Диссертация (1145769), страница 23
Текст из файла (страница 23)
Palacios O, Atrian S and Capdevila M. Zn- and Cu-thioneins: a functionalclassification for metallothioneins? // J Biol Inorg Chem. 2011. 16(7): 991-1009.174. Pase L, Voskoboinik I, Greenough M and Camakaris J. Copper stimulatestrafficking of a distinct pool of the Menkes copper ATPase (ATP7A) to the plasmamembrane and diverts it into a rapid recycling pool // Biochem J. 2004. 378(Pt 3):1031-1037.175. Patel BN, Dunn RJ and David S. Alternative RNA splicing generates aglycosylphosphatidylinositol-anchored form of ceruloplasmin in mammalian brain// J Biol Chem. 2000. 275(6): 4305-4310.176.
Payne SL, Hendrix MJ and Kirschmann DA. Paradoxical roles for lysyl oxidasesin cancer--a prospect // J Cell Biochem. 2007. 101(6): 1338-1354.177. Pecina P, Houstkova H, Hansikova H, Zeman J and Houstek J. Genetic defects ofcytochrome c oxidase assembly // Physiol Res.
2004. 53 Suppl 1: S213-223.178. Petering DH, Zhu J, Krezoski S, Meeusen J, Kiekenbush C, Krull S, Specher T andDughish M. Apo-metallothionein emerging as a major player in the cellularactivities of metallothionein // Exp Biol Med (Maywood). 2006. 231(9): 15281534.179. Peters J. Local renin-angiotensin systems in the adrenal gland // Peptides. 2012.34(2): 427-432.180. Platonova N, Guolikhandanova N, Tsymbalenko N, Zhiguleva E, Zhivulko T,Vasin A, Evsukova I and Puchkova L. Milk ceruloplasmin is a valuable source ofnutrient copper ions for mammalian newborns // J Trace Elem Med Biol.
2007.21(3): 184-193.181. Polishchuk R and Lutsenko S. Golgi in copper homeostasis: a view from themembrane trafficking field // Histochem Cell Biol. 2013. 140(3): 285-295.182. Pope CR, De Feo CJ and Unger VM. Cellular distribution of copper to superoxidedismutase involves scaffolding by membranes // Proc Natl Acad Sci U S A. 2013.110(51): 20491-20496.141183.
Popovic DM. Current advances in research of cytochrome c oxidase // AminoAcids. 2013. 45(5): 1073-1087.184. Porter H. Neonatal hepatic mitochondrocuprein. 3. Solubilization of the copper andprotein from mitochondria of newborn liver by reduction with mercaptoethanol //Biochim Biophys Acta. 1968. 154(1): 236-238.185. Porter H, Sweeney M and Porter EM. Neonatal Hepatic Mitochondrocuprein. Ii.Isolation of the Copper-Containing Subfraction from Mitochondria of NewbornHuman Liver // Arch Biochem Biophys.
1964. 104: 97-101.186. Prohaska JR. Impact of copper limitation on expression and function ofmulticopper oxidases (ferroxidases) // Adv Nutr. 2011. 2(2): 89-95.187. Prohaska JR, Bailey WR and Lear PM. Copper deficiency alters ratpeptidylglycine alpha-amidating monooxygenase activity // J Nutr. 1995. 125(6):1447-1454.188. Prohaska JR and Broderius M. Plasma peptidylglycine alpha-amidatingmonooxygenase (PAM) and ceruloplasmin are affected by age and copper status inrats and mice // Comp Biochem Physiol B Biochem Mol Biol. 2006.
143(3): 360366.189. Prohaska JR, Broderius M and Brokate B. Metallochaperone for Cu,Zn-superoxidedismutase (CCS) protein but not mRNA is higher in organs from copper-deficientmice and rats // Arch Biochem Biophys. 2003. 417(2): 227-234.190. Prohaska JR, Tamura T, Percy AK and Turnlund JR. In vitro copper stimulation ofplasma peptidylglycine alpha-amidating monooxygenase in Menkes diseasevariant with occipital horns // Pediatr Res. 1997.
42(6): 862-865.191. Prohaska JR, Wittmers LE, Jr. and Haller EW. Influence of genetic obesity, foodintake and adrenalectomy in mice on selected trace element-dependent protectiveenzymes // J Nutr. 1988. 118(6): 739-746.192. Prudovsky I. Nonclassically secreted regulators of angiogenesis // Angiol OpenAccess. 2013. 1(1): 1000101.142193.
Puig S, Lee J, Lau M and Thiele DJ. Biochemical and genetic analyses of yeastand human high affinity copper transporters suggest a conserved mechanism forcopper uptake // J Biol Chem. 2002. 277(29): 26021-26030.194. Puig S and Thiele DJ. Molecular mechanisms of copper uptake and distribution //Curr Opin Chem Biol. 2002. 6(2): 171-180.195. Pulido P, Kagi JH and Vallee BL. Isolation and some properties of humanmetallothionein // Biochemistry. 1966. 5(5): 1768-1777.196. Qin Z, Itoh S, Jeney V, Ushio-Fukai M and Fukai T. Essential role for the MenkesATPase in activation of extracellular superoxide dismutase: implication forvascular oxidative stress // FASEB J. 2006.
20(2): 334-336.197. Quintanar L, Gebhard M, Wang TP, Kosman DJ and Solomon EI. Ferrous bindingto the multicopper oxidases Saccharomyces cerevisiae Fet3p and humanceruloplasmin: contributions to ferroxidase activity // J Am Chem Soc. 2004.126(21): 6579-6589.198. Rakhit R and Chakrabartty A. Structure, folding, and misfolding of Cu,Znsuperoxide dismutase in amyotrophic lateral sclerosis // Biochim Biophys Acta.2006.
1762(11-12): 1025-1037.199. Raven PW, McCredie E, McAuley M and Vinson GP. Origins of the differences infunction of rat adrenal zona glomerulosa cells incubated as intact tissue and ascollagenase-prepared cell suspensions // Cell Biochem Funct. 1983. 1(1): 17-24.200. Rees EM, Lee J and Thiele DJ. Mobilization of intracellular copper stores by thectr2 vacuolar copper transporter // J Biol Chem. 2004. 279(52): 54221-54229.201. Roelofsen H, Wolters H, Van Luyn MJ, Miura N, Kuipers F and Vonk RJ.
Copperinduced apical trafficking of ATP7B in polarized hepatoma cells provides amechanism for biliary copper excretion // Gastroenterology. 2000. 119(3): 782793.202. Roeser HP, Lee GR, Nacht S and Cartwright GE. The role of ceruloplasmin in ironmetabolism // J Clin Invest. 1970. 49(12): 2408-2417.203. Rosen DR, Siddique T, Patterson D, Figlewicz DA, Sapp P, Hentati A, DonaldsonD, Goto J, O'Regan JP, Deng HX and et al. Mutations in Cu/Zn superoxide143dismutase gene are associated with familial amyotrophic lateral sclerosis // Nature.1993.
362(6415): 59-62.204. Rosol TJ, Yarrington JT, Latendresse J and Capen CC. Adrenal Gland: Structure,Function, and Mechanisms of Toxicity // Toxicologic Pathology. 2001. 29(1): 4148.205. Rubino JT and Franz KJ. Coordination chemistry of copper proteins: how naturehandles a toxic cargo for essential function // J Inorg Biochem. 2012. 107(1): 129143.206. Sambrook J, Fritsch EF, Maniatis T. Molecular cloning: a laboratory manual //New York: Cold Spring Harbor Laboratory Press, Second Edition. 1989. Vol. 1–3.207.
Shevchenko A, Tomas H, Havlis J, Olsen JV and Mann M. In-gel digestion formass spectrometric characterization of proteins and proteomes // Nat Protoc. 2006.1(6): 2856-2860.208. Srai SK, Burroughs AK, Wood B and Epstein O. The ontogeny of liver coppermetabolism in the guinea pig: clues to the etiology of Wilson's disease //Hepatology. 1986. 6(3): 427-432.209. St-Pierre J, Buckingham JA, Roebuck SJ, Brand MD. Topology of superoxideproduction from different sites in the mitochondrial electron transport chain // JBiol Chem.
2002. 277(47): 44784-44790.210. Stathopulos PB, Rumfeldt JA, Scholz GA, Irani RA, Frey HE, Hallewell RA,Lepock JR and Meiering EM. Cu/Zn superoxide dismutase mutants associatedwith amyotrophic lateral sclerosis show enhanced formation of aggregates in vitro// Proc Natl Acad Sci U S A. 2003. 100(12): 7021-7026.211. Steveson TC, Ciccotosto GD, Ma XM, Mueller GP, Mains RE and Eipper BA.Menkes protein contributes to the function of peptidylglycine alpha-amidatingmonooxygenase // Endocrinology. 2003. 144(1): 188-200.212.
Stroka DM, Burkhardt T, Desbaillets I, Wenger RH, Neil DA, Bauer C, GassmannM and Candinas D. HIF-1 is expressed in normoxic tissue and displays an organspecific regulation under systemic hypoxia // FASEB J. 2001. 15(13): 2445-2453.144213. Stuehler B, Reichert J, Stremmel W and Schaefer M. Analysis of the humanhomologue of the canine copper toxicosis gene MURR1 in Wilson disease patients// J Mol Med (Berl). 2004.
82(9): 629-634.214. Sutherland DE and Stillman MJ. The "magic numbers" of metallothionein //Metallomics. 2011. 3(5): 444-463.215. Suzuki KT, Someya A, Komada Y and Ogra Y. Roles of metallothionein in copperhomeostasis: responses to Cu-deficient diets in mice // J Inorg Biochem.