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本文引用的文献

1
An actin-based wave generator organizes cell motility.一种基于肌动蛋白的波动发生器调控细胞运动。
PLoS Biol. 2007 Sep;5(9):e221. doi: 10.1371/journal.pbio.0050221.
2
A mass conserved reaction-diffusion system captures properties of cell polarity.一个质量守恒的反应扩散系统能够捕捉细胞极性的特性。
PLoS Comput Biol. 2007 Jun;3(6):e108. doi: 10.1371/journal.pcbi.0030108. Epub 2007 Apr 30.
3
Mathematical model for spatial segregation of the Rho-family GTPases based on inhibitory crosstalk.基于抑制性串扰的Rho家族小GTP酶空间隔离的数学模型。
Bull Math Biol. 2007 Aug;69(6):1943-78. doi: 10.1007/s11538-007-9200-6. Epub 2007 Apr 25.
4
Endocytosis optimizes the dynamic localization of membrane proteins that regulate cortical polarity.内吞作用优化了调节皮层极性的膜蛋白的动态定位。
Cell. 2007 Apr 20;129(2):411-22. doi: 10.1016/j.cell.2007.02.043.
5
A mathematical model for neutrophil gradient sensing and polarization.一种用于中性粒细胞梯度感知和极化的数学模型。
PLoS Comput Biol. 2007 Mar 16;3(3):e36. doi: 10.1371/journal.pcbi.0030036. Epub 2007 Jan 9.
6
Central roles of small GTPases in the development of cell polarity in yeast and beyond.小GTP酶在酵母及其他生物细胞极性发育中的核心作用。
Microbiol Mol Biol Rev. 2007 Mar;71(1):48-96. doi: 10.1128/MMBR.00028-06.
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Chemotaxis in shallow gradients is mediated independently of PtdIns 3-kinase by biased choices between random protrusions.在浅梯度下的趋化作用是通过随机突起之间的偏向性选择独立于磷脂酰肌醇3激酶介导的。
Nat Cell Biol. 2007 Feb;9(2):193-200. doi: 10.1038/ncb1536. Epub 2007 Jan 14.
8
Big roles for small GTPases in the control of directed cell movement.小GTP酶在定向细胞运动控制中发挥重要作用。
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Long-range signaling by phosphoprotein waves arising from bistability in protein kinase cascades.蛋白激酶级联反应中的双稳态引发磷蛋白波的远程信号传导。
Mol Syst Biol. 2006;2:61. doi: 10.1038/msb4100108. Epub 2006 Nov 14.
10
Phosphoinositides and Rho proteins spatially regulate actin polymerization to initiate and maintain directed movement in a one-dimensional model of a motile cell.磷酸肌醇和Rho蛋白在空间上调节肌动蛋白聚合,以在运动细胞的一维模型中启动和维持定向运动。
Biophys J. 2007 Feb 1;92(3):744-68. doi: 10.1529/biophysj.106.090514. Epub 2006 Nov 10.

双稳反应扩散系统中的波钉扎与细胞极性

Wave-pinning and cell polarity from a bistable reaction-diffusion system.

作者信息

Mori Yoichiro, Jilkine Alexandra, Edelstein-Keshet Leah

机构信息

Institute of Applied Mathematics and Department of Mathematics University of British Columbia, Vancouver, Canada.

出版信息

Biophys J. 2008 May 1;94(9):3684-97. doi: 10.1529/biophysj.107.120824. Epub 2008 Jan 22.

DOI:10.1529/biophysj.107.120824
PMID:18212014
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2292363/
Abstract

Motile eukaryotic cells polarize in response to external signals. Numerous mechanisms have been suggested to account for this symmetry breaking and for the ensuing robust polarization. Implicated in this process are various proteins that are recruited to the plasma membrane and segregate at an emergent front or back of the polarizing cell. Among these are PI3K, PTEN, and members of the Rho family GTPases such as Cdc42, Rac, and Rho. Many such proteins, including the Rho GTPases, cycle between active membrane-bound forms and inactive cytosolic forms. In previous work, we have shown that this property, together with appropriate crosstalk, endows a biochemical circuit (Cdc42, Rac, and Rho) with the property of inherent polarizability. Here we show that this property is present in an even simpler system comprised of a single active/inactive protein pair with positive feedback to its own activation. The simplicity of this minimal system also allows us to explain the mechanism using insights from mathematical analysis. The basic idea resides in a well-known property of reaction-diffusion systems with bistable kinetics, namely, propagation of fronts. However, it crucially depends on exchange between active and inactive forms of the chemicals with unequal rates of diffusion, and overall conservation to pin the waves into a stable polar distribution. We refer to these dynamics as wave-pinning and we show that this phenomenon is distinct from Turing-instability-generated pattern formation that occurs in reaction-diffusion systems that appear to be very similar. We explain the mathematical basis of the phenomenon, relate it to spatial segregation of Rho GTPases, and show how it can account for spatial amplification and maintenance of polarity, as well as sensitivity to new stimuli typical in polarization of eukaryotic cells.

摘要

运动性真核细胞会响应外部信号而发生极化。人们提出了许多机制来解释这种对称性破缺以及随之而来的稳健极化。参与这一过程的是各种被招募到质膜并在极化细胞新出现的前端或后端分离的蛋白质。其中包括PI3K、PTEN以及Rho家族GTP酶的成员,如Cdc42、Rac和Rho。许多这样的蛋白质,包括Rho GTP酶,在活性膜结合形式和非活性胞质形式之间循环。在之前的工作中,我们已经表明,这种特性与适当的串扰一起,赋予了一个生化回路(Cdc42、Rac和Rho)固有极化性的特性。在这里,我们表明这种特性存在于一个更简单的系统中,该系统由一对具有自身激活正反馈的活性/非活性蛋白质组成。这个最小系统的简单性也使我们能够利用数学分析的见解来解释其机制。基本思想在于具有双稳动力学的反应扩散系统的一个众所周知的特性,即前沿的传播。然而,它关键取决于化学物质活性和非活性形式之间的交换,其扩散速率不相等,并且整体守恒以将波固定成稳定的极性分布。我们将这些动力学称为波钉扎,并且我们表明这种现象与在看似非常相似的反应扩散系统中发生的图灵不稳定性产生的图案形成不同。我们解释了该现象的数学基础,将其与Rho GTP酶的空间分离相关联,并展示了它如何能够解释极性的空间放大和维持,以及对真核细胞极化中典型的新刺激的敏感性。