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result(s) for
"Gloder, Gabriele"
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Parasitism causes changes in caterpillar odours and associated bacterial communities with consequences for host-location by a hyperparasitoid
2023
Microorganisms living in and on macroorganisms may produce microbial volatile compounds (mVOCs) that characterise organismal odours. The mVOCs might thereby provide a reliable cue to carnivorous enemies in locating their host or prey. Parasitism by parasitoid wasps might alter the microbiome of their caterpillar host, affecting organismal odours and interactions with insects of higher trophic levels such as hyperparasitoids. Hyperparasitoids parasitise larvae or pupae of parasitoids, which are often concealed or inconspicuous. Odours of parasitised caterpillars aid them to locate their host, but the origin of these odours and its relationship to the caterpillar microbiome are unknown. Here, we analysed the odours and microbiome of the large cabbage white caterpillar Pieris brassicae in relation to parasitism by its endoparasitoid Cotesia glomerata . We identified how bacterial presence in and on the caterpillars is correlated with caterpillar odours and tested the attractiveness of parasitised and unparasitised caterpillars to the hyperparasitoid Baryscapus galactopus . We manipulated the presence of the external microbiome and the transient internal microbiome of caterpillars to identify the microbial origin of odours. We found that parasitism by C . glomerata led to the production of five characteristic volatile products and significantly affected the internal and external microbiome of the caterpillar, which were both found to have a significant correlation with caterpillar odours. The preference of the hyperparasitoid was correlated with the presence of the external microbiome. Likely, the changes in external microbiome and body odour after parasitism were driven by the resident internal microbiome of caterpillars, where the bacterium Wolbachia sp. was only present after parasitism. Micro-injection of Wolbachia in unparasitised caterpillars increased hyperparasitoid attraction to the caterpillars compared to untreated caterpillars, while no differences were found compared to parasitised caterpillars. In conclusion, our results indicate that host-parasite interactions can affect multi-trophic interactions and hyperparasitoid olfaction through alterations of the microbiome.
Journal Article
Diversity and composition of the microbiome associated with eggs of the Southern green stinkbug, Nezara viridula (Hemiptera: Pentatomidae)
2022
Although microbial communities of insects from larval to adult stage have been increasingly investigated in recent years, little is still known about the diversity and composition of egg‐associated microbiomes. In this study, we used high‐throughput amplicon sequencing and quantitative PCR to get a better understanding of the microbiome of insect eggs and how they are established using the Southern green stinkbug Nezara viridula (L.) (Hemiptera: Pentatomidae) as a study object. First, to determine the bacterial community composition, egg masses from two natural populations in Belgium and Italy were examined. Subsequently, microbial community establishment was assessed by studying stinkbug eggs of different ages obtained from laboratory strains (unlaid eggs collected from the ovaries, eggs less than 24 h old, and eggs collected 4 days after oviposition). Both the external and internal egg‐associated microbiomes were analyzed by investigating egg washes and surface‐sterilized washed eggs, respectively. Eggs from the ovaries were completely devoid of bacteria, indicating that egg‐associated bacteria were deposited on the eggs during or after oviposition. The bacterial diversity of deposited eggs was very low, with on average 6.1 zero‐radius operational taxonomic units (zOTUs) in the external microbiome and 1.2 zOTUs in internal samples of egg masses collected from the field. Bacterial community composition and density did not change significantly over time, suggesting limited bacterial growth. A Pantoea‐like symbiont previously found in the midgut of N. viridula was found in every sample and generally occurred at high relative and absolute densities, especially in the internal egg samples. Additionally, some eggs harbored a Sodalis symbiont, which has previously been found in the abdomen of several insects, but so far not in N. viridula populations. We conclude that the egg‐associated bacterial microbiome of N. viridula is species‐poor and dominated by a few symbionts, particularly the species‐specific obligate Pantoea‐like symbiont. In this study, we assessed the composition and establishment of the microbiome of insect eggs using the Southern green stinkbug Nezara viridula (Hemiptera: Pentatomidae) as a study object. Our results show that the egg‐associated bacterial microbiome is species‐poor and dominated by a few symbionts, particularly the species‐specific obligate Pantoea‐like symbiont.
Journal Article
Innate preference hierarchies coupled with adult experience, rather than larval imprinting or transgenerational acclimation, determine host plant use in Pieris rapae
by
Posledovich, Diana
,
Wiklund, Christer
,
Friberg, Magne
in
Acclimation
,
Acclimatization
,
Adult learning
2021
The evolution of host range drives diversification in phytophagous insects, and understanding the female oviposition choices is pivotal for understanding host specialization. One controversial mechanism for female host choice is Hopkins’ host selection principle, where females are predicted to increase their preference for the host species they were feeding upon as larvae. A recent hypothesis posits that such larval imprinting is especially adaptive in combination with anticipatory transgenerational acclimation, so that females both allocate and adapt their offspring to their future host. We study the butterfly Pieris rapae, for which previous evidence suggests that females prefer to oviposit on host individuals of similar nitrogen content as the plant they were feeding upon as larvae, and where the offspring show higher performance on the mother's host type. We test the hypothesis that larval experience and anticipatory transgenerational effects influence female host plant acceptance (no‐choice) and preference (choice) of two host plant species (Barbarea vulgaris and Berteroa incana) of varying nitrogen content. We then test the offspring performance on these hosts. We found no evidence of larval imprinting affecting female decision‐making during oviposition, but that an adult female experience of egg laying in no‐choice trials on the less‐preferred host Be. incana slightly increased the P. rapae propensity to oviposit on Be. incana in subsequent choice trials. We found no transgenerational effects on female host acceptance or preference, but negative transgenerational effects on larval performance, because the offspring of P. rapae females that had developed on Be. incana as larvae grew slower on both hosts, and especially on Be. incana. Our results suggest that among host species, preferences are guided by hard‐wired preference hierarchies linked to species‐specific host traits and less affected by larval experience or transgenerational effects, which may be more important for females evaluating different host individuals of the same species. The importance of nongenetic inheritance through transgenerational acclimation has received increasing attention. Very few studies have investigated the role of transgenerational effects in the adult host plant preference and larval performance of phytophagous insects, even though these traits are explaining host‐driven diversification in this hyperdiverse group.
Journal Article
Parasitism by endoparasitoid wasps alters the internal but not the external microbiome in host caterpillars
by
Dicke, Marcel
,
Bossaert, Sofie
,
Gloder, Gabriele
in
Agriculture
,
Biomedical and Life Sciences
,
Cotesia glomerata
2021
Background
The microbiome of many insects consists of a diverse community of microorganisms that can play critical roles in the functioning and overall health of their hosts. Although the microbial communities of insects have been studied thoroughly over the past decade, little is still known about how biotic interactions affect the microbial community structure in and on the bodies of insects. In insects that are attacked by parasites or parasitoids, it can be expected that the microbiome of the host insect is affected by the presence of these parasitic organisms that develop in close association with their host. In this study, we used high-throughput amplicon sequencing targeting both bacteria and fungi to test the hypothesis that parasitism by the endoparasitoid
Cotesia glomerata
affected the microbiome of its host
Pieris brassicae
. Healthy and parasitized caterpillars were collected from both natural populations and a laboratory culture.
Results
Significant differences in bacterial community structure were found between field-collected caterpillars and laboratory-reared caterpillars, and between the external and the internal microbiome of the caterpillars. Parasitism significantly altered the internal microbiome of caterpillars, but not the external microbiome. The internal microbiome of all parasitized caterpillars and of the parasitoid larvae in the caterpillar hosts was dominated by a
Wolbachia
strain, which was completely absent in healthy caterpillars, suggesting that the strain was transferred to the caterpillars during oviposition by the parasitoids.
Conclusion
We conclude that biotic interactions such as parasitism have pronounced effects on the microbiome of an insect host and possibly affect interactions with higher-order insects.
Journal Article
Caterpillar–parasitoid interactions: species-specific influences on host microbiome composition
by
Dicke, Marcel
,
Poelman, Erik H
,
Gloder, Gabriele
in
Animals
,
Bacteria - classification
,
Bacteria - genetics
2024
There is increasing evidence that host–parasitoid interactions can have a pronounced impact on the microbiome of host insects, but it is unclear to what extent this is caused by the host and/or parasitoid. Here, we compared the internal and external microbiome of caterpillars of Pieris brassicae and Pieris rapae parasitized by Cotesia glomerata or Cotesia rubecula with nonparasitized caterpillars. Additionally, we investigated the internal and external microbiome of the parasitoid larvae. Both internal and external bacterial densities were significantly higher for P. brassicae than P. rapae, while no differences were found between parasitized and nonparasitized caterpillars. In contrast, parasitism significantly affected the composition of the internal and external microbiome of the caterpillars and the parasitoid larvae, but the effects were dependent on the host and parasitoid species. Irrespective of host species, a Wolbachia species was exclusively found inside caterpillars parasitized by C. glomerata, as well as in the corresponding developing parasitoid larvae. Similarly, a Nosema species was abundantly present inside parasitized caterpillars and the parasitoid larvae, but this was independent of the host and the parasitoid species. We conclude that parasitism has pronounced effects on host microbiomes, but the effects depend on both the host and parasitoid species.
Journal Article
Parasitoid Calyx Fluid and Venom Affect Bacterial Communities in Their Lepidopteran Host Labial Salivary Glands
by
Laboratory of Entomology
,
Kalisvaart, Sarah, N.
,
Bourne, Mitchel, E.
in
Abundance
,
Animal biology
,
Animals
2025
The influence of gut and gonad bacterial communities on insect physiology, behaviour, and ecology is increasingly recognised. Parasitism by parasitoid wasps alters many physiological processes in their hosts, including gut bacterial communities. However, it remains unclear whether these changes are restricted to the gut or also occur in other tissues and fluids, and the mechanisms underlying such changes are unknown. We hypothesise that host microbiome changes result from the injection of calyx fluid (that contain symbiotic viruses known as polydnaviruses) and venom during parasitoid oviposition and that these effects vary by host tissue. To test this, we microinjected Pieris brassicae caterpillars with calyx fluid and venom from Cotesia glomerata, using saline solution and natural parasitism by C. glomerata as controls. We analysed changes in the bacterial community composition in the gut, regurgitate, haemolymph, and labial salivary glands of the host insects. Multivariate analysis revealed distinct bacterial communities across tissues and fluids, with high diversity in the salivary glands and haemolymph. Parasitism and injection of calyx fluid and venom significantly altered bacterial communities in the salivary glands. Differential abundance analysis showed that parasitism affected bacterial relative abundance in the haemolymph, and that Wolbachia was only found in the haemolymph of parasitized caterpillars. Altogether, our findings reveal that parasitism influences the host haemolymph microbiome, and both parasitism and injection of calyx fluid and venom drive changes in the bacterial community composition within the host salivary glands. Given that the composition of salivary glands can influence plant response to herbivory, we discuss these results in the broader context of plant-parasitoid interactions.
Journal Article
Combining root inoculation with Akanthomyces muscarius (Hypocreales: Cordycipitaceae) and the parasitoid Aphidius ervi (Haliday) (Hymenoptera: Braconidae) to control aphids on sweet pepper
by
Meesters, Caroline
,
Stockmans, Isabelle
,
van Neerbos, Francine
in
Agricultural practices
,
Agriculture
,
Akanthomyces muscarius
2023
Biological control using natural enemies such as predatory insects and parasitoids has become an important alternative way of pest management and represents a crucial component in Integrated Pest Management (IPM). Although parasitoids are commonly used as biocontrol agents, their efficacy is not always sufficient to reduce pest populations to acceptable densities. Given that parasitoids can be attracted towards plants inoculated with entomopathogenic fungi, a combination of endophytic entomopathogenic fungi and parasitoids may lead to enhanced biocontrol efficacy, but information in this regard is scarce. Here, we used sweet pepper (
Capsicum annuum
L.), the entomopathogenic fungus
Akanthomyces muscarius
ARSEF 5128, the tobacco peach aphid
Myzus persicae
var.
nicotianae
and the aphid parasitoid
Aphidius ervi
to assess whether root inoculation with an entomopathogenic fungus has the potential to increase the biocontrol efficacy of an arthropod biological control agent. Results obtained over a five-weeks period revealed that a combination of the fungus and the parasitoid significantly improved biocontrol efficacy compared to the separate applications of the biocontrol agents, specifically by enhancing short-term parasitoid effectiveness. In greenhouse cages with
A. muscarius
and
A. ervi,
the aphid population was not able to produce progeny, and aphids were parasitized fast and efficiently. In cages with control plants and
A. ervi,
parasitism efficiency was significantly lower and the aphid population was able to increase by several generations. In these cages, the parasitoids could effectively control the aphid infestation after repeated parasitoid releases. We conclude that fungal inoculation improved parasitoid biocontrol efficacy, providing new opportunities for pest control.
Journal Article