Central Adiponectin Signaling - A Metabolic Regulator in Support of Brain Plasticity.

Brain plasticity (Amsterdam, Netherlands) Pub Date : 2022-10-21 eCollection Date: 2022-01-01 DOI:10.3233/BPL-220138
Douglas A Formolo, Tong Cheng, Jiasui Yu, Georg S Kranz, Suk-Yu Yau
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引用次数: 6

Abstract

Brain plasticity and metabolism are tightly connected by a constant influx of peripheral glucose to the central nervous system in order to meet the high metabolic demands imposed by neuronal activity. Metabolic disturbances highly affect neuronal plasticity, which underlies the prevalent comorbidity between metabolic disorders, cognitive impairment, and mood dysfunction. Effective pro-cognitive and neuropsychiatric interventions, therefore, should consider the metabolic aspect of brain plasticity to achieve high effectiveness. The adipocyte-secreted hormone, adiponectin, is a metabolic regulator that crosses the blood-brain barrier and modulates neuronal activity in several brain regions, where it exerts neurotrophic and neuroprotective properties. Moreover, adiponectin has been shown to improve neuronal metabolism in different animal models, including obesity, diabetes, and Alzheimer's disease. Here, we aim at linking the adiponectin's neurotrophic and neuroprotective properties with its main role as a metabolic regulator and to summarize the possible mechanisms of action on improving brain plasticity via its role in regulating the intracellular energetic activity. Such properties suggest adiponectin signaling as a potential target to counteract the central metabolic disturbances and impaired neuronal plasticity underlying many neuropsychiatric disorders.

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中枢脂联素信号-支持大脑可塑性的代谢调节因子。
大脑的可塑性和新陈代谢是紧密联系在一起的,因为外周葡萄糖不断流入中枢神经系统,以满足神经元活动带来的高代谢需求。代谢紊乱高度影响神经元可塑性,这是代谢紊乱、认知障碍和情绪障碍之间普遍共病的基础。因此,有效的认知和神经精神干预应该考虑大脑可塑性的代谢方面,以达到高效。脂肪细胞分泌的激素脂联素是一种代谢调节剂,它可以穿过血脑屏障,调节大脑几个区域的神经元活动,发挥神经营养和神经保护作用。此外,在不同的动物模型中,脂联素已被证明可以改善神经元代谢,包括肥胖、糖尿病和阿尔茨海默病。在这里,我们旨在将脂联素的神经营养和神经保护特性与其作为代谢调节剂的主要作用联系起来,并总结其通过调节细胞内能量活动来改善大脑可塑性的可能机制。这些特性表明,脂联素信号是对抗中枢代谢紊乱和许多神经精神疾病背后的神经元可塑性受损的潜在靶点。
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Erratum to: Flavonoids as an Intervention for Alzheimer's Disease: Progress and Hurdles Towards Defining a Mechanism of Action. Maintaining a Dynamic Brain: A Review of Empirical Findings Describing the Roles of Exercise, Learning, and Environmental Enrichment in Neuroplasticity from 2017-2023. The Multifaceted Effects of Flavonoids on Neuroplasticity Nicotinamide Mononucleotide Prevents Cisplatin-Induced Mitochondrial Defects in Cortical Neurons Derived from Human Induced Pluripotent Stem Cells. Proceedings from the Albert Charitable Trust Inaugural Workshop on 'Understanding the Acute Effects of Exercise on the Brain'.
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