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神经周围网作为钙结合蛋白-22 型中间神经元功能的调节物:其形成和降解的相关因素。

Perineuronal nets as regulators of parvalbumin interneuron function: Factors implicated in their formation and degradation.

机构信息

Department of Pharmacology, Ribeirão Preto Medical School, University of São Paulo, Ribeirão Preto, Brazil.

出版信息

Basic Clin Pharmacol Toxicol. 2024 May;134(5):614-628. doi: 10.1111/bcpt.13994. Epub 2024 Mar 1.

Abstract

The brain extracellular matrix (ECM) has garnered increasing attention as a fundamental component of brain function in a predominantly "neuron-centric" paradigm. Particularly, the perineuronal nets (PNNs), a specialized net-like structure formed by ECM aggregates, play significant roles in brain development and physiology. PNNs enwrap synaptic junctions in various brain regions, precisely balancing new synaptic formation and long-term stabilization, and are highly dynamic entities that change in response to environmental stimuli, especially during the neurodevelopmental period. They are found mainly surrounding parvalbumin (PV)-expressing GABAergic interneurons, being proposed to promote PV interneuron maturation and protect them against oxidative stress and neurotoxic agents. This structural and functional proximity underscores the crucial role of PNNs in modulating PV interneuron function, which is critical for the excitatory/inhibitory balance and, consequently, higher-level behaviours. This review delves into the molecular underpinnings governing PNNs formation and degradation, elucidating their functional interactions with PV interneurons. In the broader physiological context and brain-related disorders, we also explore their intricate relationship with other molecules, such as reactive oxygen species and metalloproteinases, as well as glial cells. Additionally, we discuss potential therapeutic strategies for modulating PNNs in brain disorders.

摘要

脑细胞外基质 (ECM) 在以“神经元为中心”的范式中作为大脑功能的基本组成部分受到越来越多的关注。特别是细胞周隙网络 (PNNs),一种由 ECM 聚集物形成的特殊网状结构,在大脑发育和生理学中发挥着重要作用。PNNs 包裹着各种脑区的突触连接,精确地平衡新的突触形成和长期稳定,并具有高度的动态性,能够响应环境刺激而变化,尤其是在神经发育期间。它们主要存在于表达 parvalbumin (PV) 的 GABA 能中间神经元周围,被认为可以促进 PV 中间神经元的成熟,并保护它们免受氧化应激和神经毒性物质的侵害。这种结构和功能上的接近突显了 PNNs 在调节 PV 中间神经元功能方面的关键作用,这对于兴奋/抑制平衡以及高级行为至关重要。本文深入探讨了调控 PNNs 形成和降解的分子基础,阐明了它们与 PV 中间神经元的功能相互作用。在更广泛的生理背景和与大脑相关的疾病中,我们还探讨了它们与其他分子(如活性氧和金属蛋白酶)以及神经胶质细胞的复杂关系。此外,我们还讨论了在大脑疾病中调节 PNNs 的潜在治疗策略。

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