Chronic silencing of subsets of cortical layer 5 pyramidal neurons has a long-term influence on the laminar distribution of parvalbumin interneurons and the perineuronal nets.

IF 1.8 3区 医学 Q2 ANATOMY & MORPHOLOGY
Florina P Szabó, Veronika Sigutova, Anna M Schneider, Anna Hoerder-Suabedissen, Zoltán Molnár
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Abstract

Neural networks are established throughout cortical development, which require the right ratios of glutamatergic and GABAergic neurons. Developmental disturbances in pyramidal neuron number and function can impede the development of GABAergic neurons, which can have long-lasting consequences on inhibitory networks. However, the role of deep-layer pyramidal neurons in instructing the development and distribution of GABAergic neurons is still unclear. To unravel the role of deep-layer pyramidal neuron activity in orchestrating the spatial and laminar distribution of parvalbumin neurons, we selectively manipulated subsets of layer 5 projection neurons. By deleting Snap25 selectively from Rbp4-Cre + pyramidal neurons, we abolished regulated vesicle release from subsets of cortical layer 5 projection neurons. Our findings revealed that chronically silencing subsets of layer 5 projection neurons did not change the number and distribution of parvalbumin neurons in the developing brain. However, it did have a long-term impact on the laminar distribution of parvalbumin neurons and their perineuronal nets in the adult primary motor and somatosensory cortices. The laminar positioning of parvalbumin neurons was altered in layer 4 of the primary somatosensory cortex in the adult Snap25 cKO mice. We discovered that the absence of layer 5 activity only had a transient effect on the soma morphology of striatal PV neurons during the third week of postnatal development. We also showed that the relationship between parvalbumin neurons and the perineuronal nets varied across different cortical layers and regions; therefore, their relationship is far more complex than previously described. The current study will help us better understand the bidirectional interaction between deep-layer pyramidal cells and GABAergic neurons, as well as the long-term impact of interrupting pyramidal neuron activity on inhibitory network formation.

皮层第5层锥体神经元亚群的慢性沉默对小白蛋白中间神经元和神经元周围网的层状分布有长期影响。
神经网络在整个皮质发育过程中建立,这需要谷氨酸能和氨基丁酸能神经元的正确比例。锥体神经元数量和功能的发育障碍可以阻碍gaba能神经元的发育,这可能对抑制网络产生长期影响。然而,深层锥体神经元在gaba能神经元发育和分布中的作用尚不清楚。为了揭示深层锥体神经元活动在协调小白蛋白神经元的空间和层状分布中的作用,我们选择性地操纵了第5层投射神经元的子集。通过选择性地从Rbp4-Cre +锥体神经元中删除Snap25,我们消除了皮层第5层投射神经元亚群中受调节的囊泡释放。我们的研究结果表明,长期沉默第5层投射神经元亚群不会改变发育中的大脑中小白蛋白神经元的数量和分布。然而,它确实对成人初级运动和体感觉皮层的小白蛋白神经元及其周围神经元网的层状分布有长期影响。成年Snap25 cKO小鼠初级体感觉皮层第4层小白蛋白神经元的层状定位发生改变。我们发现,在出生后发育的第三周,缺乏第5层活性仅对纹状体PV神经元的形态有短暂的影响。我们还发现,小白蛋白神经元和神经元周围网络之间的关系在不同的皮层层和区域有所不同;因此,它们之间的关系远比之前描述的复杂。本研究将有助于我们更好地理解深层锥体细胞与gaba能神经元之间的双向相互作用,以及阻断锥体神经元活性对抑制网络形成的长期影响。
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来源期刊
Journal of Anatomy
Journal of Anatomy 医学-解剖学与形态学
CiteScore
4.80
自引率
8.30%
发文量
183
审稿时长
4-8 weeks
期刊介绍: Journal of Anatomy is an international peer-reviewed journal sponsored by the Anatomical Society. The journal publishes original papers, invited review articles and book reviews. Its main focus is to understand anatomy through an analysis of structure, function, development and evolution. Priority will be given to studies of that clearly articulate their relevance to the anatomical community. Focal areas include: experimental studies, contributions based on molecular and cell biology and on the application of modern imaging techniques and papers with novel methods or synthetic perspective on an anatomical system. Studies that are essentially descriptive anatomy are appropriate only if they communicate clearly a broader functional or evolutionary significance. You must clearly state the broader implications of your work in the abstract. We particularly welcome submissions in the following areas: Cell biology and tissue architecture Comparative functional morphology Developmental biology Evolutionary developmental biology Evolutionary morphology Functional human anatomy Integrative vertebrate paleontology Methodological innovations in anatomical research Musculoskeletal system Neuroanatomy and neurodegeneration Significant advances in anatomical education.
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