Toader Corneliu, Tataru Calin Petru, Florian Ioan-Alexandru, Covache-Busuioc Razvan-Adrian, Dumitrascu David-Ioan, Glavan Luca Andrei, Costin Horia Petre, Bratu Bogdan-Gabriel, Ciurea Alexandru Vlad
Department of Neurosurgery, "Carol Davila" University of Medicine and Pharmacy, 020021 Bucharest, Romania.
Department of Vascular Neurosurgery, National Institute of Neurology and Neurovascular Diseases, 077160 Bucharest, Romania.
Int J Mol Sci. 2023 Sep 20;24(18):14340. doi: 10.3390/ijms241814340.
Aquaporins (AQPs), integral membrane proteins facilitating selective water and solute transport across cell membranes, have been the focus of extensive research over the past few decades. Particularly noteworthy is their role in maintaining cellular homeostasis and fluid balance in neural compartments, as dysregulated AQP expression is implicated in various degenerative and acute brain pathologies. This article provides an exhaustive review on the evolutionary history, molecular classification, and physiological relevance of aquaporins, emphasizing their significance in the central nervous system (CNS). The paper journeys through the early studies of water transport to the groundbreaking discovery of Aquaporin 1, charting the molecular intricacies that make AQPs unique. It delves into AQP distribution in mammalian systems, detailing their selective permeability through permeability assays. The article provides an in-depth exploration of AQP4 and AQP1 in the brain, examining their contribution to fluid homeostasis. Furthermore, it elucidates the interplay between AQPs and the glymphatic system, a critical framework for waste clearance and fluid balance in the brain. The dysregulation of AQP-mediated processes in this system hints at a strong association with neurodegenerative disorders such as Parkinson's Disease, idiopathic normal pressure hydrocephalus, and Alzheimer's Disease. This relationship is further explored in the context of acute cerebral events such as stroke and autoimmune conditions such as neuromyelitis optica (NMO). Moreover, the article scrutinizes AQPs at the intersection of oncology and neurology, exploring their role in tumorigenesis, cell migration, invasiveness, and angiogenesis. Lastly, the article outlines emerging aquaporin-targeted therapies, offering a glimpse into future directions in combatting CNS malignancies and neurodegenerative diseases.
水通道蛋白(AQPs)是促进水和溶质选择性跨细胞膜转运的整合膜蛋白,在过去几十年里一直是广泛研究的焦点。特别值得注意的是它们在维持神经细胞内环境稳定和神经组织液平衡方面的作用,因为AQP表达失调与各种退行性和急性脑疾病有关。本文对水通道蛋白的进化史、分子分类和生理相关性进行了详尽综述,强调了它们在中枢神经系统(CNS)中的重要性。文章从水运输的早期研究追溯到水通道蛋白1的开创性发现,描绘了使AQP独特的分子复杂性。它深入探讨了AQP在哺乳动物系统中的分布,通过通透性测定详细说明了它们的选择性通透性。本文深入探讨了大脑中的AQP4和AQP1,研究了它们对液体稳态的贡献。此外,它阐明了AQP与类淋巴系统之间的相互作用,类淋巴系统是大脑中废物清除和液体平衡的关键框架。该系统中AQP介导的过程失调暗示与帕金森病、特发性正常压力脑积水和阿尔茨海默病等神经退行性疾病有密切关联。在中风等急性脑事件和视神经脊髓炎(NMO)等自身免疫性疾病的背景下进一步探讨了这种关系。此外,文章审视了肿瘤学和神经病学交叉领域的AQP,探讨了它们在肿瘤发生、细胞迁移、侵袭和血管生成中的作用。最后,文章概述了新兴的以水通道蛋白为靶点的疗法,为对抗中枢神经系统恶性肿瘤和神经退行性疾病的未来方向提供了一瞥。