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Human Cerebrospinal fluid promotes long-term neuronal viability and network function in human neocortical organotypic brain slice cultures

机译:人脑脊髓液可促进人新皮层器官型脑切片培养物中的长期神经元活力和网络功能

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摘要

Pathophysiological investigation of CNS-related diseases, such as epilepsy or neurodegenerative disorders, largely relies on histological studies on human post mortem tissue, tissue obtained by biopsy or resective surgery and on studies using disease models including animal models, heterologous expression systems or cell culture based approaches. However, in general it remains elusive to what extent results obtained in model systems can be directly translated to the human brain, calling for strategies allowing validation or even primary investigation in live human CNS tissue. In the work reported here, we prepared human organotypic slice cultures from access tissue of resective epilepsy surgery. Employing different culture conditions, we systematically compared artificial culturing media versus human cerbrospinal fluid (hCSF) obtained from patients with normal pressure hydrocephalus (NPH). Presented data demonstrates sustained cortical neuronal survival including not only maintenance of typical cellular electrophysiological properties and activity, such as robust action potential generation and synaptic connectivity, but also preservation of tonic and phasic network activity up to several weeks in vitro. As clearly delineated by immunocytochemistry, single cell patch clamp and extracellular recordings, we find that in contrast to artificial culturing media, hCSF significantly enhances neuron viability and maintenance of network activity.
机译:中枢神经系统相关疾病(例如癫痫或神经退行性疾病)的病理生理学研究主要依赖于人类死后组织,通过活检或切除手术获得的组织的组织学研究以及使用疾病模型(包括动物模型,异源表达系统或基于细胞培养物)的研究方法。但是,总的来说,在模型系统中获得的结果可以直接翻译到人脑的程度仍然难以捉摸,这就要求采取策略进行验证,甚至可以对人类中枢神经系统组织进行初步研究。在这里报道的工作中,我们从切除性癫痫手术的通路组织中制备了人类器官切片培养物。通过使用不同的培养条件,我们系统地比较了从正常压力脑积水(NPH)患者获得的人工培养基与人脑脊液(hCSF)的比较。提出的数据表明,皮层神经元的持续存活不仅包括维持典型的细胞电生理特性和活性,例如强大的动作电位生成和突触连接性,而且还可以在体外维持长达数周的强直和相网络活动。免疫细胞化学,单细胞膜片钳和细胞外记录清楚地表明,我们发现与人工培养培养基相比,hCSF显着增强了神经元的活力并维持了网络活动。

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