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首页> 外文期刊>Frontiers in Neuroscience >A Novel Microfluidic Cell Co-culture Platform for the Study of the Molecular Mechanisms of Parkinson's Disease and Other Synucleinopathies
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A Novel Microfluidic Cell Co-culture Platform for the Study of the Molecular Mechanisms of Parkinson's Disease and Other Synucleinopathies

机译:一种新型的微流控细胞共培养平台,用于研究帕金森氏病和其他突触核蛋白病的分子机制

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摘要

Although, the precise molecular mechanisms underlying Parkinson's disease (PD) are still elusive, it is now known that spreading of alpha-synuclein (aSyn) pathology and neuroinflammation are important players in disease progression. Here, we developed a novel microfluidic cell-culture platform for studying the communication between two different cell populations, a process of critical importance not only in PD but also in many biological processes. The integration of micro-valves in the device enabled us to control fluid routing, cellular microenvironments, and to simulate paracrine signaling. As proof of concept, two sets of experiments were designed to show how this platform can be used to investigate specific molecular mechanisms associated with PD. In one experiment, na?ve H4 neuroglioma cells were co-cultured with cells expressing aSyn tagged with GFP (aSyn-GFP), to study the release and spreading of the protein. In our experimental set up, we induced the release of the contents of aSyn-GFP producing cells to the medium and monitored the protein's diffusion. In another experiment, H4 cells were co-cultured with N9 microglial cells to assess the interplay between two cell lines in response to environmental stimuli. Here, we observed an increase in the levels of reactive oxygen species in H4 cells cultured in the presence of activated N9 cells, confirming the cross talk between different cell populations. In summary, the platform developed in this study affords novel opportunities for the study of the molecular mechanisms involved in PD and other neurodegenerative diseases.
机译:尽管仍不清楚帕金森氏病(PD)的确切分子机制,但现已知道,α-突触核蛋白(aSyn)病理学的扩散和神经炎症是疾病进展的重要因素。在这里,我们开发了一种新颖的微流控细胞培养平台,用于研究两个不同细胞群体之间的通讯,这一过程不仅在PD中而且在许多生物学过程中都至关重要。微型阀在设备中的集成使我们能够控制流体路由,细胞微环境并模拟旁分泌信号传导。作为概念验证,设计了两组实验,以展示如何使用该平台研究与PD相关的特定分子机制。在一个实验中,将幼稚的H4神经胶质瘤细胞与表达被GFP标记的aSyn的细胞(aSyn-GFP)共培养,以研究该蛋白的释放和扩散。在我们的实验装置中,我们诱导了产生aSyn-GFP的细胞内容物释放到培养基中,并监测了蛋白质的扩散。在另一个实验中,将H4细胞与N9小胶质细胞共培养,以评估两种细胞系对环境刺激的相互作用。在这里,我们观察到在激活的N9细胞存在下培养的H4细胞中活性氧的水平增加,证实了不同细胞群之间的串扰。总而言之,本研究开发的平台为研究PD和其他神经退行性疾病的分子机制提供了新的机会。

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