Potential role for extracellular glutathione-dependent ferric reductase in utilization of environmental and host ferric compounds by Histoplasma capsulatum

被引:44
作者
Timmerman, MM [1 ]
Woods, JP [1 ]
机构
[1] Univ Wisconsin, Dept Med Microbiol & Immunol, Microbiol Doctoral Training Program, Madison, WI 53706 USA
关键词
D O I
10.1128/IAI.69.12.7671-7678.2001
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
The mammalian host specifically limits iron during Histoplasma capsulatum infection, and fungal acquisition of iron is essential for productive Infection. H. capsulatum expresses several iron acquisition mechanisms under iron-limited conditions in vitro. These components include hydroxamate siderophores, extracellular glutathione-dependent ferric reductase enzyme, extracellular nonproteinaceous ferric reductant(s), and cell surface ferric reducing agent(s). We examined the relationship between these mechanisms and a potential role for the extracellular ferric reductase in utilization of environmental and host ferric compounds through the production of free, soluble Fe(II). Siderophores and ferric reducing agents were coproduced under conditions of iron limitation. The H. capsulatum siderophore dimerum acid and the structurally similar basidiomycete siderophore rhodotorulic acid acted as substrates for the ferric reductase, and rhodotorulic acid removed Fe(III) bound by transferrin. The mammalian Fe(III)-binding compounds hemin and transferrin served both as substrates for the ferric reductase and as iron sources for yeast-phase growth at neutral pH. In the case of transferrin, there was a correlation between the level of iron saturation and efficacy for both of these functions. Our data are not consistent with an entirely pH-dependent mechanism of iron acquisition from transferrin, as has been suggested to occur in the macrophage phagolysosome. The foreign siderophore ferrioxamine B also acted as a substrate for the ferric reductase, while the foreign siderophore ferrichrome did not. Both ferrioxamine and ferrichrome served as iron sources for yeast- and mold-phase growth, the latter presumably by some other acquisition mechanism(s).
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页码:7671 / 7678
页数:8
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共 50 条
[1]   IRON UPTAKE IN MYCELIA-STERILIA EP-76 [J].
ADJIMANI, JP ;
EMERY, T .
JOURNAL OF BACTERIOLOGY, 1987, 169 (08) :3664-3668
[2]  
Aisen P, 1998, MET IONS BIOL SYST, V35, P585
[3]   Iron uptake in Ustilago maydis:: Tracking the iron path [J].
Ardon, O ;
Nudelman, R ;
Caris, C ;
Libman, J ;
Shanzer, A ;
Chen, YN ;
Hadar, Y .
JOURNAL OF BACTERIOLOGY, 1998, 180 (08) :2021-2026
[4]  
Askwith C, 1997, J BIOL CHEM, V272, P401
[5]   SITE-SPECIFIC RATE CONSTANTS FOR IRON REMOVAL FROM DIFERRIC TRANSFERRIN BY NITRILOTRIS(METHYLENEPHOSPHONIC ACID) AND PYROPHOSPHATE [J].
BALI, PK ;
HARRIS, WR .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1990, 281 (02) :251-256
[7]   HYDROXAMIC ACID FROM HISTOPLASMA-CAPSULATUM THAT DISPLAYS GROWTH-FACTOR ACTIVITY [J].
BURT, WR ;
UNDERWOOD, AL ;
APPLETON, GL .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1981, 42 (03) :560-563
[8]   Ferric enterobactin binding and utilization by Neisseria gonorrhoeae [J].
Carson, SDB ;
Klebba, PE ;
Newton, SMC ;
Sparling, PF .
JOURNAL OF BACTERIOLOGY, 1999, 181 (09) :2895-2901
[9]   IRON UPTAKE FROM FERRIOXAMINE AND FROM FERRIRHIZOFERRIN BY GERMINATING SPORES OF RHIZOPUS-MICROSPORUS [J].
DELOCHT, M ;
BOELAERT, JR ;
SCHNEIDER, YJ .
BIOCHEMICAL PHARMACOLOGY, 1994, 47 (10) :1843-1850
[10]   REDUCTION OF EXOGENOUS FERRIC IRON BY A SURFACE-ASSOCIATED FERRIC REDUCTASE OF LISTERIA SPP [J].
DENEER, HG ;
HEALEY, V ;
BOYCHUK, I .
MICROBIOLOGY-UK, 1995, 141 :1985-1992