The reproductive microbiome inhibits pollen germination in milkweed
Dalgleish, H. J.; Puzey, J.; Barlow, K.; Cunningham, O.; Davies, E.; Machiorlete, H.; Waynick, G.; Williamson, K.
10.1101/2025.09.25.678039 bioRxivShow abstract
We know very little about the reproductive microbiomes of plants. Microbes may play important roles in shaping pollination, fertilization, and seed production - processes which are important evolutionarily, ecologically, and agriculturally. Through a series of field and laboratory experiments, we show that the stigmatic microbiome in milkweeds influences the success of pollination. Isolation of individual bacterial and fungal taxa from stigmatic secretions allowed us to experimentally test their effects on pollen germination. These experiments demonstrate that individual taxa impact pollen differently, with many microbial taxa being neutral, but some being deleterious. Through isolation of microbes from the legs of pollinator insects we found that pollinators are a likely source for pollen-harmful bacterial taxa. Next, by utilizing a natural hybrid zone, we demonstrate species-specific responses to the stigmatic microbiome that be driving asymmetric patterns of gene-flow between species - with Asclepias exaltata being a better pollen host than A. syriaca. This study demonstrates that the reproductive microbiome is an underappreciated player in sexual reproduction of plants. Significance StatementThe results presented here demonstrate an important but previously unappreciated role of stigmatic microbes in plant sexual reproduction. This study demonstrates that the microbial taxa living in stigmatic secretions in milkweed impact pollen germination. We found that filtering out the microbes from stigmatic secretions of milkweed flowers dramatically increases pollen germination. Through isolating microbial taxa from both stigmatic secretions, and pollinator legs, we found that individual microbial taxa impact pollen differently, with many taxa being neutral, but some being deleterious. Finally, by utilizing a naturally occurring milkweed hybrid zone we demonstrated that microbial taxa in stigmatic secretions may be acting as asymmetric prezygotic barrier.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Additive genetic effects in interacting species jointly determine the outcome of caterpillar herbivory 94%
- An ancient antimicrobial protein co-opted by a fungal plant pathogen for in planta mycobiome manipulation 93%
- Natural diversity in the predatory behavior facilitates the establishment of a new robust model strain for nematode-trapping fungi 93%
Similar papers in this journal
- Ongoing convergent evolution of a selfing syndrome threatens plant-pollinator interactions 94%
- Marchantia polymorpha model reveals conserved infection mechanisms in the vascular wilt fungal pathogen Fusarium oxysporum 92%
- Inter-chromosomal linkage disequilibrium and linked fitness cost loci associated with selection for herbicide resistance 92%
Similar papers in this journal
- Analysis of wild plant pathogen populations reveals a signal of adaptation in genes evolving for survival in agriculture in the beet rust pathogen (Uromyces beticola) 94%
- Discarded sequencing reads uncover natural variation in pest resistance in Thlaspi arvense 94%
- Niche partitioning facilitates coexistence of closely related gut bacteria 94%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.