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为仿生器官芯片定制生物材料。

Tailoring biomaterials for biomimetic organs-on-chips.

机构信息

Department of Rheumatology and Immunology, Nanjing Drum Tower Hospital, School of Biological Science and Medical Engineering, Southeast University, Nanjing 210096, China.

State Key Laboratory of Toxicology and Medical Countermeasures, Beijing Institute of Pharmacology and Toxicology, Beijing 100850, China.

出版信息

Mater Horiz. 2023 Oct 30;10(11):4724-4745. doi: 10.1039/d3mh00755c.

Abstract

Organs-on-chips are microengineered microfluidic living cell culture devices with continuously perfused chambers penetrating to cells. By mimicking the biological features of the multicellular constructions, interactions among organs, vascular perfusion, physicochemical microenvironments, and so on, these devices are imparted with some key pathophysiological function levels of living organs that are difficult to be achieved in conventional 2D or 3D culture systems. In this technology, biomaterials are extremely important because they affect the microstructures and functionalities of the organ cells and the development of the organs-on-chip functions. Thus, herein, we provide an overview on the advances of biomaterials for the construction of organs-on-chips. After introducing the general components, structures, and fabrication techniques of the biomaterials, we focus on the studies of the functions and applications of these biomaterials in the organs-on-chips systems. Applications of the biomaterial-based organs-on-chips as alternative animal models for pharmaceutical, chemical, and environmental tests are described and highlighted. The prospects for exciting future directions and the challenges of biomaterials for realizing the further functionalization of organs-on-chips are also presented.

摘要

器官芯片是微工程微流控活细胞培养设备,具有连续灌注的腔室穿透细胞。通过模拟多细胞结构的生物学特征、器官间的相互作用、血管灌注、物理化学微环境等,这些设备赋予了活器官的一些关键病理生理功能水平,这在传统的 2D 或 3D 培养系统中很难实现。在这项技术中,生物材料极其重要,因为它们影响器官细胞的微结构和功能以及器官芯片功能的发展。因此,本文概述了用于构建器官芯片的生物材料的进展。在介绍生物材料的一般组成、结构和制造技术之后,我们重点研究了这些生物材料在器官芯片系统中的功能和应用。描述并强调了基于生物材料的器官芯片作为药物、化学和环境测试替代动物模型的应用。还提出了实现器官芯片进一步功能化的生物材料令人兴奋的未来方向和挑战的前景。

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