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周围神经毡网络调节前额皮质内 Parvalbumin 中间神经元和 γ 活动的抑制性胞体传入。

Perineuronal Nets Regulate the Inhibitory Perisomatic Input onto Parvalbumin Interneurons and γ Activity in the Prefrontal Cortex.

机构信息

Department of Cell Biology, Interdisciplinary Research Structure for Biotechnology and Biomedicine (BIOTECMED), University of Valencia, Burjassot, 46100, Spain.

Neuronal Circuits Laboratory, Department of Anatomy and Human Embryology, University of Valencia, Valencia, 46010, Spain.

出版信息

J Neurosci. 2020 Jun 24;40(26):5008-5018. doi: 10.1523/JNEUROSCI.0291-20.2020. Epub 2020 May 26.

Abstract

Parvalbumin-expressing (PV+) interneurons play a key role in the maturation and synchronization of cortical circuitry and alterations in these inhibitory neurons, especially in the medial prefrontal cortex (mPFC), have been found in different psychiatric disorders. The formation of perineuronal nets (PNNs) around many of these interneurons at the end of the critical periods reduces their plasticity and sets their connectivity. Consequently, the presence of PNNs must have an important impact on the synaptic input and the physiology of PV+ cells. In the present study, we have found that in adult male mice, prefrontocortical PV+ cells surrounded by PNNs show higher density of perisomatic excitatory and inhibitory puncta, longer axonal initial segments (AISs), and higher PV expression when compared with PV+ cells lacking PNNs. In order to better understand the impact of PNNs on the connectivity and physiology of PV+ interneurons in the mPFC, we have digested enzymatically these structures and have found a decrease in the density of inhibitory puncta on their perisomatic region but not on the PV+ perisomatic puncta on pyramidal neurons. Moreover, extracellular recordings show that the digestion of PNNs induces a decrease in γ activity, an oscillation dependent on PV+ cells, in the mPFC of anesthetized mice. Our results suggest that the presence of PNNs enwrapping PV+ cells regulates their inhibitory input and has a potent influence on their activity. These results may be relevant for psychiatric research, given the alterations in PNNs, PV+ interneurons and their physiology described in different mental disorders. Parvalbumin-expressing (PV+) interneurons are surrounded by specializations of the extracellular matrix, the perineuronal nets (PNNs). PNNs regulate the development and plasticity of PV+ cells and, consequently, their presence must influence their synaptic input and physiology. We have found, in the adult prefrontal cortex (PFC), substantial differences in the structure and connectivity of PV+ interneurons depending on the presence of PNNs. The depletion of PNNs from the PFC has also a potent effect on the connectivity of PV+ cells and on neural oscillations that depend on these cells. These findings are relevant to understand the role of PNNs in the adult brain and in certain psychiatric disorders in which alterations in PNNs and PV+ interneurons have been described.

摘要

表达钙结合蛋白 Parvalbumin(PV)的中间神经元在皮质回路的成熟和同步化中起着关键作用,并且在不同的精神疾病中已经发现这些抑制性神经元,尤其是在额前皮质(mPFC)中的改变。在关键时期结束时,许多这些中间神经元周围形成的神经周细胞网络(PNNs)降低了它们的可塑性并确定了它们的连接性。因此,PNNs 的存在肯定会对 PV+细胞的突触输入和生理学产生重要影响。在本研究中,我们发现,与缺乏 PNNs 的 PV+细胞相比,成年雄性小鼠前额皮质中被 PNNs 包围的 PV+细胞具有更高密度的胞体周围兴奋性和抑制性棘突,更长的轴突起始段(AIS)和更高的 PV 表达。为了更好地了解 PNNs 对 mPFC 中 PV+中间神经元的连接性和生理学的影响,我们用酶消化了这些结构,发现其胞体周围区域的抑制性棘突密度降低,但 PV+棘突上的抑制性棘突密度没有降低在锥体神经元上。此外,细胞外记录显示,在麻醉小鼠的 mPFC 中,PNNs 的消化会诱导与 PV+细胞相关的 γ 活动减少,这是一种依赖于 PV+细胞的振荡。我们的结果表明,包围 PV+细胞的 PNNs 调节其抑制性输入,并对其活动产生强大影响。鉴于不同精神障碍中描述的 PNNs、PV+中间神经元及其生理学的改变,这些结果可能与精神科研究有关。表达钙结合蛋白 Parvalbumin(PV)的中间神经元被细胞外基质的特化结构,即神经周细胞网络(PNNs)所包围。PNNs 调节 PV+细胞的发育和可塑性,因此,它们的存在必然会影响它们的突触输入和生理学。我们发现,在成年前额皮质(PFC)中,根据 PNNs 的存在,PV+中间神经元的结构和连接性存在显著差异。从 PFC 中去除 PNNs 也对 PV+细胞的连接性和依赖于这些细胞的神经振荡产生强烈影响。这些发现对于理解 PNNs 在成年大脑中的作用以及在描述了 PNNs 和 PV+中间神经元改变的某些精神疾病中具有重要意义。

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