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Optical control and study of biological processes at the single-cell level in a live organism

机译:活生物体中单细胞水平的光学控制和生物过程研究

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Living organisms are made of cells that are capable of responding to external signals by modifying their internal state and subsequently their external environment. Revealing and understanding the spatio-temporal dynamics of these complex interaction networks is the subject of a field known as systems biology. To investigate these interactions (a necessary step before understanding or modelling them) one needs to develop means to control or interfere spatially and temporally with these processes and to monitor their response on a fast timescale (< minute) and with single-cell resolution. In 2012, an EMBO workshop on 'single-cell physiology' (organized by some of us) was held in Paris to discuss those issues in the light of recent developments that allow for precise spatio-temporal perturbations and observations. This review will be largely based on the investigations reported there. We will first present a non-exhaustive list of examples of cellular interactions and developmental pathways that could benefit from these new approaches. We will review some of the novel tools that have been developed for the observation of cellular activity and then discuss the recent breakthroughs in optical super-resolution microscopy that allow for optical observations beyond the diffraction limit. We will review the various means to photo-control the activity of biomolecules, which allow for local perturbations of physiological processes. We will end up this review with a report on the current status of optogenetics: the use of photo-sensitive DNA-encoded proteins as sensitive reporters and efficient actuators to perturb and monitor physiological processes.
机译:活生物体是由能够通过改变其内部状态和随后的外部环境而对外部信号作出响应的细胞组成。揭示和理解这些复杂的相互作用网络的时空动力学是系统生物学领域的主题。为了研究这些交互作用(理解或建模之前的必要步骤),需要开发一种手段,以控制或在空间和时间上干扰这些过程,并以快速的时间尺度(<分钟)和单细胞分辨率监控它们的响应。 2012年,由我们中的一些人组织的关于“单细胞生理学”的EMBO讲习班在巴黎举行,根据允许精确时空扰动和观测的最新发展,讨论了这些问题。这次审查将主要基于在那里报告的调查。我们将首先列出可以从这些新方法中受益的细胞相互作用和发育途径的非详尽列表。我们将回顾一些为观察细胞活性而开发的新颖工具,然后讨论光学超分辨率显微镜的最新突破,这些突破使得可以进行超出衍射极限的光学观察。我们将审查光控制生物分子活性的各种方法,这些方法可对生理过程产生局部干扰。我们将以关于光遗传学当前状态的报告作为最后的回顾:使用光敏DNA编码的蛋白质作为灵敏的报告基因和有效的致动器来扰动和监测生理过程。

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