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Cell sorting enriches Escherichia coli mutants that rely on peptidoglycan endopeptidases to suppress highly aberrant morphologies.细胞分选可富集依赖于肽聚糖内肽酶来抑制高度异常形态的大肠杆菌突变体。
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2
PBP1B Glycosyltransferase and Transpeptidase Activities Play Different Essential Roles during the Regeneration of Rod Morphology in Escherichia coli.PBP1B糖基转移酶和转肽酶活性在大肠杆菌杆状形态再生过程中发挥不同的重要作用。
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The Rcs stress response and accessory envelope proteins are required for de novo generation of cell shape in Escherichia coli.Rcs 应激反应和附属包膜蛋白是大肠杆菌从头产生细胞形状所必需的。
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Endopeptidase penicillin-binding proteins 4 and 7 play auxiliary roles in determining uniform morphology of Escherichia coli.内肽酶青霉素结合蛋白4和7在决定大肠杆菌形态一致性方面发挥辅助作用。
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Upregulation of PBP1B and LpoB in Mutants Confers Mecillinam (Amdinocillin) Resistance in Escherichia coli.在大肠杆菌中,PBP1B 和 LpoB 的上调赋予美西林(氨曲南)耐药性。
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Reduced peptidoglycan synthesis capacity impairs growth of at high salt concentration.低肽聚糖合成能力会削弱 在高盐浓度下的生长。
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FtsZ collaborates with penicillin binding proteins to generate bacterial cell shape in Escherichia coli.在大肠杆菌中,FtsZ与青霉素结合蛋白协同作用以形成细菌细胞形态。
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Super-resolution images of peptidoglycan remodelling enzymes at the division site of Escherichia coli.大肠杆菌分裂位点处肽聚糖重塑酶的超分辨率图像。
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Genetic interaction mapping reveals functional relationships between peptidoglycan endopeptidases and carboxypeptidases.遗传相互作用图谱揭示了肽聚糖内肽酶和羧肽酶之间的功能关系。
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8
Dead-end intermediates in the enterobacterial common antigen pathway induce morphological defects in Escherichia coli by competing for undecaprenyl phosphate.肠杆菌共同抗原途径中的终末中间体通过竞争十一异戊二烯磷酸酯,在大肠杆菌中诱导形态缺陷。
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Protonation states of active-site lysines of penicillin-binding protein 6 from Escherichia coli and the mechanistic implications.来自大肠杆菌的青霉素结合蛋白6活性位点赖氨酸的质子化状态及其机制意义。
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Flow cytometry-based enrichment for cell shape mutants identifies multiple genes that influence Helicobacter pylori morphology.基于流式细胞术的细胞形态突变体富集鉴定出多个影响幽门螺杆菌形态的基因。
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本文引用的文献

1
Cooperativity of peptidoglycan synthases active in bacterial cell elongation.参与细菌细胞伸长的肽聚糖合成酶的协同作用。
Mol Microbiol. 2012 Jul;85(1):179-94. doi: 10.1111/j.1365-2958.2012.08103.x. Epub 2012 Jun 5.
2
Cell size control in bacteria.细菌的细胞大小控制。
Curr Biol. 2012 May 8;22(9):R340-9. doi: 10.1016/j.cub.2012.02.032. Epub 2012 May 7.
3
Multiple peptidoglycan modification networks modulate Helicobacter pylori's cell shape, motility, and colonization potential.多种肽聚糖修饰网络调节幽门螺杆菌的细胞形状、运动性和定植能力。
PLoS Pathog. 2012;8(3):e1002603. doi: 10.1371/journal.ppat.1002603. Epub 2012 Mar 22.
4
Peptidoglycan-modifying enzyme Pgp1 is required for helical cell shape and pathogenicity traits in Campylobacter jejuni.肽聚糖修饰酶 Pgp1 是弯曲杆菌螺旋细胞形态和致病性特征所必需的。
PLoS Pathog. 2012;8(3):e1002602. doi: 10.1371/journal.ppat.1002602. Epub 2012 Mar 22.
5
Cell size and the initiation of DNA replication in bacteria.细菌中细胞大小与 DNA 复制起始的关系。
PLoS Genet. 2012;8(3):e1002549. doi: 10.1371/journal.pgen.1002549. Epub 2012 Mar 1.
6
Escherichia coli low-molecular-weight penicillin-binding proteins help orient septal FtsZ, and their absence leads to asymmetric cell division and branching.大肠杆菌低分子量青霉素结合蛋白有助于定位隔膜 FtsZ,它们的缺失会导致不对称细胞分裂和分支。
Mol Microbiol. 2012 Apr;84(2):203-24. doi: 10.1111/j.1365-2958.2012.08023.x. Epub 2012 Mar 15.
7
Use FACS sorting in metabolic engineering of Escherichia coli for increased peptide production.在大肠杆菌的代谢工程中使用荧光激活细胞分选技术以提高肽产量。
Methods Mol Biol. 2012;834:177-96. doi: 10.1007/978-1-61779-483-4_12.
8
AmpH, a bifunctional DD-endopeptidase and DD-carboxypeptidase of Escherichia coli.大肠杆菌的双功能 DD-内切肽酶和 DD-羧肽酶 AmpH。
J Bacteriol. 2011 Dec;193(24):6887-94. doi: 10.1128/JB.05764-11. Epub 2011 Oct 14.
9
Mutations in the nucleotide binding pocket of MreB can alter cell curvature and polar morphology in Caulobacter.MreB 核苷酸结合口袋中的突变可改变 Caulobacter 中的细胞曲率和极性形态。
Mol Microbiol. 2011 Jul;81(2):368-94. doi: 10.1111/j.1365-2958.2011.07698.x. Epub 2011 May 26.
10
Morphological plasticity promotes resistance to phagocyte killing of uropathogenic Escherichia coli.形态可塑性促进了尿路致病性大肠杆菌对吞噬细胞杀伤的抵抗力。
Microbes Infect. 2011 May;13(5):426-37. doi: 10.1016/j.micinf.2010.12.004. Epub 2010 Dec 21.

细胞分选可富集依赖于肽聚糖内肽酶来抑制高度异常形态的大肠杆菌突变体。

Cell sorting enriches Escherichia coli mutants that rely on peptidoglycan endopeptidases to suppress highly aberrant morphologies.

机构信息

Department of Microbiology and Immunology, University of Arkansas for Medical Sciences, Little Rock, AR, USA.

出版信息

J Bacteriol. 2013 Feb;195(4):855-66. doi: 10.1128/JB.01450-12. Epub 2012 Dec 14.

DOI:10.1128/JB.01450-12
PMID:23243305
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3562112/
Abstract

Bacterial morphology imparts physiological advantages to cells in different environments and, judging by the fidelity with which shape is passed to daughter cells, is a tightly regulated characteristic. Surprisingly, only in the past 10 to 15 years has significant headway been made in identifying the mechanisms by which cells create and maintain particular shapes. One reason for this is that the relevant discoveries have relied heavily on the arduous, somewhat subjective process of manual microscopy. Here, we show that flow cytometry, coupled with the sorting capability of fluorescence-activated cell sorting (FACS), can detect, quantify, and enrich bacteria with morphological alterations. The light scattering properties of several highly aberrant morphological mutants of Escherichia coli were characterized by flow cytometry. Cells from a region that overlapped the distribution of normal rod-shaped cells were collected by FACS and reincubated. After 4 to 15 iterations of this enrichment process, suppressor mutants were isolated that returned almost all the population to a near-normal shape. Suppressors were successfully isolated from strains lacking three or four penicillin binding proteins (PBPs) but not from a mutant lacking a total of seven PBPs. The peptidoglycan endopeptidase, AmpH, was identified as being important for the suppression process, as was a related endopeptidase, MepA. The results validate the use of cell sorting as a means for studying bacterial morphology and identify at least one new class of enzymes required for the suppression of cell shape defects.

摘要

细菌形态赋予了细胞在不同环境中的生理优势,而且从形态能够被精确地传递给子细胞这一点来看,它是一种受到严格调控的特征。令人惊讶的是,直到过去 10 到 15 年,人们才在识别细胞创造和维持特定形状的机制方面取得了重大进展。其中一个原因是,相关发现严重依赖于手工显微镜这一艰苦、有些主观的过程。在这里,我们展示了流式细胞术结合荧光激活细胞分选(FACS)的分选能力,可以检测、定量和富集具有形态改变的细菌。我们通过流式细胞术对大肠杆菌的几个高度异常形态突变体的光散射特性进行了表征。通过 FACS 收集与正常杆状细胞分布重叠的区域中的细胞,并重新孵育。经过 4 到 15 次这样的富集过程,分离出了能够使几乎所有细胞恢复到接近正常形态的抑制突变体。从缺乏三种或四种青霉素结合蛋白(PBPs)的菌株中成功分离出了抑制剂,但从总共缺乏七种 PBPs 的突变体中没有分离出抑制剂。肽聚糖内肽酶 AmpH 被鉴定为抑制过程中的重要酶,相关的内肽酶 MepA 也是如此。研究结果验证了细胞分选作为研究细菌形态的一种手段的有效性,并确定了至少一类新的酶对于抑制细胞形态缺陷是必需的。