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动态生物系统活体成像的最新进展。

Recent advances in intravital imaging of dynamic biological systems.

机构信息

Laboratory of Cellular Dynamics, WPI-Immunology Frontier Research Center, Osaka University, 3-1 Yamada-oka, Suita, Osaka 565-0871, Japan.

出版信息

J Pharmacol Sci. 2012;119(3):193-7. doi: 10.1254/jphs.12r03cp. Epub 2012 Jun 13.

Abstract

Intravital multiphoton microscopy has opened a new era in the field of biological imaging. Focal excitation of fluorophores by simultaneous attack of multiple (normally "two") photons generates images with high spatial resolution, and use of near-infrared lasers for multiphoton excitation allows penetration of thicker specimens, enabling biologists to visualize living cellular dynamics deep inside tissues and organs without thin sectioning. Moreover, the minimized photo-bleaching and toxicity associated with multiphoton techniques is beneficial for imaging of live specimens for extended observation periods. Here we focus on recent findings using intravital multiphoton imaging of dynamic biological systems such as the immune system and bone homeostasis. The immune system comprises highly dynamic networks, in which many cell types actively travel throughout the body and interact with each other in specific areas. Therefore, real-time intravital imaging represents a powerful tool for understanding the mechanisms underlying this dynamic system.

摘要

活体多光子显微镜技术在生物成像领域开辟了一个新时代。同时用多个(通常为“两个”)光子对荧光团进行焦点激发,可以生成具有高空间分辨率的图像,而使用近红外激光进行多光子激发则允许穿透更厚的标本,使生物学家能够在不进行切片的情况下深入组织和器官内部观察活细胞的动态。此外,与多光子技术相关的最小化光漂白和毒性有利于对活标本进行长时间的扩展观察。在这里,我们重点介绍了使用活体多光子成像技术对动态生物系统(如免疫系统和骨稳态)进行研究的最新发现。免疫系统由高度动态的网络组成,其中许多细胞类型在体内主动迁移,并在特定区域相互作用。因此,实时活体成像代表了一种强大的工具,可以帮助我们理解这个动态系统背后的机制。

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