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Kramer, J. J.

Publications and source records attributed to Kramer, J. J..

2 recordsLinked to original sources

Colonization of 3D-organotypic human skin by the Lyme Disease pathogen, Borrelia burgdorferi

Borrelia burgdorferi is a bacterial pathogen transmitted by ticks that is the causative agent of Lyme Disease. When studying interactions between B. burgdorferi and skin following a tick-bite, existing models consist primarily of murine skin which has different cellularity and thickness than human skin or ex vivo human biopsies that can be difficult to obtain and can have high variability. This presents a need for a reproducible human skin model. Herein, we adapt an existing human organotypic skin model that is simply composed of dermal fibroblasts and stratified epidermal keratinocytes and develop an infection assay mimicking skin reinfection to characterize B. burgdorferi colonization. Normal spirochete morphology and a stressed B. burgdorferi morphology known as a "round body" were observed. Peak B. burgdorferi invasion was observed at 24 hours (h) with peak round body formation at 48 h. By breaking the skin down into its individual components, we observed an increase in the number of round bodies in the presence of dermal fibroblasts. The presence of keratinocytes or extracellular matrix alone had no effect on round body formation, indicating a dermal fibroblast-mediated mechanism. We also demonstrate tissue-to-tissue dissemination and colonization, setting the groundwork for future studies with other tissues. Collectively, these results prove that this is a valid human skin model to study B. burgdorferi colonization during secondary dissemination.

microbiology↗

Transcriptional regulation of the synthesis and secretion of farnesol and aromatic fusel alcohols in the fungus Candida albicans: Examination of the Homann transcription regulator knockout collection

Candida albicans is an efficient colonizer of human gastrointestinal tracts and skin and is an opportunistic pathogen. C. albicans exhibits morphological plasticity and the ability to switch between yeast and filamentous morphologies is associated with virulence. One regulator of this switch is the quorum sensing molecule farnesol which is produced by C. albicans throughout growth. However, the synthesis, secretion, regulation, and turnover of farnesol is not fully understood. To address this, we used our improved farnesol assay to screen a transcription regulator knockout library of 164 mutants for farnesol accumulation in whole cultures, pellets, and supernatants. All mutants produced farnesol and they averaged 9.2X more farnesol in the pellet than the supernatant. Nineteen mutants had significant differences with ten mutants producing more farnesol than their SN152+ parent while nine produced less. Seven mutants exhibited greater secretion of farnesol while two exhibited less. We examined the time course for farnesol accumulation in six mutants with the greatest accumulation differences and found that those differences persisted throughout growth and they were not time dependent. Significantly, two high accumulating mutants did not exhibit the decay in farnesol levels during stationary phase characteristic of wild type C. albicans, suggesting that a farnesol modification/degradation mechanism is absent in these mutants. Identifying these transcriptional regulators provides new insight into farnesols physiological functions regarding cell cycle progression, white-opaque switching, yeast-mycelial dimorphism, and response to cellular stress.

microbiology↗