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器官芯片技术如何帮助研究神经退行性疾病中糖脂代谢系统的作用

How Organ-on-a-Chip Technology Can Assist in Studying the Role of the Glymphatic System in Neurodegenerative Diseases.

机构信息

Faculty of Technical Chemistry, Vienna University of Technology, Getreidemarkt 9/163-164, 1060 Vienna, Austria.

Department of Mechanical Engineering and Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

Int J Mol Sci. 2023 Jan 21;24(3):2171. doi: 10.3390/ijms24032171.

Abstract

The lack of a conventional lymphatic system that permeates throughout the entire human brain has encouraged the identification and study of alternative clearance routes within the cerebrum. In 2012, the concept of the glymphatic system, a perivascular network that fluidically connects the cerebrospinal fluid to the lymphatic vessels within the meninges via the interstitium, emerged. Although its exact mode of action has not yet been fully characterized, the key underlying processes that govern solute transport and waste clearance have been identified. This review briefly describes the perivascular glial-dependent clearance system and elucidates its fundamental role in neurodegenerative diseases. The current knowledge of the glymphatic system is based almost exclusively on animal-based measurements, but these face certain limitations inherent to in vivo experiments. Recent advances in organ-on-a-chip technology are discussed to demonstrate the technology's ability to provide alternative human-based in vitro research models. Herein, the specific focus is on how current microfluidic-based in vitro models of the neurovascular system and neurodegenerative diseases might be employed to (i) gain a deeper understanding of the role and function of the glymphatic system and (ii) to identify new opportunities for pharmacological intervention.

摘要

人类大脑中缺乏贯穿整个大脑的传统淋巴系统,这促使人们在大脑中识别和研究替代清除途径。2012 年,出现了“糖质淋系统”的概念,这是一个血管周网络,通过间质使脑脊液与脑膜中的淋巴管流体连接。尽管其确切的作用机制尚未完全阐明,但已确定了控制溶质运输和废物清除的关键基本过程。这篇综述简要描述了血管周胶质依赖性清除系统,并阐明了其在神经退行性疾病中的基本作用。目前对糖质淋系统的了解几乎完全基于动物实验测量,但这些测量方法存在体内实验固有的某些限制。本文讨论了器官芯片技术的最新进展,以展示该技术提供替代基于人体的体外研究模型的能力。在此,具体重点是如何利用当前基于微流控的神经血管系统和神经退行性疾病的体外模型,(i)更深入地了解糖质淋系统的作用和功能,以及(ii)为药物干预识别新的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1239/9916687/d2452b4d8ad4/ijms-24-02171-g001.jpg

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