Impaired cerebrospinal fluid circulation and cerebral lymphatic drainage in a rat model of chronic hydrocephalus.

IF 3.5 3区 医学 Q2 NEUROSCIENCES
Frontiers in Molecular Neuroscience Pub Date : 2025-02-19 eCollection Date: 2025-01-01 DOI:10.3389/fnmol.2025.1516265
Dong Bin Back, Bo-Ryoung Choi, Kyoung Ja Kwon, Dong-Hee Choi, Chan Young Shin, Jongmin Lee, Hahn Young Kim
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引用次数: 0

Abstract

The cerebrospinal fluid (CSF) not only protects the brain but also maintains homeostasis by removing metabolic waste produced by brain activity. This study hypothesizes that chronic CSF circulatory dysfunction, such as chronic hydrocephalus or normal pressure hydrocephalus (NPH), may be a critical condition in neurodegenerative diseases associated with metabolic waste accumulation. To investigate the CSF circulation and cerebral lymphatic drainage in a rat model of chronic hydrocephalus induced by kaolin injection, we performed time-dependent evaluations of intraparenchymal injection of tracers as well as intraventricular injection of Evans blue. The study systemically evaluated the dysfunction of CSF circulation and lymphatic drainage in the brain from various perspectives, including the glymphatic system, transependymal CSF flow, subarachnoid CSF flow, meningeal lymphatic drainage, and peripheral lymphatic drainage to deep cervical lymph nodes. The results indicated delayed CSF circulation, including glymphatic system, and cerebral lymphatic drainage in the kaolin-induced chronic hydrocephalus model. Based on these findings, our research indicated that dysfunction of CSF circulation, as observed in conditions such as chronic hydrocephalus or NPH, may act as an initiating or exacerbating factor in neurodegenerative diseases. This can lead to the accumulation of metabolic waste, as seen in Alzheimer's disease. Our research can help identify risk factors and provide insight into the underlying pathophysiology of neurodegenerative diseases, which may lead to the development of novel therapeutic strategies.

慢性脑积水大鼠模型脑脊液循环和脑淋巴引流受损。
脑脊液(CSF)不仅保护大脑,而且通过清除大脑活动产生的代谢废物来维持体内平衡。本研究假设慢性脑脊液循环功能障碍,如慢性脑积水或正常压力脑积水(NPH),可能是与代谢性废物积累相关的神经退行性疾病的关键条件。为了研究高岭土注射致慢性脑积水大鼠模型的脑脊液循环和脑淋巴引流,我们对脑实质内注射示踪剂和脑室内注射埃文斯蓝进行了时间依赖性评估。本研究从淋巴系统、室管膜经脑脊液流、蛛网膜下腔脑脊液流、脑膜淋巴引流、外周淋巴引流至颈深淋巴结等多个角度系统评价脑内脑脊液循环及淋巴引流功能障碍。结果显示高岭土诱导的慢性脑积水模型脑脊液循环迟缓,包括淋巴系统和脑淋巴引流。基于这些发现,我们的研究表明,在慢性脑积水或NPH等疾病中观察到的脑脊液循环功能障碍可能是神经退行性疾病的起始或加重因素。这可能导致代谢废物的积累,如阿尔茨海默病所见。我们的研究可以帮助识别危险因素,并为神经退行性疾病的潜在病理生理学提供见解,这可能会导致新的治疗策略的发展。
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来源期刊
CiteScore
5.70
自引率
2.10%
发文量
669
审稿时长
14 weeks
期刊介绍: Frontiers in Molecular Neuroscience is a first-tier electronic journal devoted to identifying key molecules, as well as their functions and interactions, that underlie the structure, design and function of the brain across all levels. The scope of our journal encompasses synaptic and cellular proteins, coding and non-coding RNA, and molecular mechanisms regulating cellular and dendritic RNA translation. In recent years, a plethora of new cellular and synaptic players have been identified from reduced systems, such as neuronal cultures, but the relevance of these molecules in terms of cellular and synaptic function and plasticity in the living brain and its circuits has not been validated. The effects of spine growth and density observed using gene products identified from in vitro work are frequently not reproduced in vivo. Our journal is particularly interested in studies on genetically engineered model organisms (C. elegans, Drosophila, mouse), in which alterations in key molecules underlying cellular and synaptic function and plasticity produce defined anatomical, physiological and behavioral changes. In the mouse, genetic alterations limited to particular neural circuits (olfactory bulb, motor cortex, cortical layers, hippocampal subfields, cerebellum), preferably regulated in time and on demand, are of special interest, as they sidestep potential compensatory developmental effects.
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