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121 results for “exotic plants”

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dryad36/100

Data from: Plant-soil interactions during the native and exotic range expansion of an annual plant

<p>Range expansions, whether they are biological invasions or climate change-mediated range shifts, may have profound ecological and evolutionary consequences for plant-soil interactions. Range-expanding plants encounter soil biota with which they have a limited coevolutionary history, especially when introduced to a new continent. Past studies have found mixed results on whether plants experience positive or negative soil feedback interactions in their novel range, and these effects often change over time. One important theoretical explanation is that plants locally adapt to the soil pathogens and mutualists in their novel range. We tested this hypothesis in <em>Dittrichia graveolens</em>, an annual plant that is both expanding its European native range, initially coinciding with climate warming, and rapidly invading California, after human introduction. In parallel greenhouse experiments on both continents, we used plant genotypes and soils from five locations at the core and edge of each range to compare plant growth in soil from <em>D. graveolens </em>populations and nearby control microsites as a measure of plant-soil feedback. Plant-soil interactions were highly idiosyncratic across sites in each range. On average, plant-soil feedbacks were more positive in the native range than in the exotic range. In line with the strongly heterogeneous pattern of soil responses along our biogeographic gradients, we found no evidence for evolutionary differentiation between plant genotypes from the core to the edge of either range. Our results suggest that the evolution of plant-soil interactions during range expansion may be more strongly driven by local evolutionary dynamics varying across the range than by large-scale biogeographic shifts.</p>

opencc-zeroMar 2024View details →
dryad36/100

Data from: Land-use intensity and relatedness to native plants promote exotic plant invasion in a tropical biodiversity hotspot

<p>Exotic plant invasions threaten biodiversity and are costly to farmers. Land use is a major pathway promoting the spread of exotic plant species; however, little is known about the processes underlying the success of exotic plants in tropical agricultural landscapes. Focussing on the heterogeneous smallholder landscapes of north-eastern Madagascar, we studied exotic plants of understorey communities across a land-use intensity gradient from unburned lands (old-growth forests, forest fragments, and forest-derived vanilla agroforests) to burned ones (fallow-derived vanilla agroforests, woody fallows, and herbaceous fallows). </p> <p>We quantified the absolute species richness, abundance, and cover of exotic plants across land-use types and their proportional contribution to community richness, abundance, and cover as indicators of exotic plant invasion. We tested for the effects of land-use parameters, namely land-use history, canopy closure, and landscape-level forest cover, on exotic plants. Additionally, we tested whether the phylogenetic relatedness between exotic and native species in the same plot affected invasion success, testing Darwin's naturalization and pre-adaptation hypotheses. </p> <p>All indicators of exotic plant invasion were lowest in old-growth forests and forest fragments and highest in fallow-derived vanilla agroforests, woody fallows, and herbaceous fallows. Absolute and proportional exotic richness was negatively affected by canopy closure, and landscapes with high forest cover had lower proportions of exotic plant richness. High phylogenetic relatedness between exotics and natives was associated with lower proportional richness but higher proportions of exotics in abundance and cover. However, individual exotic species showed contrasting responses to land-use parameters and relatedness to natives.</p> <p>Synthesis and applications: Our results indicate that maintaining unburned lands, land-use types with dense canopies, and landscapes with high forest cover prevents the spread of exotic plants within agricultural landscapes of north-eastern Madagascar. Supporting Darwin's pre-adaptation hypothesis, exotic plants phylogenetically closely related to native plants are more likely to become successful invaders in terms of abundance and cover. Nevertheless, individual species show different responses to land-use changes and phylogenetic relatedness. Therefore, land-use decisions and management choices can be tailored to limit the spread of exotic species and to preserve native plants in this global biodiversity hotspot.</p>

opencc-zeroApr 2024View details →
dryad36/100

Invasive plant species that experience lower herbivory pressure may evolve lower diversities of chemical defence compounds in the exotic range

<p><strong>ABSTRACT</strong></p> <p><strong>PREMISE</strong></p> <p>Invasive plant species often escape from specialist herbivore species and are likely to experience herbivory mostly from generalist herbivore species in the exotic range. Consequently, the Shifting Defence Hypothesis (SDH) predicts that invasive plants will express higher concentrations of qualitative defence compounds to deter dominant generalist herbivores in the exotic range. Here, I additionally propose a Reduced Chemical Diversity Hypothesis (RCDH), which predicts that reduced herbivory pressure will select for invasive plant genotypes that produce lower diversities of defence compounds in the exotic range.</p> <p><strong><span>METHODS</span></strong></p> <p>I tested whether: (1) Invasive <em>Brassica nigra</em> populations express a lower diversity and an overall higher concentration of glucosinolate compounds than native-range <em>B. nigra</em>; (2) <em>Brassica nigra</em> individuals that express high diversities and concentrations of glucosinolates are more attractive to specialist and deterrent to generalist herbivores; (3) Tissues of invasive <em>B. nigra </em>are less palatable to two generalist herbivores <em>Theba pisana</em> and <em>Helix aspersa</em> than tissues of native-range<em> B. nigra</em>.</p> <p><strong><span>RESULTS</span></strong></p> <p>Invasive <em>B. nigra </em>populations expressed a significantly lower diversity of glucosinolate compounds and a marginally higher concentration of total glucosinolate compounds. Leaf tissues of the invasive <em>B. nigra</em> were significantly less palatable to <em>T. pisana</em> and marginally less so to <em>H. aspersa</em>. <em>Brassica nigra</em> individuals that expressed high concentrations of total glucosinolate compounds were visited by a low diversity of generalist herbivore species in the field.</p> <p><strong><span>CONCLUSIONS</span></strong></p> <p>The biogeographical differences in glucosinolate profiles of invasive and native-range populations of <em>B. nigra</em> may be the result of differential herbivore selection pressures in the respective ranges.</p>

opencc-zeroAug 2022View details →
dryad36/100

Variety is the spice of life: flying-foxes exploit a variety of native and exotic food plants in an urban landscape mosaic

<p><span>Generally, urbanization is a major threat to biodiversity; however, urban areas also provide habitats that some species can exploit. Flying-foxes (<em>Pteropus</em> spp.) are becoming increasingly urbanized; which is thought to be a result of increased availability and temporal stability of urban food resources, diminished natural food resources, or both. Previous research has shown that urban-roosting grey-headed flying-foxes (<em>Pteropus</em> <em>poliocephalus</em>) preferentially forage in human-modified landscapes. However, which land-use areas and food plants support its presence in urban areas is unknown. We tracked nine <em>P</em>. <em>poliocephalus</em> roosting in Adelaide, South Australia, between December 2019 and May 2020, using global positioning systems (GPS), to investigate how individuals used the urban landscape mosaic for feeding. The most frequently visited land-use category was "residential" (40% of fixes) followed by "road-side," "reserves" and "primary production" (13–14% each). However, "reserves" were visited four times more frequently than expected from their areal availability, followed by the "residential" and "road-side" categories that were visited approximately twice more than expected each; in contrast, the "primary production" category was visited approximately five times less than expected. These results suggest that while residential areas provide most foraging resources supporting Adelaide's flying-fox population, reserves contain foraging resources that are particularly attractive to <em>P</em>. <em>poliocephalus</em>. Primary production land was relatively less utilized, presumably because it contains few food resources. Throughout, flying-foxes visited an eclectic mixture of diet plants (49 unique species), with a majority of feeding fixes (63%) to locally indigenous Australian native species; however, in residential areas 53% of feeding visits were to non-locally indigenous species, vs only 13% in reserves. Flowering and fruiting phenology records of the food plants visited further indicated that non-locally indigenous species increase the temporal availability of foraging resources for <em>P</em>. <em>poliocephalus</em> in urban Adelaide. Our findings demonstrate the importance of residential areas for urban-roosting <em>P</em>. <em>poliocephalus</em>, and suggest that the anthropogenic mixture of food resources available in the urban landscape mosaic supports the species' year-round presence in urban areas. Our results further highlight the importance of conserving natural habitats within the urban landscape mosaic, and stress the need for accounting for wildlife responses to urban greening initiatives.</span></p>

opencc-zeroAug 2022View details →
dryad36/100

Biogeographic differences in plant-soil biota relationships contribute to the invasion exotic range expansion of Verbascum thapsus

<ol> <li><span>Exotic plant species can evolve adaptations to environmental conditions in the exotic range. Furthermore, soil biota can foster exotic spread in the absence of negative soil pathogen-plant interactions or because of increased positive soil biota-plant feedbacks in the exotic range. Little is known, however, about the evolutionary dimension of plant-soil biota interactions when comparing native and introduced ranges.</span></li> <li><span>To assess the role of soil microbes for rapid evolution in plant invasion, we subjected <i>Verbascum thapsus</i>, a species native to Europe, to a reciprocal transplant experiment with soil and seed material originating from Germany (native) and New Zealand (exotic). Soil samples were treated with biocides to distinguish between effects of soil fungi and bacteria. Seedlings from each of five native and exotic populations were transplanted into soil biota communities originating from all populations and subjected to treatments of soil biota reduction: application of (i) fungicide, (ii) biocide, (iii) a combination of the two and (iv) control. </span></li> <li><span>For most of the investigated traits, native populations showed higher performance than exotic populations; there was no effect of soil biota origin. However, plants developed longer leaves and larger rosettes when treated with their respective home soil communities, indicating that native and exotic plant populations differed in their interaction with soil biota origin. The absence of fungi and bacteria resulted in a higher specific root length, suggesting that <i>V. thapsus</i> may compensate the absence of mutualistic microbes by increasing its root-soil surface contact.<b> </b></span></li> <li><span><b>Synthesis. </b>Introduced plants can evolve adaptations to soil biota in their new distribution range. This demonstrates the importance of biogeographic differences in plant-soil biota relationships and suggests that future studies addressing evolutionary divergence should account for differential effects of soil biota from the home and exotic range on native and exotic populations of successful plant invaders. </span></li> </ol>

opencc-zeroSep 2021View details →
dryad36/100

Data for: Invasion by an exotic grass species homogenises native freshwater plant communities

<p>A growing body of evidence has shown that biological invasions cause shifts in species composition of communities in space and time. Although biological invasions are considered a major driver of biotic homogenisation worldwide, most previous studies are conducted at small spatial scales and over short time periods, which may have underestimated the impacts of exotic species on native communities.</p> <p>Using a unique dataset of aquatic plants sampled in 235 sites over 12 years (2007–2010 and 2015–2019) in a large reservoir (Itaipu Reservoir; 1,350 km²), we analyzed how the invasion of a non-native grass (<em>Urochloa arrecta</em>) affects the species richness, ecological uniqueness (i.e., local contribution to beta diversity – LCBD) and temporal β–diversity of native plant communities.</p> <p>From 3,934 surveyed plant communities, <em>U. arrecta</em> was recorded in 2,888 samples and it was absent from 1,046 samples. Overall, species richness and ecological uniqueness of native plant communities were markedly lower in sites invaded than non-invaded by <em>U. arrecta</em>. From 2007 to 2019, the ecological uniqueness of native plants was 60% lower in the invaded than non-invaded sites.      Whereas in invaded sites the species loss was the dominant mechanism driving native communities over time, in non–invaded sites the gain of new native species was the primary mechanism underlying community trajectories. Moreover, comparing native plant communities before and after the invasion of <em>U. arrecta</em>, species richness, ecological uniqueness and species gains of native plant communities decreased, whereas species losses increased after the invasion of <em>U. arrecta</em>. Finally, the positive relationship between native biodiversity and precipitation was stronger in sites non-invaded than invaded by <em>U. arrecta</em>.</p> <p>Synthesis: Our findings provide comprehensive evidence that an invasive plant is decreasing the spatial and temporal β–diversity of native plant communities through declining species richness, rather than simply correlating with them. This suggests that<em> U. arrecta</em> is driving native plants to become less diverse and homogeneous after the invasion, both spatially and temporally. Our findings illustrate that at broad scales, aquatic plant communities may become increasingly homogeneous with the increasing number of biological invasion events taking place worldwide. </p>

opencc-zeroDec 2022View details →
dryad36/100

Data from: Use of an exotic host plant reduces viral burden in a native insect herbivore

<p>Incorporation of exotic plants into the diets of native herbivores is a common phenomenon, influencing interactions with natural enemies and providing insight into the tritrophic costs and benefits of dietary expansion. We evaluated how use of an exotic plant, <em>Plantago lanceolata</em>, impacted immune performance, development, and susceptibility to pathogen infection in the neotropical herbivore<em> Anartia jatrophae</em> (Lepidoptera: Nymphalidae). Caterpillars were reared on <em>P. lanceolata</em> or a native plant, <em>Bacopa monnieri</em>, and experimentally infected with a pathogenic virus, Junonia coenia densovirus. We found that virus-challenged herbivores exhibited higher survival rates and lower viral burdens when reared on <em>P. lanceolata</em> compared to <em>B. monnieri</em>, though immune performance and development time were largely similar on the two plants. These findings reveal that use of an exotic plant can impact the vulnerability of a native herbivore to pathogen infection, suggesting diet-mediated protection against disease as a potential mechanism facilitating the incorporation of novel resources.</p>

opencc-zeroDec 2022View details →
dryad36/100

Recolonizing native wildlife facilitates exotic plant invasion into Singapore's rain forests: Data and R script

<p>Halting biological invasions and rewilding extirpated fauna are conservation interventions to bolster biodiversity, species interactions, and ecosystems. These actions are often considered separately and the potential for reintroduced wildlife to facilitate invasive plants has been largely overlooked. Here, we investigate the role of Singapore's recolonizing native wild pigs (<em>Sus scrofa</em>) in facilitating an invasive weed <em>Miconia crenata </em>into tropical rain forests, which are normally highly resistant to invasion. We conducted line-transect surveys in 11 Singaporean rain forests and used generalized linear mixed models to consider the contribution of pigs' soil disturbances, human forest paths, and other environmental covariates, on the density of <em>M. crenata</em>. We found that <em>M. crenata</em> was more abundant at forest edges and invasion into forest interior was facilitated by pigs, paths, and canopy gaps, but that these effects were all additive, not synergistic (i.e. not multiplicative). These<span> results highlight how modern invasions are driven by multiple disturbances as well as propagule pressure (e.g. urban birds dispersing seeds at forest edges where they establish in pig soil disturbances). </span>Singapore's extensive native forest restoration efforts may have provided plentiful edge and secondary forests that are well suited to pigs and <em>M. crenata</em>, which in turn undermine the aims of fostering later-successional native plant communities. To prevent negative externalities, we suggest that plant restoration and rewilding projects consider the potential role of wildlife in facilitating non-native plants, and couple these actions with preliminary screening of unintended consequences and continued monitoring, as well as limiting human-mediated weed invasion to minimize propagule sources.</p>

opencc-zeroJul 2023View details →
dryad36/100

Exotic plants accumulate and share herbivores yet dominate communities via rapid growth

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publicApr 2021View details →
dryad36/100

Community-level direct and indirect impacts of an invasive plant favour exotic over native species

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publicMay 2020View details →
dryad36/100

Data from: Plant-soil interactions during the native and exotic range expansion of an annual plant

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publicMar 2024View details →
dryad36/100

Biogeographic differences in plant-soil biota relationships contribute to the invasion exotic range expansion of Verbascum thapsus

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publicSep 2021View details →
dryad36/100

Recolonizing native wildlife facilitates exotic plant invasion into Singapore’s rain forests: Data and R script

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publicJul 2023View details →
dryad36/100

Data from: Use of an exotic host plant reduces viral burden in a native insect herbivore

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publicJan 2023View details →
dryad36/100

Plant regeneration trait syndromes, trade-offs, and linkages to adult abundance for native and exotic grassland plants

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publicSep 2025View details →
dryad36/100

Experimental shifts in exotic flowering phenology produce strong indirect effects on native plant reproductive success

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publicMar 2020View details →
dryad36/100

Data for: Invasion by an exotic grass species homogenises native freshwater plant communities

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publicDec 2022View details →
dryad36/100

Environmentally triggered variability in the genetic variance-covariance of herbivory resistance of an exotic plant Solidago altissima

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publicFeb 2021View details →
dryad36/100

Establishment from seed is more important for exotic than for native plant species

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publicDec 2023View details →
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Data from: Confirmation of independent introductions of an exotic plant pathogen of Cornus species, Discula destructiva, on the east and west coasts of North America

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publicJun 2018View details →

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