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Growth of the Bacillus subtilis cell surface.枯草芽孢杆菌细胞表面的生长
Nat New Biol. 1973 May 9;243(123):62-4.
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BAGSHAPED MACROMOLECULES--A NEW OUTLOOK ON BACTERIAL CELL WALLS.袋状大分子——对细菌细胞壁的新视角
Adv Enzymol Relat Subj Biochem. 1964;26:193-232. doi: 10.1002/9780470122716.ch5.
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Morphogenesis of Escherichia coli.大肠杆菌的形态发生
Curr Opin Microbiol. 2001 Dec;4(6):625-33. doi: 10.1016/s1369-5274(01)00261-2.
4
Constitutive septal murein synthesis in Escherichia coli with impaired activity of the morphogenetic proteins RodA and penicillin-binding protein 2.形态发生蛋白RodA和青霉素结合蛋白2活性受损的大肠杆菌中组成型隔膜胞壁质合成
J Bacteriol. 2001 Jul;183(14):4115-26. doi: 10.1128/JB.183.14.4115-4126.2001.
5
Simulation of the conformation of the murein fabric: the oligoglycan, penta-muropeptide, and cross-linked nona-muropeptide.胞壁质结构的构象模拟:寡聚糖、五聚体肽聚糖和交联九聚体肽聚糖。
Arch Microbiol. 2000 Dec;174(6):429-39. doi: 10.1007/s002030000227.
6
A 1.2-A snapshot of the final step of bacterial cell wall biosynthesis.图1.2——细菌细胞壁生物合成最后一步的示意图。
Proc Natl Acad Sci U S A. 2001 Feb 13;98(4):1427-31. doi: 10.1073/pnas.98.4.1427.
7
On the architecture of the gram-negative bacterial murein sacculus.论革兰氏阴性菌胞壁质囊的结构
J Bacteriol. 2000 Oct;182(20):5925-30. doi: 10.1128/JB.182.20.5925-5930.2000.
8
Molecular mechanics of the mycobacterial cell wall: from horizontal layers to vertical scaffolds.分枝杆菌细胞壁的分子力学:从水平层到垂直支架
Int J Med Microbiol. 2000 Jul;290(3):251-8. doi: 10.1016/S1438-4221(00)80122-8.
9
Length distribution of the peptidoglycan chains in the sacculus of Escherichia coli.大肠杆菌细胞壁中肽聚糖链的长度分布
J Theor Biol. 2000 Jun 21;204(4):533-41. doi: 10.1006/jtbi.2000.2039.
10
Characterization of Staphylococcus aureus cell wall glycan strands, evidence for a new beta-N-acetylglucosaminidase activity.金黄色葡萄球菌细胞壁聚糖链的表征,一种新型β-N-乙酰氨基葡萄糖苷酶活性的证据。
J Biol Chem. 2000 Apr 7;275(14):9910-8. doi: 10.1074/jbc.275.14.9910.

细菌胞壁质的三级结构:支架模型

Tertiary structure of bacterial murein: the scaffold model.

作者信息

Dmitriev Boris A, Toukach Filip V, Schaper Klaus-Jürgen, Holst Otto, Rietschel Ernst T, Ehlers Stefan

机构信息

N. F. Gamaleya Institute for Epidemiology and Microbiology, Moscow, Russia.

出版信息

J Bacteriol. 2003 Jun;185(11):3458-68. doi: 10.1128/JB.185.11.3458-3468.2003.

DOI:10.1128/JB.185.11.3458-3468.2003
PMID:12754246
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC155389/
Abstract

Although the chemical structure and physical properties of peptidoglycan have been elucidated for some time, the precise three-dimensional organization of murein has remained elusive. Earlier published computer simulations of the bacterial murein architecture modeled peptidoglycan strands in either a regular (D. Pink, J. Moeller, B. Quinn, M. Jericho, and T. Beveridge, J. Bacteriol. 182: 5925-5930, 2000) or an irregular (A. Koch, J. Theor. Biol. 204: 533-541, 2000) parallel orientation with respect to the plasma membrane. However, after integrating published experimental data on glycan chain length distribution and the degree of peptide side chain cross-linking into this computer simulation, we now report that the proposed planar network of murein appears largely dysfunctional. In contrast, a scaffold model of murein architecture, which assumes that glycan strands extend perpendicularly to the plasma membrane, was found to accommodate published experimental evidence and yield a viable stress-bearing matrix. Moreover, this model is in accordance with the well-established principle of murein assembly in vivo, i.e., sequential attachment of strands to the preexisting structure. For the first time, the phenomenon of division plane alternation in dividing bacteria can be reconciled with a computer model of the molecular architecture of murein.

摘要

尽管肽聚糖的化学结构和物理性质已被阐明有一段时间了,但胞壁质的精确三维结构仍不清楚。早期发表的关于细菌胞壁质结构的计算机模拟,将肽聚糖链模拟为相对于质膜呈规则(D. 平克、J. 默勒、B. 奎因、M. 杰里科和T. 贝弗里奇,《细菌学杂志》182: 5925 - 5930, 2000)或不规则(A. 科赫,《理论生物学杂志》204: 533 - 541, 2000)的平行取向。然而,在将已发表的关于聚糖链长度分布和肽侧链交联程度的实验数据整合到该计算机模拟中后,我们现在报告,所提出的胞壁质平面网络在很大程度上似乎功能失调。相比之下,可以发现一种胞壁质结构的支架模型,该模型假设聚糖链垂直于质膜延伸,能够容纳已发表的实验证据,并产生一个可行的承受应力的基质。此外,该模型符合胞壁质在体内组装的既定原则,即链依次附着于预先存在的结构。首次,分裂细菌中分裂平面交替的现象可以与胞壁质分子结构的计算机模型相协调。