Totaro Valentino, Pizzorusso Tommaso, Tognini Paola
BIO@SNS Lab, Scuola Normale Superiore, Pisa, Italy.
Institute of Neuroscience, National Research Council, Pisa, Italy.
Neurochem Res. 2025 Jul 29;50(4):253. doi: 10.1007/s11064-025-04506-8.
Perineuronal nets (PNNs) are specialized, dense extracellular matrix structures that enmesh the cell bodies and dendrites of specific neurons, most notably inhibitory interneurons. Increasing evidence indicates that PNNs serve not merely as passive scaffolds but play an active and essential role in modulating synaptic plasticity and circuit physiology. They critically influence the timing of sensory system critical periods, as well as processes underlying learning, memory, and higher cognitive functions. Furthermore, dysregulation of PNN density and architecture have been associated with conditions like autism, neurodevelopmental disorders, schizophrenia and Alzheimer's disease. Since they are extensively involved in brain function, we discuss the multitude of regulatory factors that govern the formation, maturation, and remodeling of PNNs. In particular, we focus on both molecular and cellular brain-intrinsic mechanisms, highlighting the potential contributions of microglia and astrocyte derived factors. Additionally, we consider the influence of long-range signaling cues, including the metabolic status and peripheral hormones. Analysing this complex network of interactors, we try to highlight the role of PNNs beyond neural plasticity and brain function, in a broader whole-body physiological perspective.
神经周网(PNNs)是一种特殊的、致密的细胞外基质结构,它包裹着特定神经元的细胞体和树突,尤其是抑制性中间神经元。越来越多的证据表明,神经周网不仅作为被动支架,而且在调节突触可塑性和回路生理学方面发挥着积极且至关重要的作用。它们对感觉系统关键期的时间安排以及学习、记忆和更高认知功能的潜在过程有着至关重要的影响。此外,神经周网密度和结构的失调与自闭症、神经发育障碍、精神分裂症和阿尔茨海默病等疾病有关。由于它们广泛参与脑功能,我们讨论了众多调控神经周网形成、成熟和重塑的因素。特别地,我们专注于分子和细胞水平的脑内固有机制,强调小胶质细胞和星形胶质细胞衍生因子的潜在贡献。此外,我们考虑了远程信号线索的影响,包括代谢状态和外周激素。通过分析这个复杂的相互作用网络,我们试图从更广泛的全身生理学角度突出神经周网在神经可塑性和脑功能之外的作用。