Phenotypic switching in Candida glabrata involves phase-specific regulation of the metallothionein gene MT-II and the newly discovered hemolysin gene HLP

被引:69
作者
Lachke, SA [1 ]
Srikantha, T [1 ]
Tsai, LK [1 ]
Daniels, K [1 ]
Soll, DR [1 ]
机构
[1] Univ Iowa, Dept Biol Sci, Iowa City, IA 52242 USA
关键词
D O I
10.1128/IAI.68.2.884-895.2000
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
Although Candida glabrata has emerged in recent years as a major fungal pathogen, there have been no reports demonstrating that it undergoes either the bud-hypha transition or high-frequency phenotypic switching, two developmental programs believed to contribute to the pathogenic success of other Candida species. Here it is demonstrated that C. glabrata undergoes reversible, high-frequency phenotypic switching between a white (Wh), light brown (LB), and dark brown (DB) colony phenotype discriminated on an indicator agar containing 1 mM CuSO4. Switching regulates the transcript level of the MT-II metallothionein gene(s) and a newly discovered gene for a hemolysin-like protein, HLP. The relative MT-II transcript levels in Wh, LB, and DB cells grown in the presence of CuSO4 are 1:27:81, and the relative transcript levels of HLP are 1:20:35. The relative MT-II and HLP transcript levels in cells grown in the absence of CuSO4 are 1:20:30 and 1:20:25, respectively. In contrast, switching has little or no effect on the transcript levels of the genes MT-I, AMT-I, TRPI, HIS3, EPAI, and PDHI. Switching of C. glabrata is not associated with microevolutionary changes identified by the DNA fingerprinting probe Cg6 and does not involve tandem amplification of the MT-IIa gene, which has been shown to occur in response to elevated levels of copper. Finally, switching between Wh, LB, and DB occurred in all four clinical isolates examined in this study. As in Candida albicans, switching in C. glabrata may provide colonizing populations with phenotypic plasticity for rapid responses to the changing physiology of the host, antibiotic treatment, and the immune response, through the differential regulation of genes involved in pathogenesis. More importantly, because C. glabrata is haploid, a mutational analysis of switching is now feasible.
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页码:884 / 895
页数:12
相关论文
共 62 条
[1]  
[Anonymous], 1988, CANDIDA CANDIDIASIS
[2]   The Candida albicans CDR3 gene codes for an opaque-phase ABC transporter [J].
Balan, I ;
Alarco, AM ;
Raymond, M .
JOURNAL OF BACTERIOLOGY, 1997, 179 (23) :7210-7218
[3]   SWITCHING AT THE CELLULAR-LEVEL IN THE WHITE-OPAQUE TRANSITION OF CANDIDA-ALBICANS [J].
BERGEN, MS ;
VOSS, E ;
SOLL, DR .
JOURNAL OF GENERAL MICROBIOLOGY, 1990, 136 :1925-1936
[5]   YEAST METALLOTHIONEIN AND APPLICATIONS IN BIOTECHNOLOGY [J].
BUTT, TR ;
ECKER, DJ .
MICROBIOLOGICAL REVIEWS, 1987, 51 (03) :351-364
[6]   GENOMIC SEQUENCING [J].
CHURCH, GM ;
GILBERT, W .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA-BIOLOGICAL SCIENCES, 1984, 81 (07) :1991-1995
[7]   An adhesin of the yeast pathogen Candida glabrata mediating adherence to human epithelial cells [J].
Cormack, BP ;
Ghori, N ;
Falkow, S .
SCIENCE, 1999, 285 (5427) :578-582
[8]   CLONING AND NUCLEOTIDE-SEQUENCE OF CDNA-ENCODING ASP-HEMOLYSIN FROM ASPERGILLUS-FUMIGATUS [J].
EBINA, K ;
SAKAGAMI, H ;
YOKOTA, K ;
KONDO, H .
BIOCHIMICA ET BIOPHYSICA ACTA-GENE STRUCTURE AND EXPRESSION, 1994, 1219 (01) :148-150
[9]   Candida glabrata:: Review of epidemiology, pathogenesis, and clinical disease with comparison to C-albicans [J].
Fidel, PL ;
Vazquez, JA ;
Sobel, JD .
CLINICAL MICROBIOLOGY REVIEWS, 1999, 12 (01) :80-+
[10]   Selection of Candida glabrata strains with reduced susceptibility to azoles in four liver transplant patients with invasive candidiasis [J].
Fortun, J ;
LopezSanRoman, A ;
Velasco, JJ ;
SanchezSousa, A ;
deVicente, E ;
Nuno, J ;
Quereda, C ;
Barcena, R ;
Monge, G ;
Candela, A ;
Honrubia, A ;
Guerrero, A .
EUROPEAN JOURNAL OF CLINICAL MICROBIOLOGY & INFECTIOUS DISEASES, 1997, 16 (04) :314-318