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Biology subjects

Bunch, M. L.

Publications and source records attributed to Bunch, M. L..

3 recordsLinked to original sources

Efficient colonic colonization by Campylobacter jejuni requires the heme receptor ChuA

Previous research demonstrated that Campylobacter jejuni encodes a heme utilization system that facilitates heme-dependent growth under iron-limiting conditions and that transcription of this system is induced during human infection. Despite these observations, it remained unknown whether the heme transport system is required for colonization and disease in a susceptible host. To address this, we created individual non-polar deletion mutants of each component of the heme transport system and examined their ability to promote heme-dependent growth and iron uptake. From this work, we found that only the heme receptor, ChuA, was required for heme-dependent growth and iron acquisition, which supports the earlier work of another group. Further, we examined whether intestinal colonization, immune activation, and pathology were altered during infection with these mutants. After establishing that elevated heme and chuABCD expression occur during C. jejuni infection of IL-10-/- mice, we found that a mutant of the heme receptor, ChuA, exhibited significantly reduced colonization of the colon. In addition, we found that neutrophil and circulating monocyte recruitment were significantly reduced in the colon during infection with the ChuA mutant, but that populations of self-maintaining tissue macrophages remained high. Loss of ChuA reduced colonic colonization and was accompanied by diminished innate immune cell recruitment and intestinal pathology. Together, these findings identify ChuA-dependent heme acquisition as a key determinant of efficient colonic colonization and the associated inflammatory disease.

microbiology↗

Inflammation is the Driver of Butyrate-Producing Bacteria Change in Interleukin10 Knockout Mice

BackgroundAlterations of gut microbiota have been implicated in the development of inflammatory bowel disease. Specifically, patients with IBD show the reduced levels of gut bacteria to produce butyrate, a crucial metabolite for maintaining gut homeostasis, along with decreased levels of fecal butyrate. However, there is limited research on changes in butyrate-producing bacteria at various taxonomic levels during the development of inflammatory bowel disease. ResultsWe investigated the changes of butyrate-producing bacteria in interleukin10 knockout mice, a suitable IBD model, as these mice require gut microbiota to develop spontaneous chronic colitis. Our findings indicate increased inflammation and a metabolic shift from butyrate oxidation toward glycolysis in 9-week-old interleukin10 knockout mice. Furthermore, we observed significant changes in two terminal enzymes involved in butyrate production: a significant increase of butyrate kinase and a significant decrease of butyryl-CoA:acetate-CoA-transferase. These observations align with an increased abundance of Coprococcus comes, which utilizes butyrate kinase, and a decreased abundance of Faecalibacterium prausnitzii that utilizes butyryl-CoA:acetate-CoA-transferase. Moreover, reduced levels of acetate, a necessary co-substrate for butyryl-CoA:acetate-CoA-transferase activity, were observed in interleukin10 knockout mice. ConclusionsThese findings enhance our understanding of changes in butyrate-producing bacteria populations at various taxonomic levels, ranging from phylum to gene level in 9-week-old interleukin10 knockout mice. Furthermore, these data suggest a potential for diagnosing IBD at an early stage by analyzing the composition of butyrate-producing bacteria.

microbiology↗

Efficient gastrointestinal colonization by Campylobacter jejuni requires components of the ChuABCD heme transport system

Previous research demonstrated that Campylobacter jejuni encodes a heme utilization system that facilitates heme-dependent growth under iron-limiting conditions and that transcription of this system is induced during human infection. Despite these observations, it remained unknown whether the heme transport system is required for colonization and disease in a susceptible host. To address this, we created individual non-polar deletion mutants of each component of the heme transport system, as well as a total deletion of the inner membrane transporter, ChuBCD, and examined their ability to promote heme-dependent growth and iron uptake. From this work, we found that only the heme receptor, ChuA, was required for heme-dependent growth and iron acquisition, which supports earlier work of another group. Further, we examined whether intestinal colonization, immune activation, and pathology were altered during infection with these mutants. After establishing that elevated heme and chuABCD expression occurs during C. jejuni infection of IL-10-/- mice, we found that heme transport mutants exhibited significantly reduced fecal shedding and colonization of the cecum and colon. In addition, we found that neutrophil and macrophage recruitment and intestinal pathology often remained intermediately elevated despite decreased bacterial loads. These results suggest that heme utilization promotes efficient colonization and full pathogenicity in C. jejuni, but that neither is completely abrogated in its absence.

microbiology↗