Department of Cell Biology, Graduate School of Medicine, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-0033, Japan.
Nonequilibrium Physics of Living Matter RIKEN Hakubi Research Team, RIKEN Center for Biosystems Dynamics Research, 2-2-3 Minatojima-minamimachi, Chuo-ku, Kobe, Hyogo 650-0047, Japan.
Microscopy (Oxf). 2024 Jun 6;73(3):226-242. doi: 10.1093/jmicro/dfad059.
Morphogenesis is a developmental process of organisms being shaped through complex and cooperative cellular movements. To understand the interplay between genetic programs and the resulting multicellular morphogenesis, it is essential to characterize the morphologies and dynamics at the single-cell level and to understand how physical forces serve as both signaling components and driving forces of tissue deformations. In recent years, advances in microscopy techniques have led to improvements in imaging speed, resolution and depth. Concurrently, the development of various software packages has supported large-scale, analyses of challenging images at the single-cell resolution. While these tools have enhanced our ability to examine dynamics of cells and mechanical processes during morphogenesis, their effective integration requires specialized expertise. With this background, this review provides a practical overview of those techniques. First, we introduce microscopic techniques for multicellular imaging and image analysis software tools with a focus on cell segmentation and tracking. Second, we provide an overview of cutting-edge techniques for mechanical manipulation of cells and tissues. Finally, we introduce recent findings on morphogenetic mechanisms and mechanosensations that have been achieved by effectively combining microscopy, image analysis tools and mechanical manipulation techniques.
形态发生是生物体通过复杂而协作的细胞运动而形成的发育过程。为了理解遗传程序之间的相互作用以及由此产生的多细胞形态发生,必须描述单细胞水平的形态和动态,并了解物理力如何作为组织变形的信号成分和驱动力。近年来,显微镜技术的进步提高了成像速度、分辨率和深度。同时,各种软件包的开发支持了在单细胞分辨率下对具有挑战性的图像进行大规模分析。虽然这些工具增强了我们检查细胞动力学和形态发生过程中机械过程的能力,但它们的有效整合需要专门的专业知识。在此背景下,本综述提供了这些技术的实用概述。首先,我们介绍用于多细胞成像的显微镜技术和专注于细胞分割和跟踪的图像分析软件工具。其次,我们概述了用于细胞和组织机械操作的前沿技术。最后,我们介绍了通过有效结合显微镜、图像分析工具和机械操作技术实现的形态发生机制和机械感觉的最新发现。