BCMaterials, Basque Centre for Materials, Applications and Nanostructures, University of the Basque Country UPV/EHU Science Park, Leioa, E-48940, Spain.
Physics Centre, University of Minho, Campus de Gualtar, Braga, 4710-057, Portugal.
Adv Biosyst. 2020 Oct;4(10):e2000125. doi: 10.1002/adbi.202000125. Epub 2020 Sep 13.
Tissue engineering (TE) is a strongly expanding research area. TE approaches require biocompatible scaffolds, cells, and different applied stimuli, which altogether mimic the natural tissue microenvironment. Also, the extracellular matrix serves as a structural base for cells and as a source of growth factors and biophysical cues. The 3D characteristics of the microenvironment is one of the most recognized key factors for obtaining specific cell responses in vivo, being the physical cues increasingly investigated. Supporting those advances is the progress of smart and multifunctional materials design, whose properties improve the cell behavior control through the possibility of providing specific chemical and physical stimuli to the cellular environment. In this sense, a varying set of bioreactors that properly stimulate those materials and cells in vitro, creating an appropriate biomimetic microenvironment, is developed to obtain active bioreactors. This review provides a comprehensive overview on the important microenvironments of different cells and tissues, the smart materials type used for providing such microenvironments and the specific bioreactor technologies that allow subjecting the cells/tissues to the required biomimetic biochemical and biophysical cues. Further, it is shown that microfluidic bioreactors represent a growing and interesting field that hold great promise for achieving suitable TE strategies.
组织工程(TE)是一个迅速发展的研究领域。TE 方法需要生物相容性支架、细胞和不同的应用刺激,这些共同模拟了自然组织的微环境。此外,细胞外基质不仅为细胞提供了结构基础,也是生长因子和生物物理线索的来源。微环境的 3D 特征是获得体内特定细胞反应的最被认可的关键因素之一,其物理线索越来越受到关注。支持这些进展的是智能和多功能材料设计的进步,其特性通过向细胞环境提供特定的化学和物理刺激来改善细胞行为的控制。从这个意义上说,开发了各种生物反应器,这些生物反应器可以适当刺激这些材料和细胞,创造适当的仿生微环境,从而获得活性生物反应器。本文综述了不同细胞和组织的重要微环境、用于提供此类微环境的智能材料类型以及允许细胞/组织受到所需仿生生化和生物物理线索的特定生物反应器技术。此外,还表明微流控生物反应器是一个不断发展和有趣的领域,为实现合适的 TE 策略提供了巨大的前景。