Laser and Plasma Research Institute, Shahid Beheshti University, Tehran, 1983969411, Iran.
Faculty of Life Sciences and Biotechnology, Shahid Beheshti University, Tehran, 1983969411, Iran.
Small. 2019 Jul;15(28):e1900737. doi: 10.1002/smll.201900737. Epub 2019 May 14.
Miniaturized laboratories on chip platforms play an important role in handling life sciences studies. The platforms may contain static or dynamic biological cells. Examples are a fixed medium of an organ-on-a-chip and individual cells moving in a microfluidic channel, respectively. Due to feasibility of control or investigation and ethical implications of live targets, both static and dynamic cell-on-chip platforms promise various applications in biology. To extract necessary information from the experiments, the demand for direct monitoring is rapidly increasing. Among different microscopy methods, optical imaging is a straightforward choice. Considering light interaction with biological agents, imaging signals may be generated as a result of scattering or emission effects from a sample. Thus, optical imaging techniques could be categorized into scattering-based and emission-based techniques. In this review, various optical imaging approaches used in monitoring static and dynamic platforms are introduced along with their optical systems, advantages, challenges, and applications. This review may help biologists to find a suitable imaging technique for different cell-on-chip studies and might also be useful for the people who are going to develop optical imaging systems in life sciences studies.
微纳芯片实验室在处理生命科学研究方面发挥着重要作用。这些平台可以包含静态或动态的生物细胞。例如,器官芯片上的固定培养基和在微流控通道中移动的单个细胞分别是静态和动态的细胞芯片平台的示例。由于对活目标进行控制或研究的可行性以及伦理方面的考虑,静态和动态的细胞芯片平台在生物学中都具有各种应用。为了从实验中提取必要的信息,对直接监测的需求正在迅速增加。在不同的显微镜方法中,光学成像是一个直接的选择。考虑到光与生物制剂的相互作用,成像信号可能是由于样品的散射或发射效应而产生的。因此,光学成像技术可以分为基于散射的和基于发射的技术。在这篇综述中,介绍了用于监测静态和动态平台的各种光学成像方法,以及它们的光学系统、优点、挑战和应用。这篇综述可能有助于生物学家为不同的细胞芯片研究找到合适的成像技术,也可能对生命科学研究中开发光学成像系统的人有用。