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De Buck, J.

Publications and source records attributed to De Buck, J..

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Mycobacterium avium subspecies paratuberculosis targets M cells in enteroid-derived monolayers through interactions with β1 integrins

Paratuberculosis is a global infectious disease caused by the bacterium, Mycobacterium avium subspecies paratuberculosis (MAP). MAP infection of ruminants triggers progressive wasting disease characterized by granulomatous lymphadenitis, enteritis, and severe intestinal pathology that often requires early culling of the animal. The resulting economic burden is significant and MAP exposure in the workplace constitutes a significant zoonotic risk. While it has been established the MAP propagates within resident intestinal immune cells, including macrophages and dendritic cells, significantly less is known about how it attaches, enters and traverses the epithelium. The current paradigm suggests MAP infects the small intestinal epithelium by targeting both enterocytes and M cells, with a potential tropism for the latter. In the current study, we employed emerging enteroid technology to identify the target cells for MAPs entry into the small intestinal epithelium. We generated mouse enteroid-derived monolayers with functional M cells capable of transcytosis. Upon exposure to MAP, the bacteria were detected within both enterocytes and M cells. Following quantification, it was apparent that MAP exhibited tropism for M cells. Complementary studies using the Caco-2/Raji-B co-culture system provided similar results, wherein MAP was found primarily in cells expressing functional M cell markers. Since other mycobacteria have been shown to initiate cell attachment and entry by using a fibronectin-bridging process, we tested whether these interactions were involved in MAPs targeting of M cells. We found that MAPs M cell tropism was significantly enhanced in the presence of fibronectin and that this effect was abolished when monolayers were pretreated with an integrin-blocking peptide. Taken together, our data indicate the MAP preferentially targets M cells and that this process involves a fibronectin-bridging process. Furthermore, our data suggest that targeting M cell-associated integrins could provide a mechanism to reduce MAP infection and transmission within livestock herds. Author SummaryIn the current study, we sought to determine the target cell for Mycobacterium avium subspecies paratuberculosis (MAP), which is the causative agent of Johnes disease (JD, also termed paratuberculosis) in ruminants. While MAP primarily infects domestic ruminants including cattle, sheep, goats, and deer, it has also been shown to infect wildlife throughout the world, including cats, rabbits, badgers, and wood mice. Given the significant economic burden of MAP infections in livestock, its role in the pathogenesis of JD has been the focus of much research. However, the broad diversity of MAP-susceptible hosts and reservoirs observed calls into question the true scope of MAP infection and transmission and the true number of susceptible hosts. Furthermore, MAP constitutes a zoonotic threat that some have linked to intestinal pathologies, including Crohns disease. To date, it is still not known exactly how MAP attaches, enters and traverses the small intestinal epithelium to eventually propagate within resident macrophages and dendritic cells to cause eventual disease. To address this question, we developed a model of the small intestinal epithelium, from mouse enteroids, that contained functional M cells. We found that MAP selectivity enters M cells and that this involves fibronectin-bridging process that targets M cell-associated {beta}1-integrins.

cell biology↗

Genes associated with fitness and disease severity in the pan-genome of mastitis-associated Escherichia coli

Bovine mastitis caused by Escherichia coli may manifest as subclinical through severe acute disease and can be transient or persistent in nature. Little is known about bacterial factors that impact clinical outcomes or allow some strains to outcompete others in the mammary gland (MG) environment. Mastitis-associated E. coli (MAEC) may have distinctive characteristics which may contribute to the varied nature of the disease. In this study, we sequenced the genomes of 96 MAEC strains isolated from cattle with clinical mastitis (CM). We utilized clinical severity data to perform genome-wide association studies to identify accessory genes associated with strains isolated from mild or severe CM, or with high or low competitive fitness during in vivo competition assays. Genes associated with pathogenic or commensal strains isolated from bovine and avian sources were also identified. A type-2 secretion system (T2SS) and a chitinase (ChiA) exported by this system were strongly associated with pathogenic isolates compared with commensal strains. Strains carrying these genes also had higher competitive fitness during experimental intramammary infections. Deletion of chiA from MAEC isolates decreased their adherence to cultured bovine mammary epithelial cells, suggesting that the increased fitness associated with strains possessing this gene may be due to better attachment in the MG. ImportanceBovine mastitis caused by MAEC compromises animal health and inflicts substantial product losses in dairy farming. Given their high levels of intraspecies genetic variability, virulence factors of commonly used MAEC model strains may not be relevant to all members of this group. Here we analyzed clinical data as well as fitness (quantified in a mouse MG model) of diverse MAEC isolates to identify accessory genes that contribute to infection. We demonstrated a novel role for chitinase in promoting attachment to mammary epithelial cells. Reverse genetic approaches can be applied to the collection of strains and their complete genome sequences that we have presented here. Overall, these results provide a much richer understanding of MAEC and suggest bacterial processes that may underlie the clinical diversity associated with mastitis and their adaptation to this unique environment.

microbiology↗