Bioengineering Engineering Group, School of Science, Computing and Engineering Technologies, Swinburne University of Technology, Hawthorn, Victoria, Australia.
Biomedical Manufacturing, Commonwealth Scientific and Industrial Research Organisation (CSIRO), Clayton, Victoria, Australia.
J Biophotonics. 2022 Jun;15(6):e202100380. doi: 10.1002/jbio.202100380. Epub 2022 Apr 24.
The past decade has seen an increasing demand for more complex, reproducible and physiologically relevant tissue cultures that can mimic the structural and biological features of living tissues. Monitoring the viability, development and responses of such tissues in real-time are challenging due to the complexities of cell culture physical characteristics and the environments in which these cultures need to be maintained in. Significant developments in optics, such as optical manipulation, improved detection and data analysis, have made optical imaging a preferred choice for many three-dimensional (3D) cell culture monitoring applications. The aim of this review is to discuss the challenges associated with imaging and monitoring 3D tissues and cell culture, and highlight topical label-free imaging tools that enable bioengineers and biophysicists to non-invasively characterise engineered living tissues.
过去十年,人们对更复杂、可重现和更符合生理的组织培养物的需求不断增加,这些培养物可以模拟活组织的结构和生物学特征。由于细胞培养物理特性的复杂性以及这些培养物需要维持的环境的复杂性,实时监测这些组织的活力、发育和反应具有挑战性。光学领域的重大进展,如光学操纵、改进的检测和数据分析,使得光学成象成为许多三维(3D)细胞培养监测应用的首选。本综述的目的是讨论与成像和监测 3D 组织和细胞培养相关的挑战,并重点介绍一些无标记的成像工具,这些工具使生物工程师和生物物理学家能够非侵入性地描述工程化的活组织。