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Parrish, A.

Publications and source records attributed to Parrish, A..

4 recordsLinked to original sources

Gut microbiome-based prediction of autoimmune neuroinflammation

Gut commensals are linked to neurodegenerative diseases, yet little is known about causal and functional roles of microbial risk factors in the gut-brain axis. Here, we employed a pre-clinical model of multiple sclerosis in mice harboring distinct complex microbiotas and six defined strain combinations of a functionally-characterized synthetic human microbiota. Discrete microbiota compositions resulted in different probabilities for development of severe autoimmune neuroinflammation. Nevertheless, assessing presence or the relative abundances of a suspected microbial risk factor failed to predict disease courses across different microbiota compositions. Importantly, we found considerable inter-individual disease course variations between mice harboring the same microbiota. Evaluation of multiple microbiome-associated functional characteristics and host immune responses demonstrated that the immunoglobulin A-coating index of Bacteroides ovatus before disease onset is a robust individual predictor for disease development. Our study highlights that the "microbial risk factor" concept needs to be seen in the context of a given microbial community network, and host-specific responses to that community must be considered when aiming for predicting disease risk based on microbiota characteristics.

microbiology↗

Non-Local Conceptual Combination

It is uncontroversial that the syntax of an expression largely determines its meaning. For example, there is no way to interpret a sentence like "the blue hat has a white bow" as telling you that there is a white hat that has blue bow. But to what extent are the brains combinatory interpretive routines exclusively locked into the structures given by syntax? Consider another example: "The blue color of his hat is pretty." This sentence tells us that a color is pretty, that the color is blue and that the color belongs to a hat. What the syntax of this sentence does not give us is a combination of "blue" and "hat." But clearly, if we were to draw a picture of the meaning of this sentence, it would have a blue hat in it. We asked: upon encountering "hat" in this sentence, do our brains combine the features of "blue" with the features of "hat," despite the long distance between them and no direct syntactic relation? By using a known neural measure of conceptual combination in the left anterior temporal lobe, we obtained evidence using MEG that our brains appear to perform such a long-distance conceptual combination that does not track the syntax. Intriguingly, word (or rather concept) order affected the directionality of the effect. While the effect of concept order remains a topic for future work, our results overall suggest that the meaning composition system of language is likely richer than the combinatory steps predicted from syntactic structures.

neuroscience↗

Increased gut microbial mucin foraging promotes clearance of a parasitic worm

BACKGROUND & AIMSHost-secreted gastrointestinal mucus plays a key role in the expulsion of intestinal nematode parasites. A balance between mucin secretion by the host and the gut microbial mucin foraging is essential to maintain the intestinal homeostasis, yet little is known about how changes in the mucin-microbiome interactions affect worm infections. Here, we aimed to examine how mucin foraging activity by the microbiome changes the course of parasitic worm infections by modulating the host immune responses. METHODSWe utilized a gnotobiotic mouse model containing a synthetic human gut microbiota that allows for: 1) a complete removal of the mucin-degrading bacteria from the community; and 2) diet-driven manipulation of the microbiota toward mucin foraging. We infected mice with a murine nematode, Trichuris muris, which resembles human infection with Trichuris trichiura. We examined the temporal dynamics of worm infection including worm burden and the host immune responses, and coupled these readouts to the microbial changes and mucin foraging activity. RESULTSThe absence of mucin-degrading bacteria in the microbiota enhances susceptibility to parasitic infection--evidenced by higher worm number--by promoting stronger Th1 immune responses. Dietary fiber deprivation increases the microbial mucin-foraging activity, which coincides with a shift in host immune responses from susceptible (chronic, Th1 type) to resistant (acute, Th2 type), thereby promoting worm clearance. CONCLUSIONSOur results provide mechanistic insights into how the colonic mucin-degrading bacteria promote anti-parasitic immunity through modulation of the host immune responses. Our study documents a clinically-relevant, novel link in the microbiome-parasite-host immune axis that is useful prerequisite knowledge in managing parasitic infections.

immunology↗

Deprivation of dietary fiber in specific-pathogen-free mice promotes susceptibility to the intestinal mucosal pathogen Citrobacter rodentium

The change of dietary habits in Western societies, including reduced consumption of fiber, is linked to alterations in gut microbial ecology. Nevertheless, mechanistic connections between diet-induced microbiota changes that affect colonization resistance and enteric pathogen susceptibility are still emerging. We sought to investigate how a diet devoid of soluble plant fibers impacts the structure and function of a conventional gut microbiota in specific-pathogen-free (SPF) mice and how such changes alter susceptibility to a rodent enteric pathogen. We show that absence of dietary fiber intake leads to shifts in the abundances of specific taxa, microbiome-mediated erosion of the colonic mucus barrier, a reduction of intestinal barrier-promoting short-chain fatty acids, and increases in markers of mucosal barrier integrity disruption. Importantly, our results highlight that these low fiber diet-induced changes in the gut microbial ecology collectively contribute to a lethal colitis by the mucosal pathogen Citrobacter rodentium, which is used as a mouse model for enteropathogenic and enterohemorrhagic Escherichia coli (EPEC and EHEC, respectively). Our study indicates that modern, low-fiber Western diets might make individuals more prone to infection by enteric pathogens via the disruption of mucosal barrier integrity by diet-driven changes in the gut microbiota, illustrating possible implications for EPEC and EHEC infections.

microbiology↗