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Metal ions in enzymes using ammonia or amides.

作者信息

Dixon N E, Gazzola C, Blakeley R L, Zerner B

出版信息

Science. 1976 Mar 19;191(4232):1144-50. doi: 10.1126/science.769157.

DOI:10.1126/science.769157
PMID:769157
Abstract

In an attempt to understand the role of nickel in jack bean urease (1), we turned to a variety of other enzymes important in the utilization, production, or transfer of ammonia. We found several, including the L-histidine and L-phenylalanine ammonialyases and some enzymes that utilize glutamine or ammonia in amidotransferase reactions, all of which show evidence for the involvement of as yet unreported transition metal ions in their mechanism of action. We support the view that catalysis by metalloenzymes may be a reflection of the chemistry of the metal ion itself as a Lewis acid, and that perhaps too much emphasis has been placed on supposed special characteristics (such as strains, "entasis") of the enzyme-metal ion association. In this context, we have discussed the mechanism of catalysis of hydrolysis of specific substrates by carboxypeptidase A, and have returned to urease to examine the role of nickel in its mechanism of action.

摘要

相似文献

1
Metal ions in enzymes using ammonia or amides.
Science. 1976 Mar 19;191(4232):1144-50. doi: 10.1126/science.769157.
2
The role of metals in enzyme activity.金属在酶活性中的作用。
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3
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Proteins. 2009 Jan;74(1):222-39. doi: 10.1002/prot.22205.
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Structural and functional role of nickel ions in urease by molecular dynamics simulation.镍离子在脲酶中的结构和功能作用的分子动力学模拟。
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6
Jack bean urease (EC 3.5.1.5). III. The involvement of active-site nickel ion in inhibition by beta-mercaptoethanol, phosphoramidate, and fluoride.杰克豆脲酶(EC 3.5.1.5)。III. 活性位点镍离子在β-巯基乙醇、氨基磷酸酯和氟化物抑制作用中的参与情况。
Can J Biochem. 1980 Jun;58(6):481-8. doi: 10.1139/o80-064.
7
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8
Structural insights into how GTP-dependent conformational changes in a metallochaperone UreG facilitate urease maturation.金属伴侣蛋白 UreG 中 GTP 依赖性构象变化促进脲酶成熟的结构见解。
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引用本文的文献

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Long-term saline water irrigation affected soil carbon and nitrogen cycling functional profiles in the cotton field.长期盐水灌溉影响了棉田土壤碳氮循环功能特征。
Front Microbiol. 2024 Mar 14;15:1310387. doi: 10.3389/fmicb.2024.1310387. eCollection 2024.
2
Nickel and the metabolism of urea by Lemna paucicostata Hegelm. 6746.镍与浮萍代谢尿素的关系。
Planta. 1978 Jan;140(3):265-8. doi: 10.1007/BF00390258.
3
Dietary nickel chloride induces oxidative intestinal damage in broilers.日粮氯化镍诱导肉鸡氧化肠道损伤。
Int J Environ Res Public Health. 2013 May 23;10(6):2109-19. doi: 10.3390/ijerph10062109.
4
Effects of nickel, cobalt, and molybdenum on performance of methanogenic fixed-film reactors.镍、钴和钼对甲烷生成固定膜反应器性能的影响。
Appl Environ Microbiol. 1981 Sep;42(3):502-5. doi: 10.1128/aem.42.3.502-505.1981.
5
Nickel, a component of factor F430 from Methanobacterium thermoautotrophicum.镍,嗜热自养甲烷杆菌中F430因子的一种成分。
Arch Microbiol. 1980 Jan;124(1):103-6. doi: 10.1007/BF00407036.
6
Urease inhibition by hydroxamic acids.
Experientia. 1981 Mar 15;37(3):229-30. doi: 10.1007/BF01991625.
7
Nickel in the catalytically active hydrogenase of Alcaligenes eutrophus.嗜中性产碱杆菌催化活性氢化酶中的镍。
J Bacteriol. 1982 Oct;152(1):42-8. doi: 10.1128/jb.152.1.42-48.1982.
8
Elemental abundance as a factor in the origins of mineral nutrient requirements.元素丰度作为矿物质营养需求起源的一个因素。
J Mol Evol. 1976 Aug 3;8(2):175-95. doi: 10.1007/BF01739102.
9
Nickel, cobalt, and molybdenum requirement for growth of Methanobacterium thermoautotrophicum.
Arch Microbiol. 1979 Oct;123(1):105-7. doi: 10.1007/BF00403508.
10
Purification and properties of urease from bovine rumen.
Biochem J. 1977 Jun 1;163(3):495-501. doi: 10.1042/bj1630495.