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Gut microbial communities can facilitate traits that are essential for invasive species survival in novel environments. Despite the global plethora of invasive social insect species, the role of the gut microbiome in colonisation success under novel dietary and environmental conditions is little known. The introduction of the European buff-tailed bumblebee, , to the island of Tasmania (Australia) ~30 years ago is of ecological concern due to its negative impacts on native vegetation and endemic bees. Here, we investigate how the gut microbiota of workers is affected by corbicular pollen diversity and environmental variation across diverse landscapes in an invaded island system. female workers were sampled from 19 sites across Tasmania, for which environmental data for seven variables were extracted. Using 16S rRNA and ITS2 metabarcoding on gut samples and foraged pollen, respectively, we examine how the gut microbiota of is influenced by pollen diversity, environmental variables and their interactions. Gut bacterial community composition was significantly predicted by site annual precipitation and the percentage of pasture, which each explained 9% of the variation. Gut bacterial diversity was also explained by precipitation and pasture (40% and 30% of the variation, respectively). Furthermore, a positive interaction between annual precipitation and annual temperature significantly predicted site gut bacterial diversity. The interaction effect of pollen diversity and summer wind velocity was also positively related to gut bacterial diversity. Our findings contribute to understanding how interactions between the local environment and pollen diet affect the bee gut microbiome and thus the health and success of invasive pollinators.
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http://dx.doi.org/10.1002/ece3.71717 | DOI Listing |
Mycologia
September 2025
Department of Biological Sciences, University of Alberta, Edmonton, Alberta, Canada.
Understanding the diversity of microscopic hyphomycetes is an ongoing effort, and many species remain undescribed. While studying lichen organismal composition in western Canada, metagenomic data revealed the presence of an unknown species of (, Ascomycota), a genus of pollen-parasitic fungus with no previous records in the region. We developed genus-specific primers to amplify DNA in lichen and adjacent substrate extractions, successfully detecting multiple lineages of across a wide geographic range within North America.
View Article and Find Full Text PDFAnn Bot
September 2025
National Museum, Prague, Czech Republic.
Background And Aims: Hornworts are rarely found in the fossil record, so each new find provides important insights regarding their evolution and diversity. Here we revisit a controversial genus, Notothylacites, described from the Late Cretaceous of Central Europe, which has liverwort morphology, but bears hornwort spores.
Methods: The fossil material was originally studied in 1970 by Pacltová using pollen preparation techniques.
Curr Biol
September 2025
Oosterland, Netherlands.
Tropical peatlands are globally significant ecosystems for carbon cycling and storage, hydrological regulation, and unique biodiversity. There is a diversity of tropical peatland types globally, but tropical peat-forming ecosystems are typically forested without the Sphagnum groundcover that is often characteristic of high-latitude peatlands. Here, we report on a unique tropical peatland situated in Belize that challenges our understanding of both tropical and extra-tropical peatlands owing to the presence of Sphagnum in the undergrowth.
View Article and Find Full Text PDFJ Exp Bot
September 2025
Department of Molecular Genetics, Ohio State University, Columbus, OH 43210, USA.
Pollen apertures are specialized regions on the pollen surface that receive little to no exine deposition, forming distinct structures important for pollen function. Aperture number, shape, and positions vary widely across species, resulting in diverse, species-specific patterns that make apertures fascinating from both cell-biological and evolutionary perspectives. Aperture formation requires developing pollen to establish polarity and define specific regions of the plasma membrane as aperture domains.
View Article and Find Full Text PDFCell
August 2025
College of Life Sciences, Guizhou Normal University, Guiyang 550025, China; State Key Laboratory of Hybrid Rice, College of Life Sciences, Wuhan University, Wuhan 430072, China. Electronic address:
Haploid induction (HI) through stress-treated microspore culture has gained significant attention for over half a century, yet the molecular mechanism underlying microspore fate transition for androgenesis remains poorly understood. Here, we demonstrate that microspore-specific expression of BABY BOOM (BBM) is sufficient to induce microspore cell fate transition and in vivo androgenesis in both tobacco and rice, effectively bypassing the requirement for stress treatment. We further identify BBM-activated Androgenesis Regulator 1 (BAR1) as a novel downstream effector of BBM that promotes microspore reprogramming.
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