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本文引用的文献

1
Quantitative genome-scale analysis of protein localization in an asymmetric bacterium.不对称细菌中蛋白质定位的定量全基因组规模分析。
Proc Natl Acad Sci U S A. 2009 May 12;106(19):7858-63. doi: 10.1073/pnas.0901781106. Epub 2009 Apr 22.
2
PSICIC: noise and asymmetry in bacterial division revealed by computational image analysis at sub-pixel resolution.PSICIC:亚像素分辨率下通过计算图像分析揭示的细菌分裂中的噪声和不对称性
PLoS Comput Biol. 2008 Nov;4(11):e1000233. doi: 10.1371/journal.pcbi.1000233. Epub 2008 Nov 28.
3
Group II intron protein localization and insertion sites are affected by polyphosphate.第二组内含子蛋白的定位和插入位点受多聚磷酸盐影响。
PLoS Biol. 2008 Jun 24;6(6):e150. doi: 10.1371/journal.pbio.0060150.
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Screen for localized proteins in Caulobacter crescentus.筛选新月柄杆菌中的定位蛋白。
PLoS One. 2008 Mar 12;3(3):e1756. doi: 10.1371/journal.pone.0001756.
5
The dynamic interplay between a cell fate determinant and a lysozyme homolog drives the asymmetric division cycle of Caulobacter crescentus.细胞命运决定因子与溶菌酶同源物之间的动态相互作用驱动了新月柄杆菌的不对称分裂周期。
Genes Dev. 2008 Jan 15;22(2):212-25. doi: 10.1101/gad.1601808.
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Spatial complexity and control of a bacterial cell cycle.细菌细胞周期的空间复杂性与调控
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An experimental study of GFP-based FRET, with application to intrinsically unstructured proteins.基于绿色荧光蛋白的荧光共振能量转移的实验研究及其在内在无序蛋白中的应用
Protein Sci. 2007 Jul;16(7):1429-38. doi: 10.1110/ps.072845607.
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High-throughput identification of transcription start sites, conserved promoter motifs and predicted regulons.转录起始位点、保守启动子基序及预测调控子的高通量鉴定
Nat Biotechnol. 2007 May;25(5):584-92. doi: 10.1038/nbt1294. Epub 2007 Apr 1.
9
High-throughput fluorescence microscopy for systems biology.用于系统生物学的高通量荧光显微镜技术
Nat Rev Mol Cell Biol. 2006 Sep;7(9):690-6. doi: 10.1038/nrm1979. Epub 2006 Jul 19.
10
MipZ, a spatial regulator coordinating chromosome segregation with cell division in Caulobacter.MipZ,一种在柄杆菌中协调染色体分离与细胞分裂的空间调节因子。
Cell. 2006 Jul 14;126(1):147-62. doi: 10.1016/j.cell.2006.05.038.

高通量鉴定蛋白质定位依赖关系网络。

High-throughput identification of protein localization dependency networks.

机构信息

Department of Developmental Biology, Stanford University School of Medicine, Stanford, CA 94305, USA.

出版信息

Proc Natl Acad Sci U S A. 2010 Mar 9;107(10):4681-6. doi: 10.1073/pnas.1000846107. Epub 2010 Feb 22.

DOI:10.1073/pnas.1000846107
PMID:20176934
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2842071/
Abstract

Bacterial cells are highly organized with many protein complexes and DNA loci dynamically positioned to distinct subcellular sites over the course of a cell cycle. Such dynamic protein localization is essential for polar organelle development, establishment of asymmetry, and chromosome replication during the Caulobacter crescentus cell cycle. We used a fluorescence microscopy screen optimized for high-throughput to find strains with anomalous temporal or spatial protein localization patterns in transposon-generated mutant libraries. Automated image acquisition and analysis allowed us to identify genes that affect the localization of two polar cell cycle histidine kinases, PleC and DivJ, and the pole-specific pili protein CpaE, each tagged with a different fluorescent marker in a single strain. Four metrics characterizing the observed localization patterns of each of the three labeled proteins were extracted for hundreds of cell images from each of 854 mapped mutant strains. Using cluster analysis of the resulting set of 12-element vectors for each of these strains, we identified 52 strains with mutations that affected the localization pattern of the three tagged proteins. This information, combined with quantitative localization data from epitasis experiments, also identified all previously known proteins affecting such localization. These studies provide insights into factors affecting the PleC/DivJ localization network and into regulatory links between the localization of the pili assembly protein CpaE and the kinase localization pathway. Our high-throughput screening methodology can be adapted readily to any sequenced bacterial species, opening the potential for databases of localization regulatory networks across species, and investigation of localization network phylogenies.

摘要

细菌细胞高度组织化,许多蛋白质复合物和 DNA 位点在细胞周期中动态定位到不同的亚细胞部位。这种动态的蛋白质定位对于杆状菌属新月形细胞周期中极性细胞器的发育、不对称性的建立和染色体复制至关重要。我们使用了一种经过优化的荧光显微镜筛选方法,可用于高通量筛选转座子生成的突变文库中异常的时空蛋白质定位模式的菌株。自动化的图像采集和分析使我们能够识别影响两种极性细胞周期组氨酸激酶 PleC 和 DivJ 以及极性特异性菌毛蛋白 CpaE 定位的基因,每个基因都在一个菌株中用不同的荧光标记进行标记。从 854 个映射突变株中的每个菌株的数百个细胞图像中提取了这三种标记蛋白的观察到的定位模式的四个特征指标。使用对这些菌株中的每一个的这三个标记蛋白的 12 元素向量集的聚类分析,我们鉴定了 52 个具有影响三种标记蛋白定位模式的突变的菌株。这些信息,结合来自上位性实验的定量定位数据,还鉴定了所有先前已知的影响这种定位的蛋白质。这些研究提供了对影响 PleC/DivJ 定位网络的因素的深入了解,以及菌毛组装蛋白 CpaE 的定位与激酶定位途径之间的调节联系。我们的高通量筛选方法可以很容易地适应任何测序的细菌物种,为跨物种的定位调节网络数据库的建立和定位网络系统发育的研究开辟了可能性。