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Development of Microplatforms to Mimic the In Vivo Architecture of CNS and PNS Physiology and Their Diseases

机译:模仿中枢神经系统和PNS生理及其疾病的体内结构的微平台的开发。

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Understanding the mechanisms that govern nervous tissues function remains a challenge. In vitro two-dimensional (2D) cell culture systems provide a simplistic platform to evaluate systematic investigations but often result in unreliable responses that cannot be translated to pathophysiological settings. Recently, microplatforms have emerged to provide a better approximation of the in vivo scenario with better control over the microenvironment, stimuli and structure. Advances in biomaterials enable the construction of three-dimensional (3D) scaffolds, which combined with microfabrication, allow enhanced biomimicry through precise control of the architecture, cell positioning, fluid flows and electrochemical stimuli. This manuscript reviews, compares and contrasts advances in nervous tissues-on-a-chip models and their applications in neural physiology and disease. Microplatforms used for neuro-glia interactions, neuromuscular junctions (NMJs), blood-brain barrier (BBB) and studies on brain cancer, metastasis and neurodegenerative diseases are addressed. Finally, we highlight challenges that can be addressed with interdisciplinary efforts to achieve a higher degree of biomimicry. Nervous tissue microplatforms provide a powerful tool that is destined to provide a better understanding of neural health and disease.
机译:了解控制神经组织功能的机制仍然是一个挑战。体外二维(2D)细胞培养系统提供了一个简单的平台来评估系统研究,但通常会导致反应不可靠,无法转化为病理生理学设置。近来,已经出现了微平台,以更好地控制体内环境,并更好地控制了微环境,刺激和结构。生物材料的进步使得能够构建三维(3D)支架,并与微细加工相结合,从而通过精确控制架构,细胞定位,流体流动和电化学刺激来增强仿生性。该手稿回顾,比较和对比了神经片上组织模型及其在神经生理学和疾病中的应用方面的进展。解决了用于神经胶质细胞相互作用,神经肌肉接头(NMJ),血脑屏障(BBB)以及脑癌,转移瘤和神经退行性疾病研究的微平台。最后,我们强调了可以通过跨学科的努力来解决的挑战,以实现更高的仿生水平。神经组织微平台提供了一个强大的工具,旨在更好地了解神经健康和疾病。

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