Experience-Dependent Intrinsic Plasticity in Layer IV of Barrel Cortex at Whisking Onset.

IF 2.7 3区 医学 Q3 NEUROSCIENCES
eNeuro Pub Date : 2025-08-19 Print Date: 2025-08-01 DOI:10.1523/ENEURO.0252-25.2025
Molly C Shallow, Lucy Tian, Bryan T Higashikubo, Hudson Lin, Katheryn B Lefton, Siyu Chen, Joseph D Dougherty, Joe P Culver, Mary E Lambo, Keith B Hengen
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Abstract

The development of motor control over sensory organs is a critical milestone, enabling active exploration and shaping of the sensory environment. Whether the onset of sensory organ motor control directly influences the development of corresponding sensory cortices remains unknown. Here, we confirm and exploit the late onset of whisking behavior in mice to address this question in the somatosensory system. Using ex vivo electrophysiology, we describe a transient increase in the intrinsic excitability of excitatory neurons in layer IV of the barrel cortex, which processes whisker input, immediately following the onset of active whisking on postnatal days 13 and 14. This increase in neuronal gain is specific to layer IV, independent of changes in synaptic strength, and requires prior sensory experience. Further, these effects are not expressed in inhibitory interneurons in barrel cortex. The transient increase in excitability is not evident in layer II/III of barrel cortex or in the visual cortex upon eye opening, suggesting a unique interaction between the development of active sensing and the thalamocortical input layer in the somatosensory isocortex. Predictive modeling indicates that, immediately following the onset of active whisking, changes in active membrane conductances alone can reliably distinguish neurons in control but not whisker-deprived hemispheres. Our findings demonstrate an experience-dependent, lamina-specific refinement of neuronal excitability tightly linked to the emergence of active whisking. This transient increase in the gain of the thalamic input layer coincides with a critical period for synaptic plasticity in downstream layers, suggesting a role in cortical maturation and sensory processing.

桶状皮层第4层的经验依赖本征可塑性。
运动控制对感觉器官的发展是一个重要的里程碑,使主动探索和塑造感觉环境成为可能。感觉器官运动控制的发生是否直接影响相应感觉皮质的发育尚不清楚。在这里,我们确认并利用小鼠的轻拂行为的晚发病来解决这个问题在体感觉系统。利用离体电生理学,我们描述了在出生后第13和14天活跃的须状突起开始后,处理须状突起输入的桶状皮层第四层兴奋性神经元内在兴奋性的短暂增加。这种神经元增益的增加是第四层所特有的,与突触强度的变化无关,需要事先的感觉经验。此外,这些作用在桶状皮层的抑制性中间神经元中不表达。睁开眼睛后,桶状皮层的第II/III层或视觉皮层的兴奋性短暂性增加并不明显,这表明主动感觉的发展与体感等皮层的丘脑皮层输入层之间存在独特的相互作用。预测模型表明,在活性须状突起发生后,仅靠活性膜电导的变化就可以可靠地区分控制神经元,但不能区分无须状突起的半球。我们的研究结果表明,神经元兴奋性的经验依赖,层特异性细化与活跃拂动的出现密切相关。丘脑输入层的短暂增加与下游层突触可塑性的关键时期相吻合,表明其在皮层成熟和感觉加工中起作用。对感觉器官的运动控制决定了我们探索和感知环境的方式。运动控制的发育是否直接影响相应感觉脑区域的成熟仍然知之甚少。以小鼠须-桶系统为模型,我们证明了主动须行为的出现会触发桶状皮层第四层(须信息的主要输入层)神经元兴奋性的短暂、经验依赖的增加。这种内在的可塑性并不伴随突触的变化,在其他皮质层和感觉系统中是不存在的。我们的研究结果揭示了运动发育与感觉皮层成熟合作的新机制,表明运动里程碑的时间可能对大脑发育和感觉处理能力至关重要。
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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来源期刊
eNeuro
eNeuro Neuroscience-General Neuroscience
CiteScore
5.00
自引率
2.90%
发文量
486
审稿时长
16 weeks
期刊介绍: An open-access journal from the Society for Neuroscience, eNeuro publishes high-quality, broad-based, peer-reviewed research focused solely on the field of neuroscience. eNeuro embodies an emerging scientific vision that offers a new experience for authors and readers, all in support of the Society’s mission to advance understanding of the brain and nervous system.
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