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Ruscher, R.

Publications and source records attributed to Ruscher, R..

3 recordsLinked to original sources

Plant Molecules Protect Against Inflammatory Bowel Disease by Restoring Gut Microbiota-Immune Homeostasis and Suppressing Pro-inflammatory Markers

Inflammatory bowel disease (IBD) is associated with chronic intestinal inflammation and gut microbial dysbiosis, yet effective microbiome-targeted therapeutics remain limited. Here, we investigated the anti-inflammatory and microbiome-modulating activities of metabolites isolated from Garcinia brassii, an endemic species of the Australian Wet Tropics. Five compounds, including a new natural product named garcitine, were isolated and structurally characterised. In human immune cells, garcinol and garcinia biflavonoid 1 significantly suppressed lipopolysaccharide-induced production of IL-1{beta}, IL-6, and TNF without detectable cytotoxicity, while parvifoliol F selectively inhibited IL-1{beta} release. Therapeutic efficacy was further evaluated in a TNBS-induced murine colitis model, where garcinia biflavonoid 1 and parvifoliol F significantly reduced colonic inflammation and improved histopathological outcomes. 16S rRNA sequencing demonstrated that both compounds restored gut microbial homeostasis by reversing colitis-associated dysbiosis and reducing inflammation-associated microbial signatures. Functional pathway prediction further suggested suppression of pro-inflammatory microbial metabolic pathways following treatment. Together, these findings demonstrate that Garcinia-derived metabolites alleviate experimental colitis through coordinated immunomodulatory and microbiome-reprogramming mechanisms and identify garcinia biflavonoid 1 and parvifoliol F as promising candidates for microbiome-targeted IBD therapeutics.

immunology↗

Malnourishment and expanded microbiome maintain superior efficacy of the recombinant tuberculosis vaccine BCG::ESAT-6-PE25SS

Tuberculosis (TB) remains the leading cause of infectious mortality. The limited efficacy of the only TB vaccine, Bacille Calmette-Guerin (BCG) against pulmonary disease necessitates improved vaccines. Host factors such as malnutrition and microbiome composition shape immune responses in humans, though these factors are overlooked in preclinical vaccine evaluation. Here we show that a recombinant BCG strain, BCG::ESAT-6-PE25SS, confers superior protection compared to BCG across murine models of malnutrition, antibiotic-induced dysbiosis and environmentally enriched microbiota. Unexpectedly, malnourished mice displayed reduced Mycobacterium tuberculosis (Mtb) burden, associated with altered host metabolism and immune composition. Microbiome disruption increased TB susceptibility, whereas diversification of microbiota enhanced resistance and immune heterogeneity. Vaccine efficacy correlated with enrichment of known immunomodulatory microbial taxa. These findings suggest diet-microbiome-immunity interactions as potential key determinants of TB pathogenesis and provide evidence for the importance of vaccine candidate evaluation under physiologically relevant co-morbid conditions

microbiology↗

Lung epithelial progenitor-mediated release of TGF-β regulates induction and persistence of lung CD8+ TRM cells following mucosal BCG vaccination

A principal reason for the high global morbidity and mortality of tuberculosis (TB) is the lack of efficacy of the only licensed TB vaccine, Bacillus Calmette-Guerin (BCG), as parenteral BCG does not induce local pulmonary immune memory. Animal studies have shown that mucosal BCG vaccination provides superior protection against TB due to generation of lung resident memory T cells (TRM). Here, we demonstrated that following mucosal vaccination with the genetically modified virulent BCG strain, BCG::RD1, distal airway epithelial progenitors were mobilized to assist with restoration of alveolar epithelium. By way of their migration-mediated activation of latent TGF-{beta}, lung CD8+ TRM differentiation was induced. Mucosal vaccinations using nonvirulent strains of BCG in which airway epithelial progenitors were not mobilized, as well as genetic inhibition of migration-mediated activation of TGF-{beta}, resulted in significantly lower numbers of lung CD8+ TRM. In addition, we discovered CD8+ cells with ex-lung and stem-like TRM phenotypes that persisted in the lung-draining mediastinal lymph nodes for up to four months following mucosal BCG vaccination. These results link airway epithelial progenitor-mediated repair of injured lung tissue with induction of resident T cell memory and delineate why persistence of TRM in the lung is short-lived. These findings may explain why mucosal vaccination with virulent BCG strains is more protective against TB and thus have notable implications for future TB vaccine development. One Sentence SummaryFollowing lung damage due to inhalation of virulent BCG, distal airway epithelial progenitor cells interact with lung CD8+ T cells to induce their differentiation into resident memory T cells via migration-mediated activation of TGF-{beta}.

immunology↗