首页> 外文期刊>Journal of Neurophysiology >Neural Circuits Neurons derived from different brain regions are inherently different in vitro: a novel multiregional brain-on-a-chip
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Neural Circuits Neurons derived from different brain regions are inherently different in vitro: a novel multiregional brain-on-a-chip

机译:来自不同脑区的神经电路神经元在体外本质上是不同的:一种新型的多限脑膜脑

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Brain in vitro models are critically important to developing our understanding of basic nervous system cellular physiology, potential neurotoxic effects of chemicals, and specific cellular mechanisms of many disease states. In this study, we sought to address key shortcomings of current brain in vitro models: the scarcity of comparative data for cells originating from distinct brain regions and the lack of multiregional brain in vitro models. We demonstrated that rat neurons from different brain regions exhibit unique profiles regarding their cell composition, protein expression, metabolism, and electrical activity in vitro. In vivo, the brain is unique in its structural and functional organization, and the interactions and communication between different brain areas are essential components of proper brain function. This fact and the observation that neurons from different areas of the brain exhibit unique behaviors in vitro underline the importance of establishing multiregional brain in vitro models. Therefore, we here developed a multiregional brain-on-a-chip and observed a reduction of overall firing activity, as well as altered amounts of astrocytes and specific neuronal cell types compared with separately cultured neurons. Furthermore, this multiregional model was used to study the effects of phencyclidine, a drug known to induce schizophrenia-like symptoms in vivo, on individual brain areas separately while monitoring downstream effects on interconnected regions. Overall, this work provides a comparison of cells from different brain regions in vitro and introduces a multiregional brain-on-a-chip that enables the development of unique disease models incorporating essential in vivo features.
机译:大脑体外模型对发展我们对基本神经系统细胞生理学,化学品的潜在神经毒性作用以及许多疾病状态的特异性细胞机制来说令人统治性重要。在这项研究中,我们寻求解决目前脑中的关键缺点,体外模型:源自不同脑区域的细胞的比较数据的稀缺性和体外模型中缺乏多河脑。我们证明,来自不同脑区的大鼠神经元对其细胞成分,蛋白质表达,代谢和体外电活性具有独特的曲线。在体内,大脑在其结构和功能组织中是独一无二的,不同脑区之间的相互作用和沟通是适当脑功能的基本组成部分。这一事实和观察到大脑的不同区域的神经元在体外表现出独特的行为,强调了在体外模型中建立多河脑的重要性。因此,我们在这里开发了一种多阵脑的脑脑脑,并且观察到整体烧制活性的降低,以及与单独培养的神经元相比的半胶质细胞和特异性神经元细胞类型的变化。此外,这种多舰模型用于研究PhenyClidine的作用,该药物,该药物在体内诱导体内诱导精神分裂症样症状的药物,同时监测对互连区域的下游效果。总体而言,这项工作提供了体外不同脑区的细胞的比较,并引入了一种多部脑脑脑脑,能够在体内特征中开发结合必不可少的疾病模型。

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