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Kersch-Becker, M. F.

Publications and source records attributed to Kersch-Becker, M. F..

3 recordsLinked to original sources

Phyllosphere bacterial communities in milkweeds: composition diverge as the season progresses, and links to cardenolides and arthropods depend on host identity

Leaf bacterial communities shape plant defense and interactions with herbivores, yet how host filtering and stochastic processes assemble them remains unclear. We predicted that host identity, chemistry, and arthropods structure them, and that stochastic and deterministic contributions shift seasonally. Across one growing season we sampled leaf bacteria monthly and arthropods weekly on four Asclepias species (Apocynaceae: A. curassavica, A. incarnata, A. syriaca, A. tuberosa) spanning a cardenolide gradient. We sequenced 16S rRNA genes and quantified selection and dispersal contributions to turnover using null models. Host identity shaped bacterial richness and composition, with A. tuberosa hosting the richest communities, and both richness and phylogenetic diversity rose through the season. Early on, homogenizing dispersal made communities more similar among plants; by mid-season no single process dominated turnover, and by late season dispersal limitation prevailed. Homogeneous selection was episodic, not sustained, and arthropod associations were host-specific, negatively so on A. syriaca. Phyllosphere assembly thus shifts from convergence to divergence in one season: young leaves recruit from a shared pool delivered by wind, rain, and arthropods, whereas exchange among ageing plants declines and communities drift apart. Herbivores arriving late meet plant-specific microbial environments, so microbial mediation of herbivory should be host-specific and seasonally contingent.

ecology↗

Drought disrupts volatile-mediated predator foraging and oviposition, weakening trait-mediated top-down control

O_LIDrought is a major abiotic stressor that can restructure trophic interactions by limiting herbivore success and disrupting chemical signaling between plants and natural enemies. In tritrophic systems, plant volatiles guide natural enemy foraging and reproductive investment, often scaling with herbivore density; however, it is unclear whether drought alters this relationship and weakens top-down control. C_LIO_LIUsing a tomato-aphid-ladybeetle system, we tested how drought and herbivore density jointly affect plant VOC emissions, predator behavior, and aphid dynamics. We manipulated water availability (well-watered vs. drought) and aphid density (low vs. high), and measured plant physiology, volatile profiles, predator visitation and oviposition, and aphid responses. C_LIO_LIDrought reduced stomatal conductance, plant biomass, and both total and compositional output of VOCs. Emission of key predator-attracting compounds (e.g., methyl salicylate, {beta}-myrcene) peaked in well-watered, high-density plants but was suppressed under drought. C_LIO_LILadybeetle visitation increased with aphid density but declined under drought, reflecting conserved shifts in volatile cues. Oviposition was concentrated on well-watered, high-density plants and associated with specific compounds (e.g., methyl salicylate, carvacrol), while others (e.g., cymene-7-ol, para, 1-octanol) were negatively associated. C_LIO_LIAphid suppression by predators occurred only under well-watered, high-density conditions. Under drought, aphid growth was already constrained, and predators had little additional effect on their abundance. However, both drought and predator presence influenced aphid demography, increasing production of dispersive alates. C_LIO_LIThese findings underscore the sensitivity of chemically mediated trophic interactions to environmental stress. Increased drought disrupts plant signaling, reducing natural enemy effectiveness, weakening biocontrol, and shifting herbivore population structure. Understanding how stress alters cue reliability is key to predicting community dynamics and managing ecosystem functions under stress. C_LI

ecology↗

Stomata: Gatekeepers of Uptake and Defense Priming by Green Leaf Volatiles in plants

Plants adapt to balance growth-defense tradeoffs in response to both biotic and abiotic stresses. Green leaf volatiles (GLVs) are released after biotic and abiotic stresses and function as damage-associated signals in plants. Although, GLVs enter plants primarily through stomata, the role of stomatal regulation on the kinetics of GLVs uptake remain largely unknown. Here, we illustrate the effect of stomatal closure on the timing and magnitude of GLVs uptake. We closed stomata by either exposing plants to darkness or applying abscisic acid, a phytohormone that closes the stomata in light. Then, we exposed maize seedlings to Z-3-hexen-1-ol and compared the dynamic uptake of Z-3-hexen-1-ol under different stomatal conditions. Additionally, we used E-3-hexen-1-ol, an isomer of Z-3-hexen-1-ol not made by maize, to exclude the role of internal GLVs in our assays. We demonstrate closed stomata effectively prevent GLVs entry into exposed plants, even at high concentrations. Furthermore, our findings indicate that reduced GLV uptake impairs GLVs-driven induction of sesquiterpenes biosynthesis, a group of GLV-inducible secondary metabolites, with or without herbivory. These results elucidate how stomata regulate the perception of GLV signals, thereby dramatically changing the plant responses to herbivory, particularly under water stress or dark conditions. We elucidate the role of stomata, small pores on plants leaf surface, in regulating the entry of green leaf volatiles, damage-associated signals, into plants, and thus influencing their signaling functions.

ecology↗