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Michiels, K.

Publications and source records attributed to Michiels, K..

2 recordsLinked to original sources

From Diversity to Dominance: How Salt and CO2 Shape LAB-dominated Ecosystems in Vegetable Fermentations

Research on microbial ecosystems is often challenging due to high diversity of microbial taxa present and the complexity of controlling environmental variables. To address these challenges, fermented foods are simpler and more reproducible model ecosystems, where both community composition and environmental factors can be more precisely controlled and manipulated. In this study, we focused on fermented vegetables which are typically dominated by lactic acid bacteria (LAB). It is not completely understood why lactic acid bacteria (LAB) consistently drive the spontaneous fermentation of vegetables such as cabbage and carrots and how variables such as vegetable substrates, salt addition, and carbon dioxide levels can impact microbial community dynamics. Here, we explored the temporal microbial dynamics in standardized fermentations of 11 different vegetables (including beetroot, bell pepper, cabbage, carrot, cucumber, fennel, green asparagus, leek, parsnip, sunroot, and tomato), revealing a consistent dominance of Leuconostoc and other LAB. Additionally, we investigated the impact of varying salt concentrations, demonstrating that lower salt levels resulted in a delayed appearance of the typically dominant LAB community, while simultaneously revealing a higher abundance of Weissella and various Enterobacterales taxa. These effects imposed by reduced salt concentrations were mitigated by CO2 injection, which reverted the enhanced Enterobacterales levels and increased the overall abundance of Lactobacillales. This study demonstrates how targeted manipulation of environmental parameters, such as salinity and gas composition, can be used to uncover ecological principles governing microbial succession and community assembly in reproducible fermentation-based model ecosystems. ImportanceUnderstanding the ecological principles that shape microbial community assembly is essential for advancing our knowledge of microbial ecosystems. Fermented vegetables, increasingly popular among the general population, provide tractable and reproducible model systems to study microbial succession under controlled environmental conditions. By systematically manipulating variables such as vegetable type, salinity and gas composition, we uncovered the effect of these factors on the microbial dynamics throughout the fermentation. These insights not only contribute to a better understanding of the microbial ecology of these man-made food systems but also suggest directions for novel strategies to optimize fermentation processes for producing faster, safer, and more flavorful foods.

microbiology↗

Lacticaseibacillus rhamnosus GG in a chewable colonizes the nose and facilitates local immune benefits in allergic rhinoconjunctivitis patients

Current treatments fall short in managing allergic rhinitis (AR), emphasizing the need for additional strategies. Beneficial bacteria application shows promise in AR, however most studies focus on oral probiotic administration without monitoring the applied strains in the upper respiratory tract (URT) and their local effects. In this randomized, double-blind, placebo-controlled trial, the probiotic Lacticaseibacillus rhamnosus GG was administered via chewable tablets in seasonal AR patients, randomized to probiotic (n=33) or placebo (n=31) groups. Per-protocol analysis of the URT microbiome, immune markers and AR symptoms was performed. L. rhamnosus GG trafficked from chewables to the oropharynx (77%, p=0.02) and nasopharynx (41%, p<0.0001). Control of self-reported AR symptoms via validated questionnaires under grass pollen exposure was observed after two weeks of probiotic administration and not upon placebo. A local decrease in salivary interleukin-4 (p < 0.05) and nasal IL-13 (p < 0.0001) was observed in the probiotic group. These data indicate that L. rhamnosus GG chewables can target the URT and exert local effects on key allergy cytokines after temporal probiotic engraftment. ImportanceAllergic rhinitis (AR) or hay fever is a highly prevalent condition, impacting nearly half the population in some countries. Supplementation of beneficial bacteria or probiotics has gained increasing attention in AR, and a key innovative way to do this is direct administration to the upper airways. Our study shows for the first time that the model probiotic strain Lacticaseibacillus rhamnosus GG can traffic to the nose in AR patients when administered via a slow-releasing chewable tablet. This trafficking is associated with local benefits in the airways, including on grass pollen-induced nasal symptoms and allergy-related cytokines.

microbiology↗