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35 results for “plant induced defense”
Data describing how four different levels of induced plant defenses change cannibalism among larval lepidopterans and alter consumption of plant tissue by larval lepidopterans.
A dataset comprised of three experiments: Experiment 1. Data describing how four different levels of induced plant defenses change cannibalism among larval lepidopterans and alter consumption of plant tissue by larval lepidopterans. The experiment was conducted at UW-Madison in Birge Hall. Experiment 2. Data describing how two levels of induced plant defenses and two levels of food provision (presence or absence of dead conspecifics) changes cannibalism, herbivory, and growth among larval lepidopterans. Experiment 3. Data describing mass loss of tomato leaves that were clipped and allowed to dry for two days. These data are to determine estimates of natural (autogenic) weight loss due to evaporation for comparison of weight loss due to herbivory and evaporation as part of feeding trials with armyworms (see other two associated datasets in this series). The experiment was conducted at the Department of Biology at Virginia Commonwealth University.
Data from: Induced phenological avoidance: a neglected defense mechanism against seed predation in plants
<p>1. Flowering phenology is an important life history trait affecting plant reproductive performance and is influenced by various abiotic and biotic factors. Pre-dispersal seed predation and pollination are expected to impose counteracting selection pressure on flowering phenology, with pre-dispersal seed predation expected to favor off-peak flowering and pollination to favor synchronous flowering. <br> 2. Here we studied the effect of pre-dispersal seed predation by the beetle Byturus ochraceus, a specialist seed herbivore, on the flowering phenology of Geum urbanum. This forest understorey plant species is self-pollinating, so that the influence of seed predation can be studied independent from pollination. We measured in detail the timing and predation rate of individual flowers during two consecutive years in more than 60 individuals. We tested the hypotheses that pre-dispersal seed predation exerts selection for within-season compensatory flowering as well as for induced phenological avoidance in the following season.<br> 3. We found no indication for compensatory flowering within a growing season, but plants that experienced predation shifted their flowers to the end of the flowering season the subsequent year. This induced phenological avoidance points to a plastic response to pre-dispersal seed predation that may be adaptive. Importantly, the delay in flower production came at a cost, since flowers later in the season had a reduced seed output, presumably because of increasing light limitation following forest canopy closure. <br> 4. Synthesis: Herbivory by specialist enemies can cause serious fitness decline in hosts. We here show that induced shifts in phenology can form an important defense strategy against pre-dispersal seed predation. The induced mismatches between herbivore and host phenology are anticipated to be adaptive when herbivory is predictable across successive flowering periods.</p>
Heat Stress and Microbial Stress Induced Defensive Phenol Accumulation in Medicinal Plant Sparganium stoloniferum
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DATASET: Temperature Differentially Influences the Capacity of Trichoderma Species to Induce Plant Defense Responses in Tomato Against Insect Pests
<p>Species of the ecological opportunistic, avirulent fungus, <em>Trichoderma</em> are widely used in agriculture for their ability to protect crops from the attack of pathogenic fungi and for plant growth promotion activity. Recently, it has been shown that they may also have complementary properties that enhance plant defense barriers against insects. However, the use of these fungi is somewhat undermined by their variable level of biocontrol activity, which is influenced by environmental conditions. Understanding the source of this variability is essential for its profitable and wide use in plant protection. Here, we focus on the impact of temperature on <em>Trichoderma afroharzianum</em> T22, <em>Trichoderma atroviride</em> P1, and the defense response induced in tomato by insects. The <em>in vitro</em> development of these two strains was differentially influenced by temperature, and the observed pattern was consistent with temperature-dependent levels of resistance induced by them in tomato plants against the aphid, <em>Macrosiphum euphorbiae</em>, and the noctuid moth, <em>Spodoptera littoralis</em>. Tomato plants treated with <em>T. afroharzianum</em> T22 exhibited enhanced resistance toward both insect pests at 25°C, while <em>T. atroviride</em> P1 proved to be more effective at 20°C. The comparison of plant transcriptomic profiles generated by the two <em>Trichoderma</em> species allowed the identification of specific defense genes involved in the observed response, and a selected group was used to assess, by real-time quantitative reverse transcription PCR (qRT-PCR), the differential gene expression in <em>Trichoderma</em>-treated tomato plants subjected to the two temperature regimens that significantly affected fungal biological performance. These results will help pave the way toward a rational selection of the most suitable <em>Trichoderma</em> isolates for field applications, in order to best face the challenges imposed by local environmental conditions and by extreme climatic shifts due to global warming.</p>
Data from: Induced phenological avoidance: a neglected defense mechanism against seed predation in plants
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Plant volatiles induced by herbivore eggs prime defenses and mediate shifts in the reproductive strategy of receiving plants
<p>Plants can detect cues associated with the risk of future herbivory and modify defense phenotypes accordingly; however, our current understanding is limited both with respect to the range of early warning cues to which plants respond and the nature of the responses. Here we report that exposure to volatile emissions from plant tissues infested with herbivore eggs promotes stronger defense responses to subsequent herbivory in two Brassica species. Furthermore, exposure to these volatile cues elicited an apparent shift from growth to reproduction in Brassica nigra, with exposed plants exhibiting increased flower and seed production, but reduced leaf production, relative to unexposed controls. Our results thus document plant defense priming in response to a novel environmental cue, oviposition-induced plant volatiles, while also showing that plant responses to early warning cues can include changes in both defense and life-history traits.</p>
Optimal Defense Theory in an ant‐plant mutualism: extrafloral nectar as an induced defense is maximized in the most valuable plant structures
<ol> <li class="Normal1">Optimal Defense Theory (ODT) predicts that to maximize the benefits of defense against herbivores while minimizing its costs, plants will <span><span>invest in defenses</span></span> to structures according to their value and to the likelihood that they will be attacked. Constitutive defenses are expected in structures of high value, whereas induced defenses are expected in structures of low value. Regarding the biotic defense mediated by extrafloral nectaries (EFNs) and based on ODT, we predicted that under control conditions EFNs on higher-value structures would produce more nectar than would EFNs on lower-value structures, attracting more ants; however, when damaged, EFNs on higher-value structures would not increase the production of extrafloral nectar (since constitutive defenses should be employed in this region), whereas EFNs on lower-value structures would so (since induced defenses should be employed in this region), at a level commensurate with the extent of damage. </li> <li class="Normal1">Here we test these predictions in a Brazilian ant-plant mutualism. <i>Qualea multiflora</i> (Vochysiaceae), a savanna tree, presents EFNs on both lower-value structures (leaves) and higher-value structures (inflorescences). We simulated herbivory by cutting 10% or 40% of the leaves, or 10% of the flowers, then monitoring extrafloral nectar production and ant attendance. </li> <li class="Normal1">Extrafloral nectar volume and calorie content, as well as ant abundance, were higher in EFNs of inflorescences compared to EFNs of leaves both before and after simulated herbivory, consistent with one of our predictions. However, EFNs on both leaves and inflorescences, not leaves only, were induced by simulated herbivory, a pattern opposite to our prediction. Plants subjected to higher levels of leaf damage (i.e., more damage to lower-value tissues) <span><span>produced more and higher-calorie extrafloral nectar, but showed similar ant abundance, partially consistent with our prediction</span></span>. </li> <li class="Normal1"><span><span><span><span><span><span><span><span><span><span><span>Our results show that extrafloral nectar production before and after simulated herbivory, as well as the ant recruitment, vary according to the plant structure on which EFNs are located. Our study is unique showing that ant recruitment via extrafloral nectar follows predictions from Optimal Defense Theory, and that the ant foraging patterns may be shaped by the level and region damaged in the plant.</span></span></span></span></span></span></span></span></span></span></span></li> </ol>
Data from: Cascading effects of induced terrestrial plant defenses on aquatic and terrestrial ecosystem function
Herbivores induce plants to undergo diverse processes that minimize costs to the plant, such as producing defences to deter herbivory or reallocating limited resources to inaccessible portions of the plant. Yet most plant tissue is consumed by decomposers, not herbivores, and these defensive processes aimed to deter herbivores may alter plant tissue even after detachment from the plant. All consumers value nutrients, but plants also require these nutrients for primary functions and defensive processes. We experimentally simulated herbivory with and without nutrient additions on red alder (Alnus rubra), which supplies the majority of leaf litter for many rivers in western North America. Simulated herbivory induced a defence response with cascading effects: terrestrial herbivores and aquatic decomposers fed less on leaves from stressed trees. This effect was context dependent: leaves from fertilized-only trees decomposed most rapidly while leaves from fertilized trees receiving the herbivory treatment decomposed least, suggesting plants funnelled a nutritionally valuable resource into enhanced defence. One component of the defence response was a decrease in leaf nitrogen leading to elevated carbon : nitrogen. Aquatic decomposers prefer leaves naturally low in C : N and this altered nutrient profile largely explains the lower rate of aquatic decomposition. Furthermore, terrestrial soil decomposers were unaffected by either treatment but did show a preference for local and nitrogen-rich leaves. Our study illustrates the ecological implications of terrestrial herbivory and these findings demonstrate that the effects of selection caused by terrestrial herbivory in one ecosystem can indirectly shape the structure of other ecosystems through ecological fluxes across boundaries.
Drought-induced reductions in plant defenses
Extrafloral nectaries (EFNs) are anti-herbivory defense-related glands. We measured morphological and anatomical EFN traits in Pityrocarpa moniliformis trees along a rainfall gradient in Caatinga dry forest. We observed a reduction in structural EFN traits as rainfall decreased. We conclude that this reduction is a cost-saving strategy, probably mediated by ants.
Data from: Root inoculation with beneficial soil microbes enhances indirect plant defenses induced by insect feeding and egg deposition
<p>Plants can respond to insect egg deposition by emitting oviposition-induced plant volatiles (OIPVs) recruiting parasitoids. The recruitment of carnivore insects in response to egg deposition is considered an indirect defense strategy that is widespread in the plant kingdom. In recent years, there has been increasing evidence showing that microbial colonization can influence the strength of plant responses to insect herbivory, yet no information is available on how beneficial microbes modulate indirect defenses induced by insect egg deposition. In this work, we evaluated the effects of inoculation with the beneficial soil fungus <em>Trichoderma harzianum</em> strain T22 on a tritrophic system consisting of tomato, the southern green stink bug <em>Nezara viridula</em> and its associated egg parasitoid <em>Trissolcus basalis</em>. We used Y-tube olfactometer assays to evaluate the behavioral responses of the parasitoids to OIPVs emitted by plants colonized with beneficial soil microbes. We also used gas chromatography coupled with mass spectrometry (GC-MS) to investigate how root inoculation with <em>T. harzianum</em> T22 affects the chemical composition of induced plant volatiles. 3. In olfactometer assays, we found that root inoculation with <em>T.</em> <em>harzianum</em> T22 enhanced the attraction of the egg parasitoid towards tomato plants induced by <em>N. viridula</em> feeding and oviposition activities. In particular, the egg parasitoid preferred OIPVs emitted by tomato plants previously inoculated with <em>T. harzianum</em> T22 over OIPVs emitted by non-inoculated plants. Furthermore, chemical analysis showed that root inoculation with <em>T. harzianum</em> T22 resulted in changes in the composition of OIPVs, which was consistent with the behavioral observations. Among the compounds that strongly contribute to the chemical differences between OIPVs from non-inoculated and inoculated plants, chemical analysis identified green leaf volatiles ((Z)-3-hepten-1-ol, (E,E)-2,4-hexadienal), along with terpenoids (terpinen 4-ol, α-tujene and δ-elemene). 4. Taken together our results indicate that beneficial soil microbes enhance indirect plant defenses induced by feeding and oviposition, broadening our understanding of plant responses to insect eggs. Our results underscore the importance of taking into account the role of microorganisms to fully comprehend the intricate interactions among plants, herbivore eggs and their associated egg parasitoids.</p>
Plant growth-promoting rhizobacteria modulate induced corn defense against Spodoptera litura (Lepidoptera: Noctuidae)
<p>Common cutworm, <em>Spodoptera litura</em> is an important pest of corn causing significant crop yield loss. Synthetic insecticides have mostly been used to combat this pest, raising human and environmental health concerns. Plant-growth promoting rhizobacteria (PGPR) could compensate for or augment the harmful effects of agrochemicals. Herein, we aimed to assess whether PGPR-induced defenses in corn plants impact the host-plant selection behavior of <em>S. litura</em>. Headspace volatile organic compounds (VOCs) were analyzed using Gas chromatography-mass spectrometry (GC-MS). Larvae-fed inoculated corn exhibited lower weights and RGR than non-inoculated plants. Under choice experiments, PGPR-treated plants significantly reduced percentage leaf damage area and oviposition rate compared to untreated plants. VOC ratio emission varied significantly between control and PGPR treatments, which, in part, explains feeding and oviposition deterrence in PGPR-treated plants. The results demonstrate that PGPR inoculation can enhance corn resistance to <em>S. litura</em>, making it a promising candidate for crop protection strategies.</p>
Plant growth-promoting rhizobacteria modulate induced corn defense against Spodoptera litura (Lepidoptera: Noctuidae)
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Drought-induced reductions in plant defenses
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Data from: Root inoculation with beneficial soil microbes enhances indirect plant defenses induced by insect feeding and egg deposition
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Data from: Herbivory-induced volatiles function as defenses increasing fitness of the native plant Nicotiana attenuata in nature
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Plant volatiles induced by herbivore eggs prime defenses and mediate shifts in the reproductive strategy of receiving plants
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Data from: Cascading effects of induced terrestrial plant defenses on aquatic and terrestrial ecosystem function
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Optimal Defense Theory in an ant‐plant mutualism: extrafloral nectar as an induced defense is maximized in the most valuable plant structures
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Olfactory perception of herbivore‐induced plant volatiles elicits counter‐defenses in larvae of the tobacco cutworm
<ol> <li>Herbivore attack leads to increased emission of herbivore-induced plant volatiles (HIPVs) that protect plants by eliciting direct anti-herbivore defenses and indirect defenses via attraction of natural enemies. Whether herbivorous insects can develop counter-defenses against host plants in response to HIPVs is largely unexplored.</li> <li>Using a directed airflow apparatus, we investigated the influence of HIPVs emitted from tobacco cutworm (<i>Spodoptera litura</i><span>)</span>-infested tomatoes on larval performance on herbivore-pretreated tomatoes vs. untreated tomatoes or on trypsin inhibitor-amended artificial diets vs. unamended diets, as well as the transcriptional responses of HIPV-exposed larvae.</li> <li> <i>S. litura</i> larval<i> </i>feeding on tomato plants led to increased emission of HIPVs. The HIPV-exposed larvae showed significantly increased survival rates and weight gains on both herbivore-pretreated tomato leaves and trypsin inhibitor-supplemented diet but not on untreated tomato leaves and control diets, nor when they had been exposed to HIPVs emitted from <i>spr8</i> mutant plants which barely emit terpenes. These results suggest that larval exposure to HIPVs from wild-type plants enhanced their ability to cope with plant induced defenses. The latter is supported by the observation that larval exposure to HIPVs led to enhanced transcript levels of eight genes encoding cuticle proteins, and seven genes encoding cytochrome P450s, an important class of detoxification enzymes<i>.</i> </li> <li>Our studies revealed a mechanism by which larval olfactory perception of HIPVs elicits counter-defenses that enhance the ability of insect herbivores to withstand host plant chemical defenses.</li> </ol>
Data from: Combined effects of mutualistic rhizobacteria counteract virus-induced suppression of indirect plant defenses in soybean
It is increasingly clear that microbial plant symbionts can influence interactions between their plant hosts and other organisms. Yet, such effects remain poorly understood, particularly under ecologically realistic conditions where plants simultaneously interact with diverse mutualists and antagonists. Here we examine how the effects of a plant virus on indirect plant defenses against its insect vector are influenced by co-occurrence of other microbial plant symbionts. Using a multi-factorial design, we manipulated colonization of soybean using three different microbes: a pathogenic plant virus (Bean pod mottle virus [BPMV]), a nodule-forming beneficial rhizobacterium (Bradyrhizobium japonicum), and a plant growth-promoting rhizobacterium (PGPR) (Delftia acidovorans). We then assessed recruitment of parasitoids (Pediobious foveolatus [Eulophidae]) and parasitism rates following feeding by the BPMV vector Epilachna varivestis (Coccinellidae). BPMV infection suppressed parasitoid recruitment, prolonged parasitoid foraging time, and reduced parasitism rates in semi-natural foraging assays. However, simultaneous colonization of BPMV-infected hosts by both rhizobacteria restored parasitoid recruitment and rates of parasitism to levels similar to uninfected controls. Co-colonization by the two rhizobacteria also enhanced parasitoid recruitment in the absence of BPMV infection. These results illustrate the potential of plant-associated microbes to influence indirect plant defenses, with implications for disease transmission and herbivory, but also highlight the potential complexity of such interactions.
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