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de Paula, G. T.

Publications and source records attributed to de Paula, G. T..

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Bacterial secreted products selectively inhibit non-symbiotic fungi in bees

Microbial interactions play an important role in shaping microbiome assembly, such as by limiting invasion by harmful organisms that can directly affect the host or disrupt microbiome-associated benefits. Such interactions have been observed across systems, including in the microbiomes of key pollinators such as stingless bees. In Scaptotrigona depilis, bacteria associated with the larval diet inhibit potentially pathogenic filamentous fungi while allowing beneficial yeast symbionts to persist. The mechanisms underlying these effects, however, remain unclear. Here, we combined conditioned media (cell-free supernatant) assays with genomic and metabolomic analyses to investigate whether bacterial secreted products mediate these effects in the bee microbiome. Our results show that bacterial secreted products, particularly from prevalent bacterial taxa such as Apilactobacillus kunkeei, strongly affect fungal growth. Filamentous fungi, including the pathogen Aspergillus, were consistently inhibited, partly through substrate acidification driven by organic acids, but also through additional acidity-independent factors. In contrast, yeast responses were more variable: a non-symbiotic Zygosaccharomyces was inhibited by bacterial metabolites under near-neutral pH, whereas the symbiotic Zygosaccharomyces required for larval development was maintained or promoted under acid-conditioned media. Genomic analyses revealed limited canonical antifungal biosynthetic clusters in the most prevalent bacteria in the larval diet, while metabolomics identified extracellular peptide-like compounds across strains, suggesting a role for non-canonical secreted products. Together, these results show that bacterial secreted products play a key role in selectively shaping fungal communities in the stingless bee larval diet, providing first hints on a mechanistic basis for how microbial interactions structure this ecosystem.

microbiology↗

Further evidences of an emerging stingless bee-yeast symbiosis

Symbiotic interactions between microorganisms and social insects have been described as crucial for the maintenance of these multitrophic systems, as observed for the stingless bee Scaptotrigona depilis and the yeast Zygosaccharomyces sp. The larvae of S. depilis ingest fungal filaments of Zygosaccharomyces sp. to obtain ergosterol, which is the precursor for the biosynthesis of ecdysteroids that modulate insect metamorphosis. In this work we verified that nutritional fungal symbioses also occur in other species of stingless bees. We analyzed brood cell samples from 19 species of stingless bees collected in Brazil. The osmophilic yeast Zygosaccharomyces spp. was isolated from eight bee species, namely Scaptotrigona bipuctata, S. postica, S. tubiba, Tetragona clavipes, Melipona quadrifasciata, M. fasciculata, M. bicolor and Partamona helleri. These yeasts form pseudohyphae and also accumulate ergosterol in lipid droplets, similar to the pattern observed for S. depilis. The phylogenetic analyses including various Zygosaccharomyces revealed that strains isolated from the brood cells formed a branch separated from the previously described Zygosaccharomyces species, suggesting that they are new species of this genus and reinforcing the symbiotic interaction with the host insects. ImportanceBenefits exchanged in insect-fungus mutualisms include nutrition, protection, and dispersal. Fungal nutritional roles are well described for some eusocial insects, such as fungus growing ants and termites, but similar interaction in stingless bees was so far observed just in Scaptotrigona depilis. Here we expand the knowledge of yeast-bee symbiosis by analyzing the presence, cell morphologies, lipid accumulation and phylogenetic relationships of fungi isolated from brood cells and other locations of bee colonies. Zygosaccharomyces isolates were recovered from 42% of the bee species assessed, and probably represent new species showing pseudohyphae formation and lipid accumulation similar to S. depilis associated Zygosaccharomyces strains. The phylogenetic analyses suggested an evolutionary adaptation of Zygosaccharomyces spp. to the brood cell environment to provide nutritional benefits for the developing insect. Stingless bees play important ecosystem services, and our results raise the concern that fungicidal agents used in agriculture could disrupt this symbiosis, impacting bee health.

microbiology↗