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Blackman, C.

Publications and source records attributed to Blackman, C..

2 recordsLinked to original sources

PAR2 signaling shapes microbial and metabolic remodeling along the gut-lung axis

Introduction: Protease activated receptor (PAR2) is a prominent sensor of environmental and microbial proteases and may serve as an important interface between the host epithelium and mucosal microbes. However, whether PAR2 helps shape microbial community structure and function at barrier surfaces remains unclear. To address this, we examined how PAR2 deficiency or activation affects microbial composition and metabolic potential across the gut lumen, airway lumen, and lung tissue in the context of exposure to protease-rich house dust mite allergen (HDM) exposure. Methods: Wild type and PAR2 deficient littermates of both sexes received a single intranasal challenge with phosphate buffered saline, HDM extract, or a selective PAR2 agonist. Microbial communities from feces, bronchoalveolar lavage fluid (BALF), and lung tissue were profiled using 16S rRNA gene sequencing and PICRUSt2 based functional inference to assess compartment specific taxonomic and metabolic responses. Results: Alpha and beta diversity remained stable across all experimental groups, but distinct conditions resulted in compartment specific remodeling of the microbial population. At baseline, PAR2 deficiency altered multiple genera in the gut and lung and shifted predicted pathways linked to amino acid, lipid, and sulfur metabolism. HDM induced broad taxonomic and functional changes in the gut and lung tissue, including shifts in coenzyme A biosynthesis, reductive TCA activity, lysine fermentation, and nucleotide biosynthesis, while producing only limited taxonomic changes in BALF. PAR2 signaling accounted for a substantial portion of HDM driven remodeling, and direct PAR2 activation reproduced many compartment specific effects, including mucin derived sugar degradation in the gut and suppression of nucleotide biosynthesis in the lung. Sex moderately modified microbial and metabolic responses, with males and females exhibiting divergent, condition dependent functional biases across gut and lung. Conclusion: These findings identify PAR2 as a mucosal niche modifying receptor whose activation or loss reshapes microbial composition and metabolic potential along the gut-lung axis.

microbiology↗

Conserved strategies underpin the replicated evoluton of aridity tolerance in trees

Predicting forest responses to climate change requires a detailed understanding of trait-environment coordination. Adaptation to environment comprises both conserved and labile components of trait variation. However, few studies explore the decomposition of trait-environment relationships in a rigorous phylogenetic framework. Combining a revised phylogeny with trait, climate and soil data to achieve unprecedented species coverage ([~]85%), we identified patterns of replicated evolution that allowed the evergreen tree genus, Eucalyptus, to rapidly radiate across Australia in response to aridification. Eucalypts from arid regions are short, produce dense wood, and have small, physically robust leaves with high nitrogen content, promoting hydraulic safety and economies in photosynthetic water use. Phylogenetic modelling reveals strong niche conservatism, with adaptation to aridity occurring primarily via clade-level divergences, followed by phylogenetically independent adjustments to local conditions. Ancestral state reconstructions accounting for trends in the paleoclimate record indicate that transitions in aridity tolerance are associated with distinct signals of environmental filtering and directional selection on functional trait variation. However, astonishing repeatability of trait changes in different clades reveals a narrow optimal solution to water availability, opening a path to predict future species distributions from phylogenetically structured trait data and signalling major implications for functional and species diversity under progressive climate change.

evolutionary biology↗