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Greengo, S.

Publications and source records attributed to Greengo, S..

3 recordsLinked to original sources

Commonalities and differences in the Cryptococcus neoformans response to ingestion by protozoal and mammalian phagocytic cells suggests host cell metabolism as a target for intracellular survival

The outcome of the interaction between Cryptococcus neoformans and infected hosts can be determined by whether the fungal cell survives ingestion by phagocytic cells. This applies to both unicellular and multicellular hosts such as amoeba and animals, respectively. Ingestion by phagocytic cells results in the formation of the cryptococcal phagosome but this structure has proved difficult to isolate. In this study, we report the successful isolation of cryptococcal phagosomes from murine and human phagocytes, followed by their characterization using proteomic and transcriptional analysis. Comparison of cryptococcal proteins from Acanthamoeba castellanii, Mus musculus, and Homo sapiens phagocytes revealed the existence of a shared set suggesting a conserved fungal response to ingestion by phagocytic cells. Given that the cryptococcal intracellular pathogenic strategy is ancient, dating to at least to the cretaceous epoch, these results are consistent with the notion that the fungal response to ingestion reflects the result of selection pressures by environmental ameboid predators over eons of evolutionary time. We propose the existence of a conserved cryptococcal toolkit for intracellular survival that includes metabolic enzymes. We propose that host cell metabolic disruption provides a common strategy for the cryptococcal survival after ingestion by phylogenetically distant phagocytic hosts.

microbiology↗

On the relationship between serotype, chemotype and genotype for Cryptococcus spp. including a method for including polysaccharide structure in strain characterization

Over the past eight decades the classification of cryptococcal strains has relied on the technologies available to discriminate among isolates, such as serology, exopolysaccharide (EPS) NMR, and most recently multi-locus sequencing, which yielded serotypes, chemotypes, and genotypes, respectively. However, as one method superseded the other, the relationship between classification schemes became uncertain, resulting in assumptions that have not been rigorously validated. Here we compared the serotype, chemotype, and genotype as defined by multi-locus sequence typing (MLST) of 63 strains for which both serotype and chemotype characterization was available. None of the three strain typing methods were correlative with each other, although for about 50% of the strains there was correlation between chemotype and genotype. To address this, we updated the methodology of GXM motif categorization for cryptococcal strains through analyzing filter-isolated EPS by 1D [1H] NMR and assigning GXM motifs along with the O-acetylation level. The result is a facile method using minimally processed EPS material coupled with simple cryptococcal strain classification by GXM motif expression. While this method increases the correlation between MLST genotype and GXM motif expression, further studies to establish the polysaccharide regulatory genes in cryptococcus will be necessary to understand the polysaccharide differences. In summary, none of the current classification methods correlated with each other, indicating a dissociation between genotype and phenotype, which poses a challenge to the cryptococcal field for explaining how phenotypic characteristics arise and are maintained. Author SummaryThis work examines the relationship between methods of cryptococcal strain classification and the primary structure of the predominant polysaccharide glucuronoxylomannan (GXM). We find no strong correlation between the expression of trimannose repeat motifs of GXM by a strain and serotype, MLST genotype, or the previous polysaccharide classification system, chemotyping. With an understanding that none of these classification systems accurately represent the GXM sequences in cryptococcal polysaccharides, we describe a new, facile, rapid method of polysaccharide isolation and GXM motif expression characterization. Application of this method reveals a strong association between high levels of GXM O-acetylation, necessary for antibody binding, and the expression of a single motif of GXM. Additionally, the association between MLST genotype and GXM motif expression is higher when utilizing this new method. While much remains to be understood about this complex system, this work provides a new method to include GXM motif expression in cryptococcal strain expression allowing for more accurate strain descriptions in the future.

microbiology↗

Human and murine Cryptococcus neoformans infection selects for common genomic changes in an environmental isolate.

A pet cockatoo was the suspected source of Cryptococcus neoformans recovered from the cerebral spinal fluid (CSF) of an immunocompromised patient with cryptococcosis based on the molecular analyses available in 2000. Here we report whole genome sequence analysis of the clinical and cockatoo strains. Both are closely related MAT strains belonging to the VNII lineage, confirming that the human infection likely originated from pet bird exposure. The two strains differ by 61 single nucleotide polymorphisms, including 8 nonsynonymous changes involving 7 genes. To ascertain whether changes in these genes are selected during mammalian infection, we passaged the cockatoo strain in mice. Remarkably, isolates obtained from mouse tissue possess a frame-shift mutation in one of the seven genes altered in the human sample, a gene predicted to encode a SWI-SNF chromatin-remodeling complex protein. Both cockatoo and patient strains as well as mouse passaged isolates obtained from brain tissue had a premature stop codon in a homolog of ZFC3, a predicted single-zinc finger containing protein, which is associated with larger capsules when deleted and appears to have reverted to a full-length protein in the mouse passaged isolates obtained from lung tissue. The patient strain and mouse passaged isolates show variability in the expression of virulence factors, with differences in capsule size, melanization, and rates on non-lytic expulsion from macrophages observed. Our results establish that environmental strains undergo genomic and phenotypic changes during mammalian passage, suggesting that animal virulence can be a mechanism for genetic change and that the genomes of clinical isolates may provide a readout of mutations acquired during infection.

genomics↗