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1.
Gut Microbes ; 16(1): 2297831, 2024.
Article in English | MEDLINE | ID: mdl-38165179

ABSTRACT

The prevalence of inflammatory bowel disease (IBD) is rising globally; however, its etiology is still not fully understood. Patient genetics, immune system, and intestinal microbiota are considered critical factors contributing to IBD. Preclinical animal models are crucial to better understand the importance of individual contributing factors. Among these, the dextran sodium sulfate (DSS) colitis model is the most widely used. DSS treatment induces gut inflammation and dysbiosis. However, its exact mode of action remains unclear. To determine whether DSS treatment induces pathogenic changes in the microbiota, we investigated the microbiota-modulating effects of DSS on murine microbiota in vitro. For this purpose, we cultured murine microbiota from the colon in six replicate continuous bioreactors. Three bioreactors were supplemented with 1% DSS and compared with the remaining PBS-treated control bioreactors by means of microbiota taxonomy and functionality. Using metaproteomics, we did not identify significant changes in microbial taxonomy, either at the phylum or genus levels. No differences in the metabolic pathways were observed. Furthermore, the global metabolome and targeted short-chain fatty acid (SCFA) quantification did not reveal any DSS-related changes. DSS had negligible effects on microbial functionality and taxonomy in vitro in the absence of the host environment. Our results underline that the DSS colitis mouse model is a suitable model to study host-microbiota interactions, which may help to understand how intestinal inflammation modulates the microbiota at the taxonomic and functional levels.


Subject(s)
Colitis , Gastrointestinal Microbiome , Inflammatory Bowel Diseases , Microbiota , Humans , Mice , Animals , Colon/metabolism , Inflammatory Bowel Diseases/pathology , Inflammation/pathology , Dextran Sulfate/toxicity , Disease Models, Animal , Mice, Inbred C57BL
2.
Curr Biol ; 27(2): 166-174, 2017 Jan 23.
Article in English | MEDLINE | ID: mdl-28041793

ABSTRACT

Motile cilia are actively beating hair-like structures that cover the surface of multiple epithelia. The flow that ciliary beating generates is utilized for diverse functions and depends on the spatial location and biophysical properties of cilia. Here we show that the motile cilia in the nose of aquatic vertebrates are spatially organized and stably beat with an asymmetric pattern, resulting in a robust and stereotypical flow around the nose. Our results demonstrate that these flow fields attract odors to the nose pit and facilitate detection of odors by the olfactory system in stagnant environments. Moreover, we show that ciliary beating quickly exchanges the content of the nose, thereby improving the temporal resolution of the olfactory system for detecting dynamic changes of odor plumes in turbulent environments. Altogether, our work unravels a central function of ciliary beating for generating flow fields that increase the sensitivity and the temporal resolution of olfactory computations in the vertebrate brain.


Subject(s)
Cilia/physiology , Epithelium/physiology , Nose/physiology , Smell , Zebrafish/physiology , Animals , Biophysical Phenomena , Odorants , Olfactory Receptor Neurons/cytology , Olfactory Receptor Neurons/metabolism , Signal Transduction , Zebrafish Proteins/metabolism
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