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Although still underrepresented in ecological research, competitive interactions between distantly related organisms (so-called "interkingdom competition") are expected to be widespread in various ecosystems, with yet unknown consequences for, e.g. trophic interactions. In the model host-parasitoid system Drosophila melanogaster-Asobara tabida, toxic filamentous fungi have been shown to be serious competitors that critically affect the density-dependent survival of host Drosophila larvae. This study investigates the extent to which the competing mould Aspergillus niger affects key properties of the well-studied Drosophila-parasitoid system and how the host-parasitoid interaction influences the microbial competitor. In contrast to slightly positive density-dependent host mortality under mould-free conditions, competing A. niger mediated a strong Allee effect for parasitised larvae, i.e. mortality decreased with increasing larval density. It was found that the common toxic fungal metabolite kojic acid is not responsible for higher death rates in parasitised larvae. Single parasitised Drosophila larvae were less harmful to fungal reproduction than unparasitised larvae, but this effect vanished with an increase in larval density. As predicted from the negative effect of fungi on host survival and thus on parasitoid fitness at low larval densities, A. tabida females spent less time foraging in fungus-infested patches. Interestingly, even though high host larval densities increased host survival, parasitoids still reduced their search efforts in fungus-infested patches, indicating a benefit for host larvae from feeding in the presence of noxious mould. Thus, this experimental study provides evidence of the potentially important role of interkingdom competition in determining trophic interactions in saprophagous animal communities and the dynamics of both host-parasitoid and microbial populations.
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http://dx.doi.org/10.1007/s00442-007-0900-2 | DOI Listing |
Biol Open
December 2024
Laboratory for Clinical Genomics and Advanced Technology, Department of Pathology and Laboratory Medicine, Dartmouth-Hitchcock Medical Center,Lebanon, NH 03756, USA.
Parasitoid wasps exert strong selective pressure on their hosts, driving the evolution of diverse defense strategies. Drosophila, a widely studied model organism, hosts a wide range of parasites, including parasitoid wasps, and has evolved immune and behavioral mechanisms to mitigate the risk of parasitization. These defenses range from avoidance and evasion to post-infection immune responses, such as melanotic encapsulation.
View Article and Find Full Text PDFInsects
November 2024
Department of Entomology, National Taiwan University, Taipei 10617, Taiwan.
The oriental fruit fly, (Hendel) (Diptera: Tephritidae), is a notable agricultural pest that undergoes pupation in the soil. Mortality risk from predation and parasitism decreases as the depth of the pupal location increases from the ground surface, with a one-centimetre increase in depth causing a significant change. Soil properties, such as moisture and hardness, influence pupation depth, but the effect of temperature has not been fully tested.
View Article and Find Full Text PDFSTAR Protoc
December 2024
Department of Molecular and Systems Biology, Geisel School of Medicine at Dartmouth, Hanover, NH 03755, USA. Electronic address:
Drosophila and its parasitoids provide an ecologically relevant model for studying host-parasitoid biology, focusing on the behavioral and physiological responses involved in host defensive strategies and parasitoid countermeasures. Here, we outline a protocol for rearing Pachycrepoideus, a pupal parasitoid wasp, and a behavioral assay to assess the long-term impact of parasitoid exposure on adult Drosophila. We detail the steps for preparing and cohabiting Drosophila with the wasps, documenting egg-laying, and analyzing reproductive responses and eclosion in fruit flies.
View Article and Find Full Text PDFBull Math Biol
October 2024
Mathematics, Irving K. Barber School of Arts and Sciences Unit 5 BLDG SCI, University of British Columbia Okanagan, 1177 Research Road, Kelowna, BC, V1V 1V7, Canada.
Continuous-time predator-prey models admit limit cycle solutions that are vulnerable to the phenomenon of phase-sensitive tipping (P-tipping): The predator-prey system can tip to extinction following a rapid change in a key model parameter, even if the limit cycle remains a stable attractor. In this paper, we investigate the existence of P-tipping in an analogous discrete-time system: a host-parasitoid system, using the economically damaging forest tent caterpillar as our motivating example. We take the intrinsic growth rate of the consumer as our key parameter, allowing it to vary with environmental conditions in ways consistent with the predictions of global warming.
View Article and Find Full Text PDFCurr Opin Insect Sci
December 2024
Department of Ecology, Swedish University of Agricultural Sciences, Sweden.
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