标题
Spatial control of the cell division site by the Min system inEscherichia coli
作者
关键词
-
出版物
ENVIRONMENTAL MICROBIOLOGY
Volume 15, Issue 12, Pages 3229-3239
出版商
Wiley
发表日期
2013-03-15
DOI
10.1111/1462-2920.12119
参考文献
相关参考文献
注意:仅列出部分参考文献,下载原文获取全部文献信息。- Growth in width and FtsZ ring longitudinal positioning in a gammaproteobacterial symbiont
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- Mechanism of the asymmetric activation of the MinD ATPase by MinE
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- Polar growth in the Alphaproteobacterial order Rhizobiales
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- The ParA/MinD family puts things in their place
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- The Min Oscillator Uses MinD-Dependent Conformational Changes in MinE to Spatially Regulate Cytokinesis
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- A MinD mutant of enterohemorrhagic E. coli O157:H7 has reduced adherence to human epithelial cells
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- Determination of the structure of the MinD-ATP complex reveals the orientation of MinD on the membrane and the relative location of the binding sites for MinE and MinC
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- Min protein patterns emerge from rapid rebinding and membrane interaction of MinE
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- The N-Terminal Amphipathic Helix of the Topological Specificity Factor MinE Is Associated with Shaping Membrane Curvature
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- Cardiolipin microdomains localize to negatively curved regions of Escherichia coli membranes
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- Crystal structure of Helicobacter pylori MinE, a cell division topological specificity factor
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- Examination of the interaction between FtsZ and MinCNinE. colisuggests how MinC disrupts Z rings
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- Appropriation of the MinD protein-interaction motif by the dimeric interface of the bacterial cell division regulator MinE
- (2010) H. Ghasriani et al. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
- Multiple modes of interconverting dynamic pattern formation by bacterial cell division proteins
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- Direct MinE-membrane interaction contributes to the proper localization of MinDE inE. coli
- (2009) Cheng-Wei Hsieh et al. MOLECULAR MICROBIOLOGY
- MinC Spatially Controls Bacterial Cytokinesis by Antagonizing the Scaffolding Function of FtsZ
- (2008) Alex Dajkovic et al. CURRENT BIOLOGY
- Spatial Regulators for Bacterial Cell Division Self-Organize into Surface Waves in Vitro
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