋性抑制继续降低。从第3-4天开始,两组在体内观察到纹状体中棘神经元对听觉条件刺激的锁相现象。在MSN全细胞体外记录过程中,这与θ波爆发诱导LTP的可能性增加同时发生,并且在行为正常的动物中,作为正确排斥反应的任务获得显著增加。在习得期,听力正常组的msn突触抑制明显减少,突触兴奋明显增加,内禀兴奋性无变化,而听力损失组的msn突触抑制明显增加,突触超兴奋性减少,内禀兴奋性代偿性改变,支持正常动作电位的产生。在两组中,突触特性被解决到相似的E/I平衡水平,这可能是保守学习状态的一部分。讨论:这些内在和突触特性的变化可能支持LTP在体内的诱导,以及听觉输入和msn之间突触的加强,从而促进神经元相锁定。这些发现对于我们理解早期生活中纹状体对感觉障碍的恢复能力具有重要意义,此外还建立了对支持奖励驱动的刺激-反应学习的纹状体回路变化的细致理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Formation of an auditory sensory representation in posterior striatum emerges during a brief temporal window of associative learning in normal and hearing-impaired gerbils.

Introduction: The posterior tail of the striatum receives dense inputs from sensory regions of cortex and thalamus, as well as midbrain dopaminergic innervation, providing a neural substrate for associative sensory learning. Previously, we have demonstrated that developmental hearing loss is associated with aberrant physiological states in striatal medium spiny neurons (MSNs).

Methods: Here we directly investigated auditory associative learning impairments in the striatum of adult Mongolian gerbils that underwent transient developmental hearing loss or sham hearing loss during the critical period of auditory development. We used electrophysiology to reveal significant changes to neuronal population responses in vivo and intrinsic and synaptic properties to medium spiny neurons in vitro as animals learned an appetitive "Go/No-Go" auditory discrimination task. For in vivo experiments a 64-channel electrode was implanted in the auditory region of the posterior tail of the striatum and neuronal recordings were carried out as animals learned the task. For in vitro experiments, corticostriatal slice preparations were made from animals on each day of training.

Results: In naïve animals from both groups there was limited to no phase locking to either auditory stimulus in vivo, and long term depression resulted from theta burst stimulation in vitro. Furthermore, intrinsic and synaptic properties in normal hearing animals were unaffected; however, the hearing loss group continued to show lowered synaptic inhibition, synaptic hyperexcitation, and suppressed intrinsic excitability in the hearing loss group. Starting around day 3-4 in both groups, the emergence of striatal medium spiny neuron phase locking to the auditory conditioning stimuli was observed in vivo. This occurred contemporaneous to an increased probability of theta burst induced LTP during MSN whole cell recording in vitro, and acquisition of the task as the correct rejection response significantly increased in the behaving animals. During the acquisition phase MSNs in the normal hearing group showed a significant decrease in synaptic inhibition and increase in synaptic excitation with no change to intrinsic excitability, while the MSNs in the hearing loss group showed a significant increase in synaptic inhibition, reduction of synaptic hyper excitability, and compensatory changes to intrinsic excitability that supported normal action potential generation. In both groups, synaptic properties were resolved to similar level of E/I balance that could be part of a conserved learning state.

Discussion: These changes to the intrinsic and synaptic properties likely support LTP induction in vivo and the strengthening of synapses between auditory inputs and MSNs that facilitate neuronal phase locking. These findings have significant implications for our understanding of striatal resilience to sensory impairments in early life, in addition to establishing a granular understanding of the striatal circuit changes that support reward driven stimulus-response learning.

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来源期刊
Frontiers in Systems Neuroscience
Frontiers in Systems Neuroscience Neuroscience-Developmental Neuroscience
CiteScore
6.00
自引率
3.30%
发文量
144
审稿时长
14 weeks
期刊介绍: Frontiers in Systems Neuroscience publishes rigorously peer-reviewed research that advances our understanding of whole systems of the brain, including those involved in sensation, movement, learning and memory, attention, reward, decision-making, reasoning, executive functions, and emotions.
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