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Primary Neuron/Astrocyte Co-Culture on Polyelectrolyte Multilayer Films: A Template for Studying Astrocyte-Mediated Oxidative Stress in Neurons

机译:聚电解质多层膜上的原代神经元/星形胶质细胞共培养:研究星形胶质细胞介导的神经元氧化应激的模板。

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We engineered patterned co-cultures of primary neurons and astrocytes on polyelectrolyte multilayer (PEM) films without the aid of adhesive proteins/ligands to study the oxidative stress mediated by astrocytes on neuronal cells. A number of studies have explored engineering co-culture of neurons and astrocytes predominantly using cell lines rather than primary cells owing to the difficulties involved in attaching primary cells onto synthetic surfaces. To our knowledge this is the first demonstration of patterned co-culture of primary neurons and astrocytes for studying neuronal metabolism. In our study, we used synthetic polymers, namely poly(diallyldimethylammoniumchloride) (PDAC) and sulfonated poly(styrene) (SPS) as the polycation and poly-anion, respectively, to build the multilayers. Primary neurons attached and spread preferentially on SPS surfaces, while primary astrocytes attached to both SPS and PDAC surfaces. SPS patterns were formed on PEM surfaces, either by microcontact printing SPS onto PDAC surfaces or vice-versa, to obtain patterns of primary neurons and patterned co-cultures of primary neurons and astrocytes. We further used the patterned co-culture system to study the neuronal response to elevated levels of free fatty acids as compared to the response in separated monoculture by measuring the level of reactive oxygen species (ROS; a widely accepted marker of oxidative stress). The elevation in the ROS levels was observed to occur earlier in the patterned co-culture system than in the separated monoculture system. The results suggest that this technique may provide a useful tool for engineering neuronal co-culture systems, that may more accurately capture neuronal function and metabolism, and thus could be used to obtain valuable insights into neuronal cell function and perhaps even the pathogenesis of neurodegenerative diseases.
机译:我们在聚电解质多层(PEM)膜上设计了初级神经元和星形胶质细胞的模式共培养,而无需借助粘附蛋白/配体来研究星形胶质细胞介导的神经元细胞的氧化应激。由于将原代细胞附着到合成表面上存在困难,许多研究已经探索了主要使用细胞系而非原代细胞对神经元和星形胶质细胞进行工程共培养的方法。据我们所知,这是用于研究神经元代谢的原代神经元和星形胶质细胞模式共培养的首次演示。在我们的研究中,我们分别使用合成聚合物,即聚二烯丙基二甲基氯化铵(PDAC)和磺化聚苯乙烯(SPS)作为聚阳离子和聚阴离子,来构建多层膜。原发神经元优先附着和扩散在SPS表面,而原代星形胶质细胞既附着于SPS和PDAC表面。通过在SPEM表面上微接触印刷SPS或反之亦然,在PEM表面上形成SPS模式,以获得初级神经元的模式以及初级神经元和星形胶质细胞的模式共培养物。我们还通过使用模式化共培养系统,通过测量活性氧(ROS;氧化应激的广泛接受标记)的水平,研究了神经元对游离脂肪酸水平升高的反应(与单独的单一培养物中的反应相比)。观察到在有图案的共培养系统中,ROS水平的升高比在分离的单培养系统中更早发生。结果表明,该技术可能为工程化神经元共培养系统提供有用的工具,可以更准确地捕获神经元功能和新陈代谢,因此可以用于获得对神经元细胞功能甚至神经退行性疾病的发病机理的有价值的见解。 。

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