English
新闻公告
More
化学进展 2002, Vol. 14 Issue (01): 47- 前一篇   后一篇

• 综述与评论 •

镍酶及其模型化合物的研究*

代燕;程鹏   

  1. 南开大学化学系 天津 300071
  • 收稿日期:2001-01-01 修回日期:2001-05-01 出版日期:2002-01-24 发布日期:2002-01-24

The Research Progress of Ni-containing Enzymes and Model Compounds

Dai Yan;Cheng Peng   

  1. Department of Chemistry, Nankai University, Tianjin 300071, China
  • Received:2001-01-01 Revised:2001-05-01 Online:2002-01-24 Published:2002-01-24
本文介绍5种镍酶即尿酶、镍氢化酶、一氧化碳脱氢酶/乙酰辅酶A合成酶、甲基辅酶M还原酶和超氧化歧化酶的结构和功能及其模型化合物的最新研究进展。
The known Ni-containing enzymes include urease, hydrogenase, carbon monoxide dehydrogenases/acetyl coenzyme A synthases, methyl coenzyme M reductases and superoxide dimutuses. The knowledge of the structure, function and model compounds of the Ni-containing enzymes is briefly overviewed in this paper.

中图分类号: 

()

[ 1 ] Lancaster B J R. The Bioinorganic Chemistry of Nickel. Florida: VCH Publishers, 1988
[ 2 ] Hausinger R P. Biochemistry of Nickle, New York: Plenum,1993
[ 3 ] Mobley H L T, Island M D, Hausinger R P. Microbiolyical Reviews, 1995, 59: 451
[ 4 ] Gabri E, Carr M B, Hausinger R P, et al. Science, 1997, 268:998
[ 5 ] Person M A , Michel L O , Hausinger R P, et al. Biochemistry,1997, 36: 8164
[ 6 ] Maroneg M J , Daridson G, Allan C B, et al. Struct. Bonding,1998, 92: 1
[ 7 ] Wages H E, Taft K L , Lippard S J. Inorg. Chem. , 1993, 32:4985
[ 8 ] Stemmler A J , Kampf J W , Kirk M L , et al. J. Am. Chem.Soc. , 1995, 117: 6368
[ 9 ] Frey M. Struct. Bonding, 1998, 90: 97
[ 10 ] Volbeda A , Charon M H, Piras C, et al. J. Am. Chem.Soc. , 1996, 118: 12989
[ 11 ] Happe R P, Roseboom W , Pierik A , et al. Nature, 1997,385: 126
[ 12 ] Delecey A L , Hatchikian E C, Volbeda A , et al. J. Am.Chem. Soc. , 1997, 119: 7181
[ 13 ] Darensbourg D J , Reibenspies J H, Lai C H, et al. J. Am.Chem. Soc. , 1997, 119: 7903
[ 14 ] Lai C H, Lee W Z, Miller M L , et al. J. Am. Chem. Soc. ,1998, 120: 10103
[ 15 ] Osterloh, Saakk F, Haase D, et al. Chem. Commum. ,1996, 777
[ 16 ] Sellmann D, Geipel F, Moll M , et al. Angew. Chem. Int.Ed. , 2000, 39: 561
[ 17 ] Sun Y J , Cheng P, Yan S P, et al. Inorg. Chem. Commun. ,2000, 3: 289
[ 18 ] Ferry J G. Annu. Rev. Micobiol. , 1995, 49: 305
[ 19 ] Shin W , Lindahl P A. J. Am. Chem. Soc. , 1992, 114: 9718
[ 20 ] Kumar M , Lu W P. Liu L , et al. J. Am. Chem. Soc. , 1993,115, 11: 646
[ 21 ] Anderson M E, DeRose V J , Hoffman B M , et al. J. Am. .Chem. Soc. , 1993, 115: 12204
[ 22 ] Anderson M E, Lindah l P A , Biochemistry, 1994, 33: 8702
[ 23 ] Stephens P J , McKenna M C, Ensign S A , et al. J. Biol.Chem, 1989, 264: 16347
[ 24 ] Seravalli J , Kumar M , Lu W P, et al. Biochemistry, 1995,34: 7879
[ 25 ] Grahame D A , DeMoll E. J. Biol. Chem. , 1996, 271: 352
[ 26 ] Xia J , Dong J , Wang S, et al. J. Am. Chem. Soc. , 1995,117: 7065
[ 27 ] Xia J , Lindahl P A. J. Am. Chem. Soc. , 1996, 118: 483
[ 28 ] Setzke E, Hedderich R, Heiden S, et al. Eur. J. Bio.Chem. , 1994, 220: 139
[ 29 ] DiMarco A A , Bobik T A , Wolfe R S. Ann. Rev. Biochem. ,1990, 59: 355
[ 30 ] Won H, Olson K D, Summers M F, et al. Comments. Inorg.Chem. , 1993, 15: 1
[ 31 ] Ermler U , Grabarse W , Shima S, et al. Science, 1996, 278:1457
[ 32 ] Pfaltz A , Livingston D A , J aun B, et al. Helv. Chim. Acta,1985, 68: 1338
[ 33 ] Keltjens J T, Hermans J M H, Rijsdijk G J F A , et al. Antonie van Leeuwenhoek, 1998, 54: 207
[ 34 ] Farber G, Keller W , Kratky C, et al. Helv. Chim. Acta ,1991, 74: 617
[ 35 ] Won H, Summers M F, Olson K D, et al. J. Am. Chem.Soc. , 1990, 112: 2178
[ 36 ] Won H, Olson K D, Pork J , et al. Bull. Korean. Chem. Soc.1995, 16: 649
[ 37 ] Olson K D, Won H, Wolfe R S, et al. Bull. Korean. Chem.Soc. , 1995, 112: 5884
[ 38 ] Eidsness M K, Sullivan R J , Schwartz J R, et al. J. Am.Chem. Soc. , 1986, 108: 3120
[ 39 ] Shiemke A K, Shelnutt J A , Scott R A. J. Biol. Chem. ,1989, 264, 11: 236
[ 40 ] Shiemke A K, Hamilton C L , Scott R A. J. Biol. Chem. ,1988, 263: 5611
[ 41 ] Furenlid L R, Renner M W , Fajer J. J. Am. Chem. Soc.1990, 112: 8987
[ 42 ] Shiemke A K, Kaplan W A , Hamilton C L , et al. J. Biol.Chem. , 1989, 264: 7276
[ 43 ] Fridovich I. Arch. Biochem. Biophys. , 1986, 247: 1
[ 44 ] Youn H D, Youn H, Lee J W , et al. Arch. Biochem. Biophys. , 1996, 334: 341
[ 45 ] Youn H D, Kon E J , Roe J H, et al. Biochem. J. , 1996,318: 887
[ 46 ] Bal W , D juran M I, Margerum D W , et al. Chem. Commun. , 1994: 1889

[1] 赵自通, 张真真, 梁志宏. 催化水解反应的肽基模拟酶的活性来源、催化机理及应用[J]. 化学进展, 2022, 34(11): 2386-2404.
[2] 葛明, 胡征, 贺全宝. 基于尖晶石型铁氧体的高级氧化技术在有机废水处理中的应用[J]. 化学进展, 2021, 33(9): 1648-1664.
[3] 苏原, 吉可明, 荀家瑶, 赵亮, 张侃, 刘平. 甲醛氧化催化剂及反应机理[J]. 化学进展, 2021, 33(9): 1560-1570.
[4] 郭芬岈, 李宏伟, 周孟哲, 徐正其, 郑岳青, 黎挺挺. 基于非贵金属催化剂常温常压电化学合成氨[J]. 化学进展, 2020, 32(1): 33-45.
[5] 吴正颖, 刘谢, 刘劲松, 刘守清, 查振龙, 陈志刚. 二硫化钼基复合材料的合成及光催化降解与产氢特性[J]. 化学进展, 2019, 31(8): 1086-1102.
[6] 赵文军, 秦疆洲, 尹志凡, 胡霞, 刘宝军. 新型2D MXenes 纳米材料在光催化领域的应用[J]. 化学进展, 2019, 31(12): 1729-1736.
[7] 吕记巍, 敖先权*, 陈前林, 谢燕, 曹阳, 张纪芳. 煤气化可弃型催化剂[J]. 化学进展, 2018, 30(9): 1455-1462.
[8] 谢利娟, 石晓燕, 刘福东, 阮文权. 菱沸石在柴油车尾气NOx催化净化中的应用[J]. 化学进展, 2016, 28(12): 1860-1869.
[9] 牛凡凡, 聂昌军, 陈勇, 孙小玲. 非官能化烯烃的不对称催化环氧化反应[J]. 化学进展, 2014, 26(12): 1942-1961.
[10] 殷巧巧, 乔儒, 童国秀. 离子掺杂氧化锌光催化纳米功能材料的制备及其应用[J]. 化学进展, 2014, 26(10): 1619-1632.
[11] 解英娟, 吴志娇, 张晓, 马佩军, 朴玲钰. 混晶TiO2光催化剂的制备及机理研究[J]. 化学进展, 2014, 26(07): 1120-1131.
[12] 张骞, 周莹, 张钊, 何云, 陈永东, 林元华. 表面等离子体光催化材料[J]. 化学进展, 2013, 25(12): 2020-2027.
[13] 边颖慧, 董徐静, 朱丽君, 周玉路, 项玉芝, 夏道宏. 石油组分及其模型化合物的超分子化学作用[J]. 化学进展, 2013, 25(08): 1260-1271.
[14] 龙金林, 顾泉, 张子重, 王绪绪. 固体催化剂活性中心的分子设计及其XAFS表征[J]. 化学进展, 2011, 23(12): 2417-2441.
[15] 邵燕 姚楠 卢春山 吕德义 刘化章 李小年. 用于选择性合成清洁液体燃料的钴基F-T合成催化剂*[J]. 化学进展, 2010, 22(10): 1911-1920.
阅读次数
全文


摘要

镍酶及其模型化合物的研究*