Organs in orbit: how tissue chip technology benefits from microgravity, a perspective

Aditi Jogdand, Maxwell Landolina, Yupeng Chen
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Abstract

Tissue chips have become one of the most potent research tools in the biomedical field. In contrast to conventional research methods, such as 2D cell culture and animal models, tissue chips more directly represent human physiological systems. This allows researchers to study therapeutic outcomes to a high degree of similarity to actual human subjects. Additionally, as rocket technology has advanced and become more accessible, researchers are using the unique properties offered by microgravity to meet specific challenges of modeling tissues on Earth; these include large organoids with sophisticated structures and models to better study aging and disease. This perspective explores the manufacturing and research applications of microgravity tissue chip technology, specifically investigating the musculoskeletal, cardiovascular, and nervous systems.
轨道上的器官:组织芯片技术如何从微重力中获益,一个视角
组织芯片已成为生物医学领域最有效的研究工具之一。与二维细胞培养和动物模型等传统研究方法相比,组织芯片更直接地代表了人体生理系统。这使研究人员能够研究与实际人体高度相似的治疗效果。此外,随着火箭技术的发展和普及,研究人员正在利用微重力提供的独特特性来应对在地球上建立组织模型的具体挑战;这些挑战包括具有复杂结构和模型的大型有机体,以更好地研究衰老和疾病。本视角探讨了微重力组织芯片技术的制造和研究应用,特别是对肌肉骨骼、心血管和神经系统的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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