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1
Transport of galactose, glucose and their molecular analogues by Escherichia coli K12.大肠杆菌K12对半乳糖、葡萄糖及其分子类似物的转运
Biochem J. 1977 Feb 15;162(2):309-20. doi: 10.1042/bj1620309.
2
2-Deoxy-D-galactose, a substrate for the galactose-transport system of Escherichia coli.2-脱氧-D-半乳糖,大肠杆菌半乳糖转运系统的一种底物。
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3
Active renal hexose transport. Structural requirements.活性肾己糖转运。结构要求。
Biochim Biophys Acta. 1980 Aug 4;600(2):513-29. doi: 10.1016/0005-2736(80)90453-8.
4
Properties of the entry and exit reactions of the beta-methyl galactoside transport system in Escherichia coli.大肠杆菌中β-甲基半乳糖苷转运系统的进出反应特性。
J Bacteriol. 1976 Jun;126(3):1156-65. doi: 10.1128/jb.126.3.1156-1165.1976.
5
Proton movements coupled to sugar transport via the galactose transport system in Salmonella typhimurium.通过鼠伤寒沙门氏菌中的半乳糖转运系统与糖转运相偶联的质子运动。
Eur J Biochem. 1977 Mar 1;73(2):521-7. doi: 10.1111/j.1432-1033.1977.tb11346.x.
6
Galactose transport in Salmonella typhimurium.鼠伤寒沙门氏菌中的半乳糖转运
J Bacteriol. 1977 Feb;129(2):630-9. doi: 10.1128/jb.129.2.630-639.1977.
7
Uptake of galactose into Escherichia coli by facilitated diffusion.半乳糖通过易化扩散进入大肠杆菌。
J Gen Microbiol. 1976 May;94(1):75-89. doi: 10.1099/00221287-94-1-75.
8
The computerized derivation of steady-state rate equations for enzyme kinetics.酶动力学稳态速率方程的计算机推导
Biochem J. 1984 Oct 15;223(2):551-3. doi: 10.1042/bj2230551.
9
A mutant phosphofructokinase produces a futile cycle during gluconeogenesis in Escherichia coli.一种突变型磷酸果糖激酶在大肠杆菌糖异生过程中产生无效循环。
Biochem J. 1997 Nov 1;327 ( Pt 3)(Pt 3):675-84. doi: 10.1042/bj3270675.
10
Roles of individual mgl gene products in the beta-methylgalactoside transport system of Escherichia coli K12.单个mgl基因产物在大肠杆菌K12的β-甲基半乳糖苷转运系统中的作用。
J Biol Chem. 1976 May 25;251(10):3112-6.

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The Small Protein SgrT Controls Transport Activity of the Glucose-Specific Phosphotransferase System.小蛋白SgrT控制葡萄糖特异性磷酸转移酶系统的转运活性。
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Characterisation of the DAACS Family Escherichia coli Glutamate/Aspartate-Proton Symporter GltP Using Computational, Chemical, Biochemical and Biophysical Methods.运用计算、化学、生物化学及生物物理方法对大肠杆菌谷氨酸/天冬氨酸-质子同向转运体GltP的DAACS家族进行表征
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本文引用的文献

1
Isolation of a Mutant of Escherichia coli with a Temperature-sensitive Fructose-1,6-Diphosphate Aldolase Activity.一株具有温度敏感型果糖-1,6-二磷酸醛缩酶活性的大肠杆菌突变体的分离
J Bacteriol. 1966 Aug;92(2):464-9. doi: 10.1128/jb.92.2.464-469.1966.
2
[REGULATORY MECHANISMS IN THE BIOSYNTHESIS OF THE ENZYMES OF GALACTOSE METABOLISM IN ESCHERICHIA COLI K 12. II. THE GENETIC DETERMINISM OF THE REGULATION].[大肠杆菌K12中半乳糖代谢酶生物合成的调控机制。II. 调控的遗传决定因素]
J Mol Biol. 1963 Aug;7:183-205. doi: 10.1016/s0022-2836(63)80045-5.
3
[REGULATORY MECHANISMS IN THE BIOSYNTHESIS OF THE ENZYMES OF GALACTOSE METABOLISM IN ESCHERICHIA COLI K 12. I. THE INDUCED BIOSYNTHESIS OF GALACTOKINASE AND THE SIMULTANEOUS INDUCTION OF THE ENZYMATIC SEQUENCE].[大肠杆菌K12中半乳糖代谢酶生物合成的调控机制。I. 半乳糖激酶的诱导生物合成及酶序列的同步诱导]
J Mol Biol. 1963 Aug;7:164-82. doi: 10.1016/s0022-2836(63)80044-3.
4
Coupling of phosphorylation to electron and hydrogen transfer by a chemi-osmotic type of mechanism.通过化学渗透机制将磷酸化与电子及氢转移相偶联。
Nature. 1961 Jul 8;191:144-8. doi: 10.1038/191144a0.
5
Transduction of linked genetic characters of the host by bacteriophage P1.噬菌体P1对宿主连锁遗传性状的转导
Virology. 1955 Jul;1(2):190-206. doi: 10.1016/0042-6822(55)90016-7.
6
A proposal for a uniform nomenclature in bacterial genetics.细菌遗传学统一命名法的提议。
Genetics. 1966 Jul;54(1):61-76. doi: 10.1093/genetics/54.1.61.
7
Specificity in curing by heteroimmune superinfection.异源免疫超感染治愈的特异性
Virology. 1970 Mar;40(3):522-9. doi: 10.1016/0042-6822(70)90195-9.
8
Mechanisms of lactose utilization by lactic acid streptococci: enzymatic and genetic analyses.乳酸链球菌利用乳糖的机制:酶学与遗传学分析
J Bacteriol. 1970 Jun;102(3):804-9. doi: 10.1128/jb.102.3.804-809.1970.
9
Transport systems for galactose and galactosides in Escherichia coli. I. Genetic determination and regulation of the methyl-galactoside permease.大肠杆菌中半乳糖和半乳糖苷的转运系统。I.甲基半乳糖苷通透酶的遗传测定与调控
J Mol Biol. 1966 Mar;16(1):42-50. doi: 10.1016/s0022-2836(66)80261-9.
10
The role of energy coupling in the transport of beta-galactosides by Escherichia coli.能量偶联在大肠杆菌转运β-半乳糖苷中的作用。
J Biol Chem. 1966 May 25;241(10):2200-11.

大肠杆菌K12对半乳糖、葡萄糖及其分子类似物的转运

Transport of galactose, glucose and their molecular analogues by Escherichia coli K12.

作者信息

Henderson P J, Giddens R A, Jones-Mortimer M C

出版信息

Biochem J. 1977 Feb 15;162(2):309-20. doi: 10.1042/bj1620309.

DOI:10.1042/bj1620309
PMID:15558
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1164603/
Abstract
  1. Strains of Escherichia coli K12 were made that are unable to assimilate glucose by the phosphotransferase system, since they lack the glucose-specific components specified by the genes ptsG and ptsM. 2. Derivative organisms lacking the methyl galactoside or galactose-specific transport system were examined for their ability to transport galactose, d-fucose, methyl beta-D-galactoside, glucose, 2-deoxy-D-glucose and methyl alpha-D-glucoside. 3. Galactose, glucose and to a lesser extent fucose are substrates for both transport systems. 4. 2-Deoxyglucose is transported on the galactose-specific but not the methyl galactoside system. 5. The ability of sugars to elicit anaerobic proton transport is associated with the galactose-specific, but not with the methyl galactoside transport activity. Hence a chemiosmotic mechanism of energization is likely to apply to the former but not to the latter. Alternatively the methyl galactoside system may be switched off under certain conditions, which would indicate a novel regulatory mechanism. 6. Details of the procedure for the derivation of strains may be obtained from the authors, and have been deposited as Supplementary Publication SUP 50074 (8 pages at the) British Library Lending Division, Boston Spa, Wetherby, West Yorkshire LS23 7BQ, U.K., from whom copies can be obtained on the terms indicated in Biochem. J. (1977), 161,1.
摘要
  1. 构建了大肠杆菌K12菌株,这些菌株无法通过磷酸转移酶系统同化葡萄糖,因为它们缺乏由ptsG和ptsM基因指定的葡萄糖特异性成分。2. 检查了缺乏甲基半乳糖苷或半乳糖特异性转运系统的衍生生物体运输半乳糖、D-岩藻糖、β-D-甲基半乳糖苷、葡萄糖、2-脱氧-D-葡萄糖和α-D-甲基葡萄糖苷的能力。3. 半乳糖、葡萄糖以及程度稍低的岩藻糖是两种转运系统的底物。4. 2-脱氧葡萄糖通过半乳糖特异性转运系统运输,但不通过甲基半乳糖苷系统运输。5. 糖类引发厌氧质子转运的能力与半乳糖特异性转运活性有关,而与甲基半乳糖苷转运活性无关。因此,化学渗透能量化机制可能适用于前者而不适用于后者。或者,甲基半乳糖苷系统在某些条件下可能会关闭,这将表明一种新的调节机制。6. 菌株衍生程序的详细信息可从作者处获得,并已作为补充出版物SUP 50074(共8页)存放在英国西约克郡韦瑟比波士顿温泉市大英图书馆出借部,邮编LS23 7BQ,可按《生物化学杂志》(1977年)第161卷第1期所示条件从该处获取复印件。