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本文引用的文献

1
Subcellular optogenetics - controlling signaling and single-cell behavior.亚细胞光遗传学——控制信号传导和单细胞行为。
J Cell Sci. 2015 Jan 1;128(1):15-25. doi: 10.1242/jcs.154435. Epub 2014 Nov 28.
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Benchmarking of optical dimerizer systems.光学二聚体系统的基准测试
ACS Synth Biol. 2014 Nov 21;3(11):832-8. doi: 10.1021/sb500291r. Epub 2014 Nov 5.
3
An optimized optogenetic clustering tool for probing protein interaction and function.一种用于探究蛋白质相互作用和功能的优化光遗传学聚类工具。
Nat Commun. 2014 Sep 18;5:4925. doi: 10.1038/ncomms5925.
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Illuminating cell signalling with optogenetic tools.用光遗传学工具照亮细胞信号转导。
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5
Directed migration of mesenchymal cells: where signaling and the cytoskeleton meet.间充质细胞的定向迁移:信号传导与细胞骨架的交汇之处。
Curr Opin Cell Biol. 2014 Oct;30:74-82. doi: 10.1016/j.ceb.2014.06.005. Epub 2014 Jul 5.
6
Spatiotemporal control of fibroblast growth factor receptor signals by blue light.蓝光对成纤维细胞生长因子受体信号的时空控制
Chem Biol. 2014 Jul 17;21(7):903-12. doi: 10.1016/j.chembiol.2014.05.013. Epub 2014 Jun 26.
7
Reversible protein inactivation by optogenetic trapping in cells.细胞内光遗传学捕获导致的蛋白质可逆失活。
Nat Methods. 2014 Jun;11(6):633-6. doi: 10.1038/nmeth.2940. Epub 2014 May 4.
8
Characterizing bacterial gene circuit dynamics with optically programmed gene expression signals.用光程控基因表达信号表征细菌基因回路动力学。
Nat Methods. 2014 Apr;11(4):449-55. doi: 10.1038/nmeth.2884. Epub 2014 Mar 9.
9
Using optogenetics to interrogate the dynamic control of signal transmission by the Ras/Erk module.运用光遗传学技术探究 Ras/Erk 模块对信号传递的动态调控。
Cell. 2013 Dec 5;155(6):1422-34. doi: 10.1016/j.cell.2013.11.004.
10
Optobiology: optical control of biological processes via protein engineering.光学生物学:通过蛋白质工程实现对生物过程的光学控制。
Biochem Soc Trans. 2013 Oct;41(5):1183-8. doi: 10.1042/BST20130150.

利用光遗传学对信号扰动进行预测性时空操纵

Predictive Spatiotemporal Manipulation of Signaling Perturbations Using Optogenetics.

作者信息

Valon Leo, Etoc Fred, Remorino Amanda, di Pietro Florencia, Morin Xavier, Dahan Maxime, Coppey Mathieu

机构信息

Laboratoire Physico-Chimie, Institut Curie, Centre National de la Recherche Scientifique UMR168, Paris-Science Lettres, Université Pierre et Marie Curie-Paris 6, Paris, France.

Center for Studies in Physics and Biology, The Rockefeller University, New York, New York.

出版信息

Biophys J. 2015 Nov 3;109(9):1785-97. doi: 10.1016/j.bpj.2015.08.042.

DOI:10.1016/j.bpj.2015.08.042
PMID:26536256
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4643200/
Abstract

Recently developed optogenetic methods promise to revolutionize cell biology by allowing signaling perturbations to be controlled in space and time with light. However, a quantitative analysis of the relationship between a custom-defined illumination pattern and the resulting signaling perturbation is lacking. Here, we characterize the biophysical processes governing the localized recruitment of the Cryptochrome CRY2 to its membrane-anchored CIBN partner. We develop a quantitative framework and present simple procedures that enable predictive manipulation of protein distributions on the plasma membrane with a spatial resolution of 5 μm. We show that protein gradients of desired levels can be established in a few tens of seconds and then steadily maintained. These protein gradients can be entirely relocalized in a few minutes. We apply our approach to the control of the Cdc42 Rho GTPase activity. By inducing strong localized signaling perturbation, we are able to monitor the initiation of cell polarity and migration with a remarkable reproducibility despite cell-to-cell variability.

摘要

最近开发的光遗传学方法有望通过利用光在空间和时间上控制信号扰动来彻底改变细胞生物学。然而,目前缺乏对自定义照明模式与由此产生的信号扰动之间关系的定量分析。在这里,我们描述了控制隐花色素CRY2在其膜锚定CIBN伴侣上的局部募集的生物物理过程。我们开发了一个定量框架,并提出了简单的程序,能够以5μm的空间分辨率对质膜上的蛋白质分布进行预测性操作。我们表明,可以在几十秒内建立所需水平的蛋白质梯度,然后稳定维持。这些蛋白质梯度可以在几分钟内完全重新定位。我们将我们的方法应用于控制Cdc42 Rho GTPase活性。通过诱导强烈的局部信号扰动,尽管细胞间存在差异,我们仍能够以显著的可重复性监测细胞极性和迁移的起始。