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Dive into the research topics where Charles Winston Saunders is active.

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Featured researches published by Charles Winston Saunders.


Proceedings of the National Academy of Sciences of the United States of America | 2007

Dandruff-associated Malassezia genomes reveal convergent and divergent virulence traits shared with plant and human fungal pathogens

Jun Xu; Charles Winston Saunders; Ping Hu; Raymond A. Grant; Teun Boekhout; Eiko E. Kuramae; James W. Kronstad; Yvonne M. DeAngelis; Nancy L. Reeder; Kevin Robert Johnstone; Meredith Leland; Angela M. Fieno; William M. Begley; Yiping Sun; Martin P. Lacey; Tanuja Chaudhary; Thomas W. Keough; Lien Chu; Russell Sears; Bo Yuan; Thomas L. Dawson

Fungi in the genus Malassezia are ubiquitous skin residents of humans and other warm-blooded animals. Malassezia are involved in disorders including dandruff and seborrheic dermatitis, which together affect >50% of humans. Despite the importance of Malassezia in common skin diseases, remarkably little is known at the molecular level. We describe the genome, secretory proteome, and expression of selected genes of Malassezia globosa. Further, we report a comparative survey of the genome and secretory proteome of Malassezia restricta, a close relative implicated in similar skin disorders. Adaptation to the skin environment and associated pathogenicity may be due to unique metabolic limitations and capabilities. For example, the lipid dependence of M. globosa can be explained by the apparent absence of a fatty acid synthase gene. The inability to synthesize fatty acids may be complemented by the presence of multiple secreted lipases to aid in harvesting host lipids. In addition, an abundance of genes encoding secreted hydrolases (e.g., lipases, phospholipases, aspartyl proteases, and acid sphingomyelinases) was found in the M. globosa genome. In contrast, the phylogenetically closely related plant pathogen Ustilago maydis encodes a different arsenal of extracellular hydrolases with more copies of glycosyl hydrolase genes. M. globosa shares a similar arsenal of extracellular hydrolases with the phylogenetically distant human pathogen, Candida albicans, which occupies a similar niche, indicating the importance of host-specific adaptation. The M. globosa genome sequence also revealed the presence of mating-type genes, providing an indication that Malassezia may be capable of sex.


Mbio | 2012

Comparative Genome Analysis of Trichophyton rubrum and Related Dermatophytes Reveals Candidate Genes Involved in Infection

Diego Martinez; Brian G. Oliver; Yvonne Gräser; Jonathan M. Goldberg; Wenjun Li; Nilce M. Martinez-Rossi; Michel Monod; Ekaterina Shelest; Richard Barton; Elizabeth Birch; Axel A. Brakhage; Zehua Chen; Sarah J. Gurr; David I. Heiman; Joseph Heitman; Idit Kosti; Antonio Rossi; Sakina Saif; Marketa Samalova; Charles Winston Saunders; Terrance Shea; Richard C. Summerbell; Jun Xu; Qiandong Zeng; Bruce W. Birren; Christina A. Cuomo; Theodore C. White

ABSTRACT The major cause of athlete’s foot is Trichophyton rubrum, a dermatophyte or fungal pathogen of human skin. To facilitate molecular analyses of the dermatophytes, we sequenced T. rubrum and four related species, Trichophyton tonsurans, Trichophyton equinum, Microsporum canis, and Microsporum gypseum. These species differ in host range, mating, and disease progression. The dermatophyte genomes are highly colinear yet contain gene family expansions not found in other human-associated fungi. Dermatophyte genomes are enriched for gene families containing the LysM domain, which binds chitin and potentially related carbohydrates. These LysM domains differ in sequence from those in other species in regions of the peptide that could affect substrate binding. The dermatophytes also encode novel sets of fungus-specific kinases with unknown specificity, including nonfunctional pseudokinases, which may inhibit phosphorylation by competing for kinase sites within substrates, acting as allosteric effectors, or acting as scaffolds for signaling. The dermatophytes are also enriched for a large number of enzymes that synthesize secondary metabolites, including dermatophyte-specific genes that could synthesize novel compounds. Finally, dermatophytes are enriched in several classes of proteases that are necessary for fungal growth and nutrient acquisition on keratinized tissues. Despite differences in mating ability, genes involved in mating and meiosis are conserved across species, suggesting the possibility of cryptic mating in species where it has not been previously detected. These genome analyses identify gene families that are important to our understanding of how dermatophytes cause chronic infections, how they interact with epithelial cells, and how they respond to the host immune response. IMPORTANCE Athlete’s foot, jock itch, ringworm, and nail infections are common fungal infections, all caused by fungi known as dermatophytes (fungi that infect skin). This report presents the genome sequences of Trichophyton rubrum, the most frequent cause of athlete’s foot, as well as four other common dermatophytes. Dermatophyte genomes are enriched for four gene classes that may contribute to the ability of these fungi to cause disease. These include (i) proteases secreted to degrade skin; (ii) kinases, including pseudokinases, that are involved in signaling necessary for adapting to skin; (iii) secondary metabolites, compounds that act as toxins or signals in the interactions between fungus and host; and (iv) a class of proteins (LysM) that appear to bind and mask cell wall components and carbohydrates, thus avoiding the host’s immune response to the fungi. These genome sequences provide a strong foundation for future work in understanding how dermatophytes cause disease. Athlete’s foot, jock itch, ringworm, and nail infections are common fungal infections, all caused by fungi known as dermatophytes (fungi that infect skin). This report presents the genome sequences of Trichophyton rubrum, the most frequent cause of athlete’s foot, as well as four other common dermatophytes. Dermatophyte genomes are enriched for four gene classes that may contribute to the ability of these fungi to cause disease. These include (i) proteases secreted to degrade skin; (ii) kinases, including pseudokinases, that are involved in signaling necessary for adapting to skin; (iii) secondary metabolites, compounds that act as toxins or signals in the interactions between fungus and host; and (iv) a class of proteins (LysM) that appear to bind and mask cell wall components and carbohydrates, thus avoiding the host’s immune response to the fungi. These genome sequences provide a strong foundation for future work in understanding how dermatophytes cause disease.


Mbio | 2013

Genomic Insights into the Atopic Eczema-Associated Skin Commensal Yeast Malassezia sympodialis

Anastasia Gioti; Björn Nystedt; Wenjun Li; Jun Xu; Anna Andersson; Anna F. Averette; Karin Münch; Xuying Wang; Catharine Kappauf; Joanne M. Kingsbury; Bart Kraak; Louise A. Walker; H. Johansson; Tina Holm; Janne Lehtiö; Jason E. Stajich; Piotr A. Mieczkowski; Regine Kahmann; John C. Kennell; Maria E. Cardenas; Joakim Lundeberg; Charles Winston Saunders; Teun Boekhout; Thomas L. Dawson; Carol A. Munro; Piet W. J. de Groot; Geraldine Butler; Joseph Heitman; Annika Scheynius

ABSTRACT Malassezia commensal yeasts are associated with a number of skin disorders, such as atopic eczema/dermatitis and dandruff, and they also can cause systemic infections. Here we describe the 7.67-Mbp genome of Malassezia sympodialis, a species associated with atopic eczema, and contrast its genome repertoire with that of Malassezia globosa, associated with dandruff, as well as those of other closely related fungi. Ninety percent of the predicted M. sympodialis protein coding genes were experimentally verified by mass spectrometry at the protein level. We identified a relatively limited number of genes related to lipid biosynthesis, and both species lack the fatty acid synthase gene, in line with the known requirement of these yeasts to assimilate lipids from the host. Malassezia species do not appear to have many cell wall-localized glycosylphosphatidylinositol (GPI) proteins and lack other cell wall proteins previously identified in other fungi. This is surprising given that in other fungi these proteins have been shown to mediate interactions (e.g., adhesion and biofilm formation) with the host. The genome revealed a complex evolutionary history for an allergen of unknown function, Mala s 7, shown to be encoded by a member of an amplified gene family of secreted proteins. Based on genetic and biochemical studies with the basidiomycete human fungal pathogen Cryptococcus neoformans, we characterized the allergen Mala s 6 as the cytoplasmic cyclophilin A. We further present evidence that M. sympodialis may have the capacity to undergo sexual reproduction and present a model for a pseudobipolar mating system that allows limited recombination between two linked MAT loci. IMPORTANCE Malassezia commensal yeasts are associated with a number of skin disorders. The previously published genome of M. globosa provided some of the first insights into Malassezia biology and its involvement in dandruff. Here, we present the genome of M. sympodialis, frequently isolated from patients with atopic eczema and healthy individuals. We combined comparative genomics with sequencing and functional characterization of specific genes in a population of clinical isolates and in closely related model systems. Our analyses provide insights into the evolution of allergens related to atopic eczema and the evolutionary trajectory of the machinery for sexual reproduction and meiosis. We hypothesize that M. sympodialis may undergo sexual reproduction, which has important implications for the understanding of the life cycle and virulence potential of this medically important yeast. Our findings provide a foundation for the development of genetic and genomic tools to elucidate host-microbe interactions that occur on the skin and to identify potential therapeutic targets. Malassezia commensal yeasts are associated with a number of skin disorders. The previously published genome of M. globosa provided some of the first insights into Malassezia biology and its involvement in dandruff. Here, we present the genome of M. sympodialis, frequently isolated from patients with atopic eczema and healthy individuals. We combined comparative genomics with sequencing and functional characterization of specific genes in a population of clinical isolates and in closely related model systems. Our analyses provide insights into the evolution of allergens related to atopic eczema and the evolutionary trajectory of the machinery for sexual reproduction and meiosis. We hypothesize that M. sympodialis may undergo sexual reproduction, which has important implications for the understanding of the life cycle and virulence potential of this medically important yeast. Our findings provide a foundation for the development of genetic and genomic tools to elucidate host-microbe interactions that occur on the skin and to identify potential therapeutic targets.


PLOS Genetics | 2015

Genus-Wide Comparative Genomics of Malassezia Delineates Its Phylogeny, Physiology, and Niche Adaptation on Human Skin

Guangxi Wu; He Zhao; Chenhao Li; Menaka Priyadarsani Rajapakse; Wing-Cheong Wong; Jun Xu; Charles Winston Saunders; Nancy L. Reeder; Raymond A. Reilman; Annika Scheynius; Sheng Sun; Blake Robert Billmyre; Wenjun Li; Anna F. Averette; Piotr A. Mieczkowski; Joseph Heitman; Bart Theelen; Markus S. Schröder; Paola Florez de Sessions; Geraldine Butler; Sebastian Maurer-Stroh; Teun Boekhout; Niranjan Nagarajan; Thomas L. Dawson

Malassezia is a unique lipophilic genus in class Malasseziomycetes in Ustilaginomycotina, (Basidiomycota, fungi) that otherwise consists almost exclusively of plant pathogens. Malassezia are typically isolated from warm-blooded animals, are dominant members of the human skin mycobiome and are associated with common skin disorders. To characterize the genetic basis of the unique phenotypes of Malassezia spp., we sequenced the genomes of all 14 accepted species and used comparative genomics against a broad panel of fungal genomes to comprehensively identify distinct features that define the Malassezia gene repertoire: gene gain and loss; selection signatures; and lineage-specific gene family expansions. Our analysis revealed key gene gain events (64) with a single gene conserved across all Malassezia but absent in all other sequenced Basidiomycota. These likely horizontally transferred genes provide intriguing gain-of-function events and prime candidates to explain the emergence of Malassezia. A larger set of genes (741) were lost, with enrichment for glycosyl hydrolases and carbohydrate metabolism, concordant with adaptation to skin’s carbohydrate-deficient environment. Gene family analysis revealed extensive turnover and underlined the importance of secretory lipases, phospholipases, aspartyl proteases, and other peptidases. Combining genomic analysis with a re-evaluation of culture characteristics, we establish the likely lipid-dependence of all Malassezia. Our phylogenetic analysis sheds new light on the relationship between Malassezia and other members of Ustilaginomycotina, as well as phylogenetic lineages within the genus. Overall, our study provides a unique genomic resource for understanding Malassezia niche-specificity and potential virulence, as well as their abundance and distribution in the environment and on human skin.


Antimicrobial Agents and Chemotherapy | 2011

Zinc Pyrithione Inhibits Yeast Growth through Copper Influx and Inactivation of Iron-Sulfur Proteins

Nancy L. Reeder; Jerry Kaplan; Jun Xu; R. Scott Youngquist; Jared Wallace; Ping Hu; Kenton Duane Juhlin; James Robert Schwartz; Raymond A. Grant; Angela M. Fieno; Suzanne Nemeth; Tim Reichling; Jay P. Tiesman; Tim Mills; Mark Steinke; Shuo L. Wang; Charles Winston Saunders

ABSTRACT Zinc pyrithione (ZPT) is an antimicrobial material with widespread use in antidandruff shampoos and antifouling paints. Despite decades of commercial use, there is little understanding of its antimicrobial mechanism of action. We used a combination of genome-wide approaches (yeast deletion mutants and microarrays) and traditional methods (gene constructs and atomic emission) to characterize the activity of ZPT against a model yeast, Saccharomyces cerevisiae. ZPT acts through an increase in cellular copper levels that leads to loss of activity of iron-sulfur cluster-containing proteins. ZPT was also found to mediate growth inhibition through an increase in copper in the scalp fungus Malassezia globosa. A model is presented in which pyrithione acts as a copper ionophore, enabling copper to enter cells and distribute across intracellular membranes. This is the first report of a metal-ligand complex that inhibits fungal growth by increasing the cellular level of a different metal.


Journal of Economic Entomology | 2001

Isolation of a Deet-Insensitive Mutant of Drosophila melanogaster (Diptera: Drosophilidae)

Nancy L. Reeder; Philip James Ganz; John R. Carlson; Charles Winston Saunders

Abstract Despite the widespread use of N,N,-diethyl-3-methylbenzamide (deet) in insect repellent products, nothing is known about the molecular basis for the repellency of deet. We initiated a molecular genetics program to elucidate the molecular mechanism of deet repellency in Drosophila melanogaster (Meigen). Deet repellency was apparently due to airborne vapors, as wild type flies were repelled by a deet-treated surface in the absence of physical contact and in the dark. A mutant was isolated using chemical mutagenesis and a choice assay. In a choice assay, mutant flies entered 82 ± 1% of deet-containing tubes, whereas wild type flies entered only 6 ± 2% of deet-containing tubes. The mutant was repelled by other repellents, benzaldehyde and citronellal. The mutation was recessive and located on the X chromosome.


Cold Spring Harbor Perspectives in Medicine | 2014

Fungi on the Skin: Dermatophytes and Malassezia

Theodore C. White; Keisha Findley; Thomas L. Dawson; Annika Scheynius; Teun Boekhout; Christina A. Cuomo; Jun Xu; Charles Winston Saunders

Several human skin diseases and disorders are associated with two groups of fungi, the dermatophytes and Malassezia. Although these skin-related problems are not generally life threatening, they are among the most common diseases and disorders of mankind. These fungi are phylogenetically divergent, with the dermatophytes within the Ascomycota and Malassezia within Basidiomycota. Genome analysis indicates that the adaptations to the skin environment are different in these two groups of fungi. Malassezia are dependent on host lipids and secrete lipases and phospholipases that likely release host fatty acids. The dermatophytes encode multiple enzymes with potential roles in modulating host interactions: polyketide synthases, nonribosomal peptide synthetases, LysM, proteases, kinases, and pseudokinases. These two fungal groups have maximized their interactions with the host using two very different mechanisms.


British Journal of Dermatology | 2011

The antifungal mechanism of action of zinc pyrithione.

Nancy L. Reeder; Jun Xu; R.S. Youngquist; James Robert Schwartz; R.C. Rust; Charles Winston Saunders

Background  Zinc pyrithione (ZPT) is the active ingredient most commonly used in many antidandruff treatments. Despite decades of successful use to treat human scalps, little is understood about the antifungal mechanism of action of ZPT.


Gene | 1991

Optimization of the signal-sequence cleavage site for secretion from Bacillus subtilis of a 34-amino acid fragment of human parathyroid hormone

Charles Winston Saunders; Julia A. Pedroni; Paula M. Monahan

We have effected the secretion from Bacillus subtilis of a 34-amino acid (aa) fragment of human parathyroid hormone (PTH,1-34), using a Bacillus amyloliquefaciens neutral protease signal sequence. The secretion efficiency depended on the aa sequence near the signal-sequence cleavage site. We constructed a series of gene fusions encoding different pairs of aa between the signal sequence and PTH,1-34. There was a correlation between those polypeptides which were efficiently secreted and the potential for a beta-turn in the region just beyond the signal-sequence cleavage site. Based on this correlation, we constructed a gene fusion which specified Gly rather than Ala at the C terminus of the signal sequence, thus creating a beta-turn potential at the end of the signal sequence. The change provided a slight increase in secretion efficiency.


Malassezia and the skin | 2010

Genomics and pathophysiology, dandruff as a paradigm

Jun Xu; Teun Boekhout; Yvonne M. DeAngelis; Thomas Larry Dawson; Charles Winston Saunders

The recent sequencing of the genomes of dandruff-associated basidiomycetous yeasts, Malassezia globosa and Malassezia restricta, disclosed that the M. globosa genome is among the smallest for a free-living fungus. M. globosa produces a similar set of secreted hydrolases as the human pathogen Candida albicans. Although phylogenetically more closely related to the plant pathogen Ustilago maydis, M. globosa produces a different set of secreted hydrolases, which is a likely adaptation to the host niche and may be involved in pathogenicity. M. globosa is apparently missing several enzymes in fatty acid metabolism, including fatty acid synthase, Δ9 desaturase, and Δ2,3 enoyl CoA isomerase. The two former enzymes are apparently missing also in another skin microbe, Corynebacterium jeikeium. M. globosa has six lipase genes in each of two lipase families, which, compared with the lipases from a related fungus U. maydis, had undergone duplications since divergence from the Ustilago-containing lineage. There is also evidence for duplication of other M. globosa genes for secreted enzymes such as aspartyl proteases, phospholipases C, and acid sphingomyelinases. The M. globosa genome encodes proteins similar to all Malassezia allergens, the coding sequences of which have been isolated, and genes associated with mating, although mating has not yet been observed in Malassezia.

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