Targeted suppression of the ferroxidase and iron trafficking activities of the multicopper oxidase Fet3p from Saccharomyces cerevisiae

被引:0
作者
Tzu-Pin Wang
Liliana Quintanar
Scott Severance
Edward I. Solomon
Daniel J. Kosman
机构
[1] The University at Buffalo,Department of Biochemistry
[2] Stanford University,Department of Chemistry
来源
JBIC Journal of Biological Inorganic Chemistry | 2003年 / 8卷
关键词
Ferroxidase; Iron metabolism; Iron trafficking; Iron transport; Iron uptake;
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摘要
The Fet3 protein in Saccharomyces cerevisiae is a multicopper oxidase tethered to the outer surface of the yeast plasma membrane. Fet3p catalyzes the oxidation of Fe2+ to Fe3+; this ferroxidation reaction is an obligatory first step in high-affinity iron uptake through the permease Ftr1p. Here, kinetic analyses of several Fet3p mutants identify residues that contribute to the specificity that Fet3p has for Fe2+, one of which is essential also to the coupling of the ferroxidase and uptake processes. The spectral and kinetic properties of the D278A, E185D and A, Y354F and A, and E185A/Y354A mutants of a soluble form of Fet3p showed that all of the mutants exhibited the normal absorbance at 330 nm and 608 nm due to the type 3 and type 1 copper sites in Fet3p, respectively. The EPR spectra of the mutants were also equivalent to wild-type, showing that the type 1 and type 2 Cu(II) sites in the proteins were not perturbed. The only marked kinetic defects measured in vitro were increases in KM for Fe2+ exhibited by the D278A, E185A, Y354A, and E185A/Y354A mutants. These results suggest that these three residues contribute to the ferroxidase specificity site in Fet3p. In vivo analysis of these mutant proteins in their membrane-bound form showed that only E185 mutants exhibited kinetic defects in 59Fe uptake. For the Fet3p(E185D) mutant, KM for iron was 300-fold greater than the wild-type KM, while Fet3p(E185A) was completely inactive in support of iron uptake. In situ fluorescence demonstrated that all of the mutant Fet3 proteins, in complex with an Ftr1p:YFP fusion protein, were trafficked normally to the plasma membrane. These results suggest that E185 contributes to Fe2+ binding to Fet3p and to the subsequent trafficking of the Fe3+ produced to Ftr1p.
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页码:611 / 620
页数:9
相关论文
共 44 条
[1]  
Kosman undefined(2003)undefined Mol Microbiol 47 1185-undefined
[2]  
Martins undefined(1998)undefined J Biol Chem 273 23716-undefined
[3]  
Dancis undefined(1992)undefined Proc Natl Acad Sci USA 89 3869-undefined
[4]  
Georgatsou undefined(1999)undefined Yeast 15 573-undefined
[5]  
Dix undefined(1994)undefined J Biol Chem 269 26092-undefined
[6]  
Dix undefined(1997)undefined J Biol Chem 272 11770-undefined
[7]  
Hassett undefined(2000)undefined Biochem J 351 477-undefined
[8]  
de undefined(1995)undefined J Biol Chem 270 1098-undefined
[9]  
Stearman undefined(1996)undefined Science 271 1552-undefined
[10]  
Yuan undefined(1997)undefined J Biol Chem 272 25787-undefined