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Pathogenicity and other genomic islands in plant pathogenic bacteria.植物病原菌的致病性及其他基因组岛。
Mol Plant Pathol. 2003 Sep 1;4(5):407-20. doi: 10.1046/j.1364-3703.2003.00187.x.
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Boolean network simulations for life scientists.面向生命科学家的布尔网络模拟
Source Code Biol Med. 2008 Nov 14;3:16. doi: 10.1186/1751-0473-3-16.
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Boolean network model predicts cell cycle sequence of fission yeast.布尔网络模型预测裂殖酵母的细胞周期序列。
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Superstability of the yeast cell-cycle dynamics: ensuring causality in the presence of biochemical stochasticity.酵母细胞周期动力学的超稳定性:在生化随机性存在的情况下确保因果关系。
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Regulation of the type III secretion system in phytopathogenic bacteria.植物致病细菌中III型分泌系统的调控
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Methods of robustness analysis for Boolean models of gene control networks.基因调控网络布尔模型的鲁棒性分析方法。
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Dynamical analysis of a generic Boolean model for the control of the mammalian cell cycle.用于控制哺乳动物细胞周期的通用布尔模型的动力学分析。
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Robustness and fragility of Boolean models for genetic regulatory networks.基因调控网络布尔模型的稳健性与脆弱性
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A high-throughput, near-saturating screen for type III effector genes from Pseudomonas syringae.针对丁香假单胞菌III型效应子基因的高通量、近饱和筛选。
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A gene regulatory network model for cell-fate determination during Arabidopsis thaliana flower development that is robust and recovers experimental gene expression profiles.一种用于拟南芥花发育过程中细胞命运决定的基因调控网络模型,该模型稳健且能恢复实验性基因表达谱。
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一种拟南芥丁香假单胞菌 hrp 调控基因的布尔模型预测了一个受到严格调控的系统。

A Boolean model of the Pseudomonas syringae hrp regulon predicts a tightly regulated system.

机构信息

The Sainsbury Laboratory, John Innes Centre, Norwich, United Kingdom.

出版信息

PLoS One. 2010 Feb 15;5(2):e9101. doi: 10.1371/journal.pone.0009101.

DOI:10.1371/journal.pone.0009101
PMID:20169167
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2821412/
Abstract

The Type III secretion system (TTSS) is a protein secretion machinery used by certain gram-negative bacterial pathogens of plants and animals to deliver effector molecules to the host and is at the core of the ability to cause disease. Extensive molecular and biochemical study has revealed the components and their interactions within this system but reductive approaches do not consider the dynamical properties of the system as a whole. In order to gain a better understanding of these dynamical behaviours and to create a basis for the refinement of the experimentally derived knowledge we created a Boolean model of the regulatory interactions within the hrp regulon of Pseudomonas syringae pathovar tomato strain DC3000 Pseudomonas syringae. We compared simulations of the model with experimental data and found them to be largely in accordance, though the hrpV node shows some differences in state changes to that expected. Our simulations also revealed interesting dynamical properties not previously predicted. The model predicts that the hrp regulon is a biologically stable two-state system, with each of the stable states being strongly attractive, a feature indicative of selection for a tightly regulated and responsive system. The model predicts that the state of the GacS/GacA node confers control, a prediction that is consistent with experimental observations that the protein has a role as master regulator. Simulated gene "knock out" experiments with the model predict that HrpL is a central information processing point within the network.

摘要

III 型分泌系统(TTSS)是一种蛋白质分泌机制,某些动植物革兰氏阴性病原菌利用该机制将效应分子输送到宿主,这是导致疾病的核心能力。广泛的分子和生化研究揭示了该系统中的组成部分及其相互作用,但简化方法并没有考虑到整个系统的动态特性。为了更好地理解这些动态行为,并为改进基于实验的知识提供基础,我们创建了一个 Pseudomonas syringae 番茄亚种 DC3000 菌株 hrp 调控子内调控相互作用的布尔模型。我们将模型的模拟与实验数据进行了比较,发现它们在很大程度上是一致的,尽管 hrpV 节点在状态变化方面与预期存在一些差异。我们的模拟还揭示了一些以前没有预测到的有趣的动态特性。该模型预测,hrp 调控子是一个具有生物稳定性的双稳态系统,每个稳定状态都具有很强的吸引力,这一特征表明该系统是经过严格调控和响应的选择。该模型预测,GacS/GacA 节点的状态赋予了控制,这一预测与实验观察结果一致,即该蛋白在作为主调控因子方面具有作用。通过模型进行的模拟基因“敲除”实验预测,HrpL 是网络内的一个中央信息处理点。