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Biology subjects

Pawlowic, M. C.

Publications and source records attributed to Pawlowic, M. C..

3 recordsLinked to original sources

Intraepithelial lymphocytes exhibit selective immunity to intestinal pathogens

Intraepithelial lymphocytes (IEL) are abundant, tissue-resident T cells critical for intestinal immune surveillance, yet their precise roles have remained elusive due to the lack of models enabling their selective genetic ablation. Here, we report the generation of Gzmb-Cre knock-in mice, that when crossed with inducible Diphtheria toxin receptor mice, allows targeted and inducible ablation of IELs without perturbing peripheral immunity. Using this model (referred to as IELiDTR), we demonstrate that IELs are dispensable for intestinal homeostasis, including epithelial architecture, barrier function and microbial composition. However, loss of IELs led to increased intestinal infection by Salmonella Typhimurium and Cryptosporidium parvum, but did not affect responses to Listeria monocytogenes infection or DSS colitis. Interestingly, IEL deficiency reduced fecundity of the intestinal nematode, Heligmosomoides polygyrus, despite unaltered worm burden, suggesting a permissive role in helminth colonization. These findings position IELs as evolutionary-tuned sentinels against co-evolved pathogens that can cause lethal diarrheal diseases, and establish the IELiDTR mouse as a vital genetic tool for dissecting IEL function in host-pathogen interactions in vivo.

immunology↗

Tissue atlas of Cryptosporidium parvum infection reveals contrasts between the natural neonatal calf model and laboratory mouse models

Cryptosporidium is an apicomplexan parasite that causes diarrhoeal disease. The species C. parvum is zoonotic and causes significant morbidity and mortality for both humans and farm animals; most commonly, calves and lambs. A One Health approach that integrates human, animal and environmental health perspectives is required to tackle this disease. Current treatments are limited and ineffective, meaning there is an urgent need to develop new anti-cryptosporidials both for human and animal health. The neonatal calf model is a natural model of infection employed as a tool for drug discovery or generating parasite material. However, the model is seldom utilised to investigate host-parasite interaction. Fundamental information about this model, including the location of the parasite in the gut, is lacking. It is also unclear how the more commonly utilised immunocompromised mouse models of cryptosporidiosis compare to the neonatal calf model. To address this, we established an acute, moderate experimental C. parvum infection in neonatal calves. Using transgenic parasites, we created a tissue atlas of infection for neonatal calf gut and immunocompromised mouse models and mapped and quantified infection to draw robust comparisons between models. Cryptosporidium infection was observed at high levels throughout the neonatal calf gastrointestinal tract and was not limited to the ileal-cecal junction, as previously suggested. This infection pattern is most similar to the acute cryptosporidiosis mouse model, interferon-gamma knockout mice (IFN{gamma}KO). Infection with transgenic parasites allowed us to perform in vivo and ex vivo tissue imaging of the chronic cryptosporidiosis mouse model, NOD SCID Gamma KO (NSG) mice. In contrast, in NSG mice infection is low in the small intestines and highest in the caecum and colon. Understanding the true distribution of infection in the gastrointestinal tract of these three key animal models provides new perspectives on how to interpret and design drug efficacy studies and provides new insight into host-pathogen interaction.

microbiology↗

Cryptosporidium Oocyst Wall Proteins are true oocyst wall proteins, with COWP8 functioning to hold the inner and outer layers of the oocyst wall together

Cryptosporidiosis is a significant cause of diarrhoeal disease contributing to substantial morbidity and mortality for the immunocompromised and for young children, especially those who are malnourished. There are no vaccines available and no effective treatments for these patients. Another challenge is that Cryptosporidia are waterborne and resistant to common water treatments including chlorination. Cryptosporidia are transmitted as an oocyst that is made up of a hardy oocyst wall that protects four parasites. Little is understood about how the oocyst is constructed, its composition, and the how it resists chlorination. A family of predicted Cryptosporidium Oocyst Wall Proteins (COWPs) was identified from the genome. Using a genetic approach, we confirm that all members of the COWP family localise to the oocyst wall. Our studies indicate that COWP2, 3 and 4 localise specifically to the oocyst "suture", a zipper-like structure on the oocyst wall from which parasites emerge during infection. In parasites lacking COWP8, we observe that the inner and outer layers of the oocyst wall are no longer associated suggesting a role for COWP8 in oocyst wall morphology. Despite loss of COWP8, these transgenic parasites are viable, unchanged in mechanical strength, and retain resistance to chlorination. This work sets the foundation for future exploration of Cryptosporidium transmission.

microbiology↗