• 文献检索
  • 文档翻译
  • 深度研究
  • 学术资讯
  • Suppr Zotero 插件Zotero 插件
  • 邀请有礼
  • 套餐&价格
  • 历史记录
应用&插件
Suppr Zotero 插件Zotero 插件浏览器插件Mac 客户端Windows 客户端微信小程序
定价
高级版会员购买积分包购买API积分包
服务
文献检索文档翻译深度研究API 文档MCP 服务
关于我们
关于 Suppr公司介绍联系我们用户协议隐私条款
关注我们

Suppr 超能文献

核心技术专利:CN118964589B侵权必究
粤ICP备2023148730 号-1Suppr @ 2026

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验

葡萄糖酸盐代谢主要系统GntI的大肠杆菌gntR、gntK和gntU基因的克隆及分子遗传学特征分析

Cloning and molecular genetic characterization of the Escherichia coli gntR, gntK, and gntU genes of GntI, the main system for gluconate metabolism.

作者信息

Tong S, Porco A, Isturiz T, Conway T

机构信息

Department of Food Science and Technology, University of Nebraska-Lincoln, 68588-0919, USA.

出版信息

J Bacteriol. 1996 Jun;178(11):3260-9. doi: 10.1128/jb.178.11.3260-3269.1996.

DOI:10.1128/jb.178.11.3260-3269.1996
PMID:8655507
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC178079/
Abstract

Three genes involved in gluconate metabolism, gntR, gntK, and gntU, which code for a regulatory protein, a gluconate kinase, and a gluconate transporter, respectively, were cloned from Escherichia coli K-12 on the basis of their known locations on the genomic restriction map. The gene order is gntU, gntK, and gntR, which are immediately adjacent to asd at 77.0 min, and all three genes are transcribed in the counterclockwise direction. The gntR product is 331 amino acids long, with a helix-turn-helix motif typical of a regulatory protein. The gntK gene encodes a 175-amino-acid polypeptide that has an ATP-binding motif similar to those found in other sugar kinases. While GntK does not show significant sequence similarity to any known sugar kinases, it is 45% identical to a second putative gluconate kinase from E. coli,gntV. The 445-amino-acid sequence encoded by gntU has a secondary structure typical of membrane-spanning transport proteins and is 37% identical to the gntP product from Bacillus subtilis. Kinetic analysis of GntU indicates an apparent Km for gluconate of 212 microM, indicating that this is a low-affinity transporter. Studies demonstrate that the gntR gene is monocistronic, while the gntU and gntK genes, which are separated by only 3 bp, form an operon. Expression of gntR is essentially constitutive, while expression of gntKU is induced by gluconate and is subject to fourfold glucose catabolite repression. These results confirm that gntK and gntU, together with another gluconate transport gene, gntT, constitute the GntI system for gluconate utilization, under control of the gntR gene product, which is also responsible for induction of the edd and eda genes of the Entner-Doudoroff pathway.

摘要

从大肠杆菌K-12中克隆出了参与葡萄糖酸盐代谢的三个基因,即gntR、gntK和gntU,它们分别编码一种调节蛋白、一种葡萄糖酸盐激酶和一种葡萄糖酸盐转运蛋白,这是基于它们在基因组限制酶切图谱上的已知位置进行的。基因顺序为gntU、gntK和gntR,它们在77.0分钟处紧邻asd,且所有三个基因均按逆时针方向转录。gntR产物长度为331个氨基酸,具有调节蛋白典型的螺旋-转角-螺旋基序。gntK基因编码一个175个氨基酸的多肽,其具有与其他糖激酶中发现的ATP结合基序相似的结构。虽然GntK与任何已知的糖激酶没有显著的序列相似性,但它与大肠杆菌的第二个假定葡萄糖酸盐激酶gntV有45%的同一性。gntU编码的445个氨基酸序列具有跨膜转运蛋白典型的二级结构,与枯草芽孢杆菌的gntP产物有37%的同一性。对GntU的动力学分析表明,其对葡萄糖酸盐的表观Km为212微摩尔,表明这是一种低亲和力转运蛋白。研究表明,gntR基因是单顺反子,而仅相隔3个碱基对的gntU和gntK基因形成一个操纵子。gntR的表达基本上是组成型的,而gntKU的表达由葡萄糖酸盐诱导,并受到四倍的葡萄糖分解代谢物阻遏。这些结果证实,gntK和gntU与另一个葡萄糖酸盐转运基因gntT一起,构成了用于葡萄糖酸盐利用的GntI系统,受gntR基因产物的控制,该产物也负责Entner-Doudoroff途径的edd和eda基因的诱导。

相似文献

1
Cloning and molecular genetic characterization of the Escherichia coli gntR, gntK, and gntU genes of GntI, the main system for gluconate metabolism.葡萄糖酸盐代谢主要系统GntI的大肠杆菌gntR、gntK和gntU基因的克隆及分子遗传学特征分析
J Bacteriol. 1996 Jun;178(11):3260-9. doi: 10.1128/jb.178.11.3260-3269.1996.
2
Gene organization and transcriptional regulation of the gntRKU operon involved in gluconate uptake and catabolism of Escherichia coli.参与大肠杆菌葡萄糖酸盐摄取和分解代谢的gntRKU操纵子的基因组织与转录调控
J Mol Biol. 1997 Apr 11;267(4):778-93. doi: 10.1006/jmbi.1996.0913.
3
The activator of GntII genes for gluconate metabolism, GntH, exerts negative control of GntR-regulated GntI genes in Escherichia coli.用于葡萄糖酸盐代谢的GntII基因激活剂GntH对大肠杆菌中GntR调控的GntI基因发挥负调控作用。
J Bacteriol. 2003 Mar;185(6):1783-95. doi: 10.1128/JB.185.6.1783-1795.2003.
4
The subsidiary GntII system for gluconate metabolism in Escherichia coli: alternative induction of the gntV gene.大肠杆菌中葡萄糖酸盐代谢的次级 GntII 系统:gntV 基因的替代诱导。
Biol Res. 2011;44(3):269-75. Epub 2011 Nov 7.
5
Characterization and use of catabolite-repressed promoters from gluconate genes in Corynebacterium glutamicum.谷氨酸棒杆菌中葡萄糖酸盐基因的分解代谢物阻遏启动子的表征与应用
J Bacteriol. 2006 Jan;188(2):409-23. doi: 10.1128/JB.188.2.409-423.2006.
6
Molecular genetic characterization of the Escherichia coli gntT gene of GntI, the main system for gluconate metabolism.葡萄糖酸盐代谢主要系统GntI的大肠杆菌gntT基因的分子遗传学特征分析
J Bacteriol. 1997 Mar;179(5):1584-90. doi: 10.1128/jb.179.5.1584-1590.1997.
7
Organization and transcription of the gluconate operon, gnt, of Bacillus subtilis.枯草芽孢杆菌葡萄糖酸盐操纵子(gnt)的组织与转录
J Biol Chem. 1986 Oct 15;261(29):13744-53.
8
Analysis of the gluconate (gnt) operon of Bacillus subtilis.枯草芽孢杆菌葡萄糖酸盐(gnt)操纵子的分析。
Mol Microbiol. 1991 May;5(5):1081-9. doi: 10.1111/j.1365-2958.1991.tb01880.x.
9
Dual control by regulators, GntH and GntR, of the GntII genes for gluconate metabolism in Escherichia coli.大肠杆菌中调节因子GntH和GntR对葡萄糖酸盐代谢的GntII基因的双重调控。
J Mol Microbiol Biotechnol. 2003;6(1):41-56. doi: 10.1159/000073407.
10
The gluconate operon gnt of Bacillus subtilis encodes its own transcriptional negative regulator.枯草芽孢杆菌的葡萄糖酸操纵子gnt编码其自身的转录负调控因子。
Proc Natl Acad Sci U S A. 1987 Jul;84(13):4524-8. doi: 10.1073/pnas.84.13.4524.

引用本文的文献

1
Molecular Characterization of a Transcriptional Regulator GntR for Gluconate Metabolism in Industrial 2-Ketogluconate Producer JUIM01.工业2-酮基葡萄糖酸盐生产菌JUIM01中参与葡萄糖酸盐代谢的转录调节因子GntR的分子特征分析
Microorganisms. 2025 Jun 15;13(6):1395. doi: 10.3390/microorganisms13061395.
2
Metabolic engineering for microbial production of sugar acids.用于微生物生产糖酸的代谢工程。
BMC Biotechnol. 2025 May 13;25(1):36. doi: 10.1186/s12896-025-00973-7.
3
Commensal consortia decolonize Enterobacteriaceae via ecological control.共生联合体通过生态控制使肠杆菌科去殖民化。
Nature. 2024 Sep;633(8031):878-886. doi: 10.1038/s41586-024-07960-6. Epub 2024 Sep 18.
4
Cell-Free Protein Synthesis by Diversifying Bacterial Transcription Machinery.通过多样化细菌转录机制进行无细胞蛋白质合成
BioTech (Basel). 2021 Oct 14;10(4):24. doi: 10.3390/biotech10040024.
5
Empowering a Methanol-Dependent via Adaptive Evolution Using a High-Throughput Microbial Microdroplet Culture System.利用高通量微生物微滴培养系统通过适应性进化赋予甲醇依赖性
Front Bioeng Biotechnol. 2020 Jul 9;8:570. doi: 10.3389/fbioe.2020.00570. eCollection 2020.
6
A Novel D-Galacturonate Fermentation Pathway in Links Initial Reactions of the Galacturonate-Isomerase Route With the Phosphoketolase Pathway.半乳糖醛酸异构酶途径的初始反应与磷酸酮醇酶途径之间的一种新型D-半乳糖醛酸发酵途径。
Front Microbiol. 2020 Jan 17;10:3027. doi: 10.3389/fmicb.2019.03027. eCollection 2019.
7
Transposon Mutagenesis Screen of Klebsiella pneumoniae Identifies Multiple Genes Important for Resisting Antimicrobial Activities of Neutrophils in Mice.转座子诱变筛选肺炎克雷伯菌发现多个基因在小鼠中性粒细胞抵抗抗菌活性中重要作用。
Infect Immun. 2020 Mar 23;88(4). doi: 10.1128/IAI.00034-20.
8
Computational classification of MocR transcriptional regulators into subgroups as a support for experimental and functional characterization.将MocR转录调节因子计算分类为亚组,以支持实验和功能表征。
Bioinformation. 2019 Feb 28;15(2):151-159. doi: 10.6026/97320630015151. eCollection 2019.
9
Predicting the evolution of Escherichia coli by a data-driven approach.基于数据驱动的方法预测大肠杆菌的进化。
Nat Commun. 2018 Sep 3;9(1):3562. doi: 10.1038/s41467-018-05807-z.
10
Functional insights into the interplay between DNA interaction and metal coordination in ferric uptake regulators.深入了解铁摄取调节剂中 DNA 相互作用和金属配位之间的相互作用。
Sci Rep. 2018 May 8;8(1):7140. doi: 10.1038/s41598-018-25157-6.

本文引用的文献

1
Mutations of Bacteria from Virus Sensitivity to Virus Resistance.细菌从对病毒敏感到对病毒抗性的突变。
Genetics. 1943 Nov;28(6):491-511. doi: 10.1093/genetics/28.6.491.
2
Protein measurement with the Folin phenol reagent.使用福林酚试剂进行蛋白质测定。
J Biol Chem. 1951 Nov;193(1):265-75.
3
Glucose and gluconic acid oxidation of Pseudomonas saccharophila.嗜糖假单胞菌的葡萄糖和葡萄糖酸氧化
J Biol Chem. 1952 May;196(2):853-62.
4
Catabolite regulation of Bacillus subtilis acetate and acetoin utilization genes by CcpA.CcpA对枯草芽孢杆菌乙酸盐和3-羟基丁酮利用基因的分解代谢物调控
J Bacteriol. 1994 Aug;176(15):4527-33. doi: 10.1128/jb.176.15.4527-4533.1994.
5
Mutations affecting gluconate catabolism in Escherichia coli. Genetic mapping of loci for the low affinity transport and the thermoresistant gluconokinase.影响大肠杆菌中葡萄糖酸盐分解代谢的突变。低亲和力转运和耐热葡萄糖激酶基因座的遗传定位。
J Basic Microbiol. 1994;34(6):363-70. doi: 10.1002/jobm.3620340602.
6
Characterization of the Zymomonas mobilis glucose facilitator gene product (glf) in recombinant Escherichia coli: examination of transport mechanism, kinetics and the role of glucokinase in glucose transport.运动发酵单胞菌葡萄糖转运蛋白基因产物(glf)在重组大肠杆菌中的特性:转运机制、动力学及葡萄糖激酶在葡萄糖转运中作用的研究
Mol Microbiol. 1995 Mar;15(5):795-802. doi: 10.1111/j.1365-2958.1995.tb02350.x.
7
A comprehensive set of sequence analysis programs for the VAX.一套适用于VAX的综合序列分析程序。
Nucleic Acids Res. 1984 Jan 11;12(1 Pt 1):387-95. doi: 10.1093/nar/12.1part1.387.
8
Cyclic AMP receptor protein: role in transcription activation.环磷酸腺苷受体蛋白:在转录激活中的作用。
Science. 1984 May 25;224(4651):831-8. doi: 10.1126/science.6372090.
9
Growth rate-dependent regulation of 6-phosphogluconate dehydrogenase level in Escherichia coli K-12: beta-galactosidase expression in gnd-lac operon fusion strains.大肠杆菌K-12中6-磷酸葡萄糖酸脱氢酶水平的生长速率依赖性调控:gnd-lac操纵子融合菌株中的β-半乳糖苷酶表达
J Bacteriol. 1983 Feb;153(2):771-81. doi: 10.1128/jb.153.2.771-781.1983.
10
Glucose and gluconate metabolism in a mutant of Escherichia coli lacking gluconate-6-phosphate dehydrase.缺乏6-磷酸葡萄糖酸脱水酶的大肠杆菌突变体中的葡萄糖和葡萄糖酸盐代谢
J Bacteriol. 1967 May;93(5):1579-81. doi: 10.1128/jb.93.5.1579-1581.1967.