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1.
Antimicrob Agents Chemother ; 65(7): e0245020, 2021 06 17.
Article in English | MEDLINE | ID: mdl-33972245

ABSTRACT

Compared to other species of Candida yeasts, the growth of Candida glabrata is inhibited by many different strains of Saccharomyces killer yeasts. The ionophoric K1 and K2 killer toxins are broadly inhibitory to all clinical isolates of C. glabrata from patients with recurrent vulvovaginal candidiasis, despite high levels of resistance to clinically relevant antifungal therapeutics.


Subject(s)
Candida glabrata , Candidiasis, Vulvovaginal , Antifungal Agents/pharmacology , Candida glabrata/genetics , Candidiasis, Vulvovaginal/drug therapy , Drug Resistance, Fungal/genetics , Female , Humans , Ionophores , Microbial Sensitivity Tests , Saccharomyces cerevisiae/genetics
2.
PLoS Genet ; 17(2): e1009341, 2021 02.
Article in English | MEDLINE | ID: mdl-33539346

ABSTRACT

Killer toxins are extracellular antifungal proteins that are produced by a wide variety of fungi, including Saccharomyces yeasts. Although many Saccharomyces killer toxins have been previously identified, their evolutionary origins remain uncertain given that many of these genes have been mobilized by double-stranded RNA (dsRNA) viruses. A survey of yeasts from the Saccharomyces genus has identified a novel killer toxin with a unique spectrum of activity produced by Saccharomyces paradoxus. The expression of this killer toxin is associated with the presence of a dsRNA totivirus and a satellite dsRNA. Genetic sequencing of the satellite dsRNA confirmed that it encodes a killer toxin with homology to the canonical ionophoric K1 toxin from Saccharomyces cerevisiae and has been named K1-like (K1L). Genomic homologs of K1L were identified in six non-Saccharomyces yeast species of the Saccharomycotina subphylum, predominantly in subtelomeric regions of the genome. When ectopically expressed in S. cerevisiae from cloned cDNAs, both K1L and its homologs can inhibit the growth of competing yeast species, confirming the discovery of a family of biologically active K1-like killer toxins. The sporadic distribution of these genes supports their acquisition by horizontal gene transfer followed by diversification. The phylogenetic relationship between K1L and its genomic homologs suggests a common ancestry and gene flow via dsRNAs and DNAs across taxonomic divisions. This appears to enable the acquisition of a diverse arsenal of killer toxins by different yeast species for potential use in niche competition.


Subject(s)
Ascomycota/genetics , Genetic Variation , Killer Factors, Yeast/genetics , Saccharomycetales/genetics , Ascomycota/classification , Ascomycota/virology , Evolution, Molecular , Gene Flow , Gene Transfer, Horizontal , Phylogeny , RNA, Double-Stranded/genetics , RNA, Viral/genetics , Saccharomyces/classification , Saccharomyces/genetics , Saccharomyces/virology , Saccharomyces cerevisiae/genetics , Saccharomycetales/classification , Saccharomycetales/virology , Species Specificity , Totivirus/genetics
3.
Viruses ; 11(1)2019 01 16.
Article in English | MEDLINE | ID: mdl-30654470

ABSTRACT

Mycoviruses infect a large number of diverse fungal species, but considering their prevalence, relatively few high-quality genome sequences have been determined. Many mycoviruses have linear double-stranded RNA genomes, which makes it technically challenging to ascertain their nucleotide sequence using conventional sequencing methods. Different specialist methodologies have been developed for the extraction of double-stranded RNAs from fungi and the subsequent synthesis of cDNAs for cloning and sequencing. However, these methods are often labor-intensive, time-consuming, and can require several days to produce cDNAs from double-stranded RNAs. Here, we describe a comprehensive method for the rapid extraction and sequencing of dsRNAs derived from yeasts, using short-read next generation sequencing. This method optimizes the extraction of high-quality double-stranded RNAs from yeasts and 3' polyadenylation for the initiation of cDNA synthesis for next-generation sequencing. We have used this method to determine the sequence of two mycoviruses and a double-stranded RNA satellite present within a single strain of the model yeast Saccharomyces cerevisiae. The quality and depth of coverage was sufficient to detect fixed and polymorphic mutations within viral populations extracted from a clonal yeast population. This method was also able to identify two fixed mutations within the alpha-domain of a variant K1 killer toxin encoded on a satellite double-stranded RNA. Relative to the canonical K1 toxin, these newly reported mutations increased the cytotoxicity of the K1 toxin against a specific species of yeast.


Subject(s)
High-Throughput Nucleotide Sequencing/methods , Killer Factors, Yeast/genetics , RNA, Double-Stranded/genetics , RNA, Viral/genetics , Saccharomyces cerevisiae/virology , Cloning, Molecular , DNA, Complementary , Mutation , RNA, Double-Stranded/isolation & purification , RNA, Viral/isolation & purification , Saccharomyces cerevisiae/genetics
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