推进器官芯片系统:微流体在神经心脏研究中的作用

Q2 Agricultural and Biological Sciences
Maria João Ferreira , Sarah Colombani , Albin Bernardin , Alain Lacampagne , Jean-Luc Pasquié , Pedro F. Costa , Benoit Charlot , Albano C. Meli
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引用次数: 0

摘要

神经-心脏连接点与人类的许多病理状况有关,但目前还没有模型允许对其作用进行转化研究。动物模型不能准确地反映这种相互作用。这篇综述探讨了微流控技术在推进器官芯片系统中的作用,该系统在受控环境中模拟神经-心脏相互作用。通过提供对细胞环境的精确控制,微流控平台显着增强了动态心脏-神经细胞相互作用的建模。这些系统允许更准确和功能性的神经-心脏连接的发展,对于研究心血管疾病和这些病理中的神经元影响至关重要。虽然传统的动物模型和共培养技术有其优点,但它们在复制人类特定生理方面受到限制。最近微流体技术的创新与人类诱导的多能干细胞技术相结合,提供了更多与生理相关的模型,并解决了有关动物使用的伦理问题。这篇综述强调了这些先进的微流控模型在改善疾病建模、药物筛选和治疗策略方面的潜力,最终推进个性化医疗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Advancing organ-on-chip systems: the role of microfluidics in neuro-cardiac research

Advancing organ-on-chip systems: the role of microfluidics in neuro-cardiac research
The neuro-cardiac junction is involved in many pathological conditions in humans, but no model currently allows translational studies to investigate its role. Animal models fail to accurately represent this interaction. This review explores the role of microfluidic technologies in advancing organ-on-chip systems that simulate neuro-cardiac interactions in a controlled environment. By offering precise control over cellular environments, microfluidic platforms significantly enhance the modeling of dynamic cardiac-neural cell interactions. These systems allow the development of more accurate and functional neuro-cardiac junctions, vital for investigating cardiovascular diseases and the neuronal impact in these pathologies. While traditional animal models and co-culture techniques have their merits, they are limited in replicating human-specific physiology. Recent innovations in microfluidics, in combination with human-induced pluripotent stem cell technology, provide more physiologically relevant models and address ethical concerns regarding animal use. This review emphasizes the potential of these advanced microfluidic models in improving disease modeling, drug screening, and therapeutic strategies, ultimately advancing personalized medicine.
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来源期刊
Current Research in Pharmacology and Drug Discovery
Current Research in Pharmacology and Drug Discovery Agricultural and Biological Sciences-Animal Science and Zoology
CiteScore
6.40
自引率
0.00%
发文量
65
审稿时长
40 days
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