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化学进展  2013 

铜/镍金属伴侣蛋白的研究进展

DOI: 10.7536/PC121213, PP. 495-510

Keywords: ,,伴侣蛋白,稳态

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Abstract:

含铜/镍金属酶的成熟需要一系列的铜/镍金属伴侣蛋白,这些铜/镍金属伴侣蛋白分别参与铜或者镍的转运,对维持细胞体内铜/镍金属平衡至关重要,同时金属酶完成金属催化活性中心的组装也依赖于这类伴侣蛋白。近年来关于铜/镍金属蛋白的研究取得可喜的进展,这些研究为进一步认识体内铜/镍平衡体系提供了重要依据。本文首先简要地介绍铜的摄取和细胞内平衡体系,接着着重介绍三个重要的铜转运蛋白Atox1、Cox17和CCS关于结构和功能的进展,以及这些铜转运蛋白和药物相互作用的机理。然后详细介绍在氢化酶和脲酶成熟路径中参与了镍的摄取、调节、转运和存储,维持细胞内镍金属平衡的镍伴侣蛋白,并介绍了脲酶、氢化酶这两条成熟路径之间的联系。

References

[1]  Linder M C, Wooten L, Cerveza P, Cotton S, Shulze R, Lomeli N. Am. J. Clin. Nutr., 1998, 67: 965S-971S
[2]  Tanzi R E, Petrukhin K, Chernov I, Pellequer J L, Wasco W, Ross B, Romano D M, Parano E, Pavone L, Brzustowicz L M, Devoto M, Peppercorn J, Bush A I, Sternlieb I, Pirastu M, Gusella J F, Evgrafov O, Penchaszadeh G K, Honig B, Edelman I S, Soares M B, Scheinberg I H, Gilliam T C. Nat. Genet., 1993, 5: 344-350
[3]  Petrukhin K, Fischer S G, Pirastu M, Tanzi R E, Chernov I, Devoto M, Brzustowicz L M, Cayanis E, Vitale E, Russo J J, Matseoane D, Boukhgalter B, Wasco W, Figus A L, Loudianos J, Cao A, Sternlieb I, Evgrafov O, Parano E, Pavone L, Warburton D, Ott J, Penchaszadeh G K, Scheinberg I H, Gilliam T C. Nat. Genet., 1993, 5: 338-343
[4]  Nielsen F H. Biol. Trace Elem. Res., 1990, 26/27: 599-611
[5]  Brown P H, Welch R M, Cary E E. Plant Physiol., 1987, 85: 801-803
[6]  Eskew D L, Welch R M, Cary E E. Science, 1983, 222: 621-623
[7]  Van Vliet A H M, Kuipers E J, Waidner B, Davies B J, de Vries N, Penn C W, Vandenbroucke-Grauls C, Kist M, Bereswill S, Kusters J G. Infect. Immun., 2001, 69: 4891-4897
[8]  Waldron K J, Robinson N J. Nat. Rev. Microbiol., 2009, 7: 25-35
[9]  Finney L A, O'Halloran T V. Science, 2003, 300: 931-936
[10]  Kim B E, Nevitt T, Thiele D J. Nat. Chem. Biol., 2008, 4: 176-185
[11]  Maryon E B, Molloy S A, Zimnicka A M, Kaplan J H. BioMetals, 2007, 20: 355-364
[12]  De Feo C J, Aller S G, Siluvai G S, Blackburn N J, Unger V M. Proc. Natl. Acad. Sci. U.S.A., 2009, 106: 4237-4242
[13]  Tsigelny I F, Sharikov Y, Greenberg J P, Miller M A, Kouznetsova V L, Larson C A, Howell S B. Cell Biochem. Biophys., 2012, 63: 223-234
[14]  Robinson N J, Winge D R. Annu. Rev. Biochem., 2010, 79: 537-562
[15]  Itoh S, Ozumi K, Kim H W, Nakagawa O, McKinney R D, Folz R J, Zelko I N, Ushio-Fukai M, Fukai T. Free Radic. Biol. Med., 2009, 46: 95-104
[16]  Lin S J, Pufahl R A, Dancis A, OHalloran T V, Culotta V C. J. Biol. Chem., 1997, 272: 9215-9220
[17]  Pufahl R A, Singer C P, Peariso K L, Lin S J, Schmidt P J, Fahrni C J, Culotta V C, PennerHahn J E, OHalloran T V. Science, 1997, 278: 853-856
[18]  Boal A K, Rosenzweig A C. Chem. Rev., 2009, 109: 4760-4779
[19]  Rodriguez-Granillo A, Wittung-Stafshede P. Biochemistry, 2009, 48: 960-972
[20]  Hussain F, Olson J S, Wittung-Stafshede P. Proc. Natl. Acad. Sci. U.S.A., 2008, 105: 11158-11163
[21]  Hussain F, Rodriguez-Granillo A, Wittung-Stafshede P. J. Am. Chem. Soc., 2009, 131: 16371-16373
[22]  Yatsunyk L A, Rosenzweig A C. J. Biol. Chem., 2007, 282: 8622-8631
[23]  Banci L, Bertini I, Ciofi-Baffoni S, Kozyreva T, Zovo K, Palumaa P. Nature, 2010, 465: 645-648
[24]  Achila D, Banci L, Bertini I, Bunce J, Ciofi-Baffoni S, Huffman D L. Proc. Natl. Acad. Sci. U.S.A., 2006, 103: 5729-5734
[25]  Rodriguez-Granillo A, Crespo A, Wittung-Stafshede P. Biochemistry, 2009, 48: 5849-5863
[26]  Rodriguez-Granillo A, Crespo A, Wittung-Stafshede P. J. Phys. Chem. B, 2010, 114: 1836-1848
[27]  Peter C, Laliberte J, Beaudoin J, Labbe S. Eukaryot. Cell, 2008, 7: 1781-1794
[28]  Abajian C, Yatsunyk L A, Ramirez B E, Rosenzweig A C. J. Biol. Chem., 2004, 279: 53584-53592
[29]  Banci L, Bertini I, Ciofi-Baffoni S, Tokatlidis K. FEBS Lett., 2009, 583: 1699-1702
[30]  Cobine P A, Pierrel F, Winge D R. Biochim. Biophys. Acta, 2006, 1763: 759-772
[31]  Voronova A, Meyer-Klaucke W, Meyer T, Rompel A, Krebs B, Kazantseva J, Sillard R, Palumaa P. Biochem. J., 2007, 408: 139-148
[32]  Oswald C, Krause-Buchholz U, Rodel G. J. Mol. Biol., 2009, 389: 470-479
[33]  Sideris D P, Petrakis N, Katrakili N, Mikropoulou D, Gallo A, Ciofi-Baffoni S, Banci L, Bertini I, Tokatlidis K. J. Cell Biol., 2009, 187: 1007-1022
[34]  Banci L, Bertini I, Cefaro C, Ciofi-Baffoni S, Gallo A. J. Biol. Chem., 2011, 286: 34382-34390
[35]  Banci L, Bertini I, Ciofi-Baffoni S, Hadjiloi T, Martinelli M, Palumaa P. Proc. Natl. Acad. Sci. U.S.A., 2008, 105: 6803-6808
[36]  Culotta V C, Klomp L W J, Strain J, Casareno R L B, Krems B, Gitlin J D. J. Biol. Chem., 1997, 272: 23469-23472
[37]  Lamb A L, Wernimont A K, Pufahl R A, Culotta V C, O'Halloran T V, Rosenzweig A C. Nat. Struct. Biol., 1999, 6: 724-729
[38]  Barry A N, Blackburn N J. Biochemistry, 2008, 47: 4916-4928
[39]  Kawamata H, Manfredi G. Antioxid. Redox Signaling, 2010, 13: 1375-1384
[40]  Kawamata H, Manfredi G. Hum. Mol. Genet., 2008, 17: 3303-3317
[41]  Jensen L T, Culotta V C. J. Biol. Chem., 2005, 280: 41373-41379
[42]  Son M, Fu Q, Puttaparthi K, Matthews C M, Elliott J L. Neurobiol. Dis., 2009, 34: 155-162
[43]  Arciello M, Capo C R, D'Annibale S, Cozzolino M, Ferri A, Carri M T, Rossi L. BioMetals, 2011, 24: 269-278
[44]  Reddehase S, Grumbt B, Neupert W, Hell K. J. Mol. Biol., 2009, 385: 331-338
[45]  Gross D P, Burgard C A, Reddehase S, Leitch J M, Culotta V C, Hell K. Mol. Biol. Cell, 2011, 22: 3758-3767
[46]  Field L S, Furukawa Y, O'Halloran T V, Culotta V C. J. Biol. Chem., 2003, 278: 28052-28059
[47]  Kloeppel C, Suzuki Y, Kojer K, Petrungaro C, Longen S, Fiedler S, Keller S, Riemer J. Mol. Biol. Cell, 2011, 22: 3749-3757
[48]  Banci, L, Bertini I, Ciofi-Baffoni S, Janicka A, Martinelli M, Kozlowski H, Palumaa P. J. Biol. Chem., 2008, 283: 7912-7920
[49]  Banci L, Bertini I, McGreevy K S, Rosato A. Nat. Prod. Rep., 2010, 27: 695-710
[50]  Rosen D R. Nature, 1993, 364: 362-362
[51]  Atwood C S, Moir R D, Huang X D, Scarpa R C, Bacarra N M E, Romano D M, Hartshorn M K, Tanzi R E, Bush A I. J. Biol. Chem., 1998, 273: 12817-12826
[52]  Selkoe D J. Trends Cell Biol., 1998, 8: 447-453
[53]  Covacci A, Telford J L, Del Giudice G, Parsonnet J, Rappuoli R. Science, 1999, 284: 1328-1333
[54]  De Feo C J, Aller S G, Unger V M. BioMetals, 2007, 20: 705-716
[55]  Yang L, Huang Z W, Li F. J. Pept. Sci., 2012, 18: 449-455
[56]  Haas K L, Putterman A B, White D R, Thiele D J, Franz K J. J. Am. Chem. Soc., 2011, 133: 4427-4437
[57]  Badarau A, Dennison C. J. Am. Chem. Soc., 2011, 133: 2983-2988
[58]  Itoh S, Kim H W, Nakagawa O, Ozumi K, Lessner S M, Aoki H, Akram K, McKinney R D, Ushio-Fukai M, Fukai T. J. Biol. Chem., 2008, 283: 9157-9167
[59]  Muller P A J, Klomp L W J. Int. J. Biochem. Cell Biol., 2009, 41: 1233-1236
[60]  Lutsenko S, Barnes N L, Bartee M Y, Dmitriev O Y. Physiol. Rev., 2007, 87: 1011-1046
[61]  Banci L, Bertini I, Cantini F, Della-Malva N, Migliardi M, Rosato A. J. Biol. Chem., 2007, 282: 23140-23146
[62]  Banci L, Bertini I, Cantini F, Massagni C, Migliardi M, Rosato A. J. Biol. Chem., 2009, 284: 9354-9360
[63]  Keller A M, Benitez J J, Klarin D, Zhong L H, Goldfogel M, Yang F, Chen T Y, Chen P. J. Am. Chem. Soc., 2012, 134: 8934-8943
[64]  Du T, Caragounis A, Parker S J, Meyerowitz J, La Fontaine S, Kanninen K M, Perreau V M, Crouch P J, White A R. Free Radic. Biol. Med., 2011, 51: 2060-2072
[65]  Longen S, Bien M, Bihlmaier K, Kloeppel C, Kauff F, Hammermeister M, Westermann B, Herrmann J M, Riemer J. J. Mol. Biol., 2009, 393: 356-368
[66]  Kako K, Tsumori K, Ohmasa Y, Takahashi Y, Munekata E. Eur. J. Biochem., 2000, 267: 6699-6707
[67]  Zhu D Y, Stumpf C R, Krahn J M, Wickens M, Hall T M T. Proc. Natl. Acad. Sci. U.S.A., 2009, 106: 20192-20197
[68]  Quenault T, Lithgow T, Traven A. Trends Cell Biol., 2011, 21: 104-112
[69]  Horng Y C, Cobine P A, Maxfield A B, Carr H S, Winge D R. J. Biol. Chem., 2004, 279: 35334-35340
[70]  Leary S C, Kaufman B A, Pellecchia G, Guercin G H, Mattman A, Jaksch M, Shoubridge E A. Hum. Mol. Genet., 2004, 13: 1839-1848
[71]  Horn D, Barrientos A. IUBMB Life, 2008, 60: 421-429
[72]  Arnesano F, Balatri E, Banci L, Bertini I, Winge D R. Structure, 2005, 13: 713-722
[73]  Palumaa P, Kangur L, Voronova A, Sillard R. Biochem. J., 2004, 382: 307-314
[74]  Remacle C, Coosemans N, Jans F, Hanikenne M, Motte P, Cardol P. Plant Mol. Biol., 2010, 74: 223-233
[75]  Sagasti S, Yruela I, Bernal M, Lujan M A, Frago S, Medina M, Picorel R. Metallomics, 2011, 3: 169-175
[76]  Wright G S A, Hasnain S S, Grossmann J G. Biochem. J., 2011, 439: 39-44
[77]  Kirby K, Jensen L T, Binnington J, Hilliker A J, Ulloa J, Culotta V C, Phillips J P. J. Biol. Chem., 2008, 283: 35393-35401
[78]  Chu C C, Lee W C, Guo W Y, Pan S M, Chen L J, Li H M, Jinn T L. Plant Physiol., 2005, 139: 425-436
[79]  Carroll M C, Outten C E, Proescher J B, Rosenfeld L, Watson W H, Whitson L J, Hart P J, Jensen L T, Culotta V C. J. Biol. Chem., 2006, 281: 28648-28656
[80]  Islinger M, Li K W, Seitz J, Voelkl A, Lueers G H. Traffic, 2009, 10: 1711-1721
[81]  Bertinato J, Sherrard L, Plouffe L J. Int. J. Mol. Sci., 2010, 11: 2624-2635
[82]  Araya M, Andrews M, Pizarro F, Arredondo M. BioMetals, 2012, 25: 383-391
[83]  Lassi K C, Prohaska J R. J. Nutr., 2012, 142: 292-297
[84]  Bertinato J, Swist E, Plouffe L J, Brooks S P J, L'Abbe M R. Biochem. J., 2008, 409: 731-740
[85]  Allen S, Badarau A, Dennison C. Biochemistry, 2012, 51: 1439-1448
[86]  Lamb A L, Torres A S, O'Halloran T V, Rosenzweig A C. Nat. Struct. Biol., 2001, 8: 751-755
[87]  Banci L, Bertini I, Cantini F, Kozyreva T, Massagni C, Palumaa P, Rubino J T, Zovo K. Proc. Natl. Acad. Sci. U.S.A., 2012, 109: 13555-13560
[88]  Mufti A R, Burstein E, Csomos R A, Graf P C F, Wilkinson J C, Dick R D, Challa M, Son J K, Bratton S B, Su G L, Brewer G J, Jakob U, Duckett C S. Mol. Cell, 2006, 21: 775-785

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