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Korwin-Mihavics, B. R.

Publications and source records attributed to Korwin-Mihavics, B. R..

2 recordsLinked to original sources

Organoid-based in vitro systems to model Cryptosporidium parvum infection in 2D and 3D

Many advances have been made recently in our understanding of Cryptosporidiums asexual cycle and sexual differentiation. However, the process of fertilization, which is required for transmission of infectious oocysts, is not well understood. Typical cancer cell-based culture only allows robust exploration of asexual cycle and sexual differentiation of Cryptosporidium. To facilitate exploration of sexual reproduction in C. parvum we developed an organoid-based culture system that supports Cryptosporidiums full life cycle and a novel fertilization reporter. Organoid derived monolayers (ODMs) supported fertilization and oocyst production and maintained the infection for up to 3 weeks. ODM derived oocysts were infectious in vivo. Fertilization was confirmed by successfully mating two strains of C. parvum and with a novel fertilization switch reporter. The fertilization switch reporter utilizes a DiCre system in which cre fragments are expressed under the control of sexual stage promoters resulting in a rapamycin-inducible switch in fluorescent protein expression from mCherry to mNeonGreen after fertilization that is spatially and temporally controlled. This results in mCherry positive parasites in the first generation and offspring that express mNeonGreen. In vivo validation of the fertilization switch reporter demonstrated the precision and efficiency of the fertilization switch reporter and confirmed excision of the mCherry gene sequence only after rapamycin treatment. The start of a second generation of parasites was also shown in the ODMs and rarely in HCT8s. Use of this reporter in ODMs can help investigate the Cryptosporidium lifecycle post sexual differentiation in a physiologically relevant in vitro system. ImportanceOrganoid derived monolayers provide an opportunity to elucidate previously inaccessible aspects of Cryptosporidiums biology. This system overcomes the disadvantages of previous organoid-based methods for Cryptosporidium culture. It is faster and simpler than previously described systems, uses defined media to increase reproducibility and consistency, enables real-time observation, supports parasite fertilization and oocyst production, and provides a physiologically relevant tissue culture system to facilitate studies of Cryptosporidium cell biology. The ODM system could facilitate the study of host-pathogen interactions, Cryptosporidium-host specificity, or innate or cellular immune responses to Cryptosporidium infection stimulated in the intestinal epithelium. The fertilization switch reporter could be used to test factors or drugs that may have potential to interfere with Cryptosporidiums sexual reproduction. Organoid-based cell cultures in combination with the fertilization switch reporter could increase our understanding of sexual reproduction in Cryptosporidium, leading to vital information for the development of sexual reproduction inhibitors or vaccines that could shorten disease duration and prevent transmission.

microbiology↗

Characterizing biofilm interactions between Ralstonia insidiosa and Chryseobacterium gleum

Ralstonia insidiosa and Chryseobacterium gleum are bacterial species commonly found in potable water systems and these two species contribute to the robustness of biofilm formation in a model six-species community from the International Space Station (ISS) potable water system. Here, we set about characterizing the interaction between these two ISS-derived strains and examining the extent to which this interaction extends to other strains and species in these two genera. The enhanced biofilm formation between the ISS strains of R. insidiosa and C. gleum is robust to starting inoculum and temperature, occurs in some but not all tested growth media, and evidence does not support a soluble mediator or co-aggregation mechanism. These findings shed light on the ISS R. insidiosa and C. gleum interaction, though such enhancement is not common between these species based on our examination of other R. insidiosa and C. gleum strains, as well as other species of Ralstonia and Chryseobacterium. Thus, while the findings presented here increase our understanding of the ISS potable water model system, not all our findings are broadly extrapolatable to strains found outside of the ISS. ImportanceBiofilms present in drinking water systems and terminal fixtures are important for human health, pipe corrosion, and water taste. Here we examine the enhanced biofilm of cu-cultures for two very common bacteria from potable water systems, Ralstonia insidiosa and Chryseobacterium gleum. While strains originally isolated on the International Space Station show enhanced dual-species biofilm formation, terrestrial strains do not show the same interaction properties. This study contributes to our understanding of these two species in both dual and mono-culture biofilm formation.

microbiology↗