Jooken Stijn, Deschaume Olivier, Bartic Carmen
Department of Physics and Astronomy, Katholieke Universiteit Leuven, 3001 Leuven, Belgium.
Gels. 2023 Feb 13;9(2):153. doi: 10.3390/gels9020153.
Over recent years, nano-engineered materials have become an important component of artificial extracellular matrices. On one hand, these materials enable static enhancement of the bulk properties of cell scaffolds, for instance, they can alter mechanical properties or electrical conductivity, in order to better mimic the in vivo cell environment. Yet, many nanomaterials also exhibit dynamic, remotely tunable optical, electrical, magnetic, or acoustic properties, and therefore, can be used to non-invasively deliver localized, dynamic stimuli to cells cultured in artificial ECMs in three dimensions. Vice versa, the same, functional nanomaterials, can also report changing environmental conditions-whether or not, as a result of a dynamically applied stimulus-and as such provide means for wireless, long-term monitoring of the cell status inside the culture. In this review article, we present an overview of the technological advances regarding the incorporation of functional nanomaterials in artificial extracellular matrices, highlighting both passive and dynamically tunable nano-engineered components.
近年来,纳米工程材料已成为人工细胞外基质的重要组成部分。一方面,这些材料能够静态增强细胞支架的整体性能,例如,它们可以改变机械性能或电导率,以便更好地模拟体内细胞环境。然而,许多纳米材料还具有动态的、可远程调节的光学、电学、磁学或声学特性,因此,可用于向三维人工细胞外基质中培养的细胞非侵入性地传递局部动态刺激。反之,同样的功能性纳米材料也能够报告环境条件的变化——无论是否是动态施加刺激的结果——从而为无线长期监测培养物中的细胞状态提供手段。在这篇综述文章中,我们概述了在人工细胞外基质中引入功能性纳米材料的技术进展,重点介绍了被动和动态可调的纳米工程组件。