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Data from: Proximity to canopy mediates changes in the defensive chemistry and herbivore loads of an understory tropical shrub, Piper kelleyi
负责人:
关键词:
phytochemical diversity;Andrea Glassmire;light heterogeneity;Eois;intraspecific phytochemical variation;vertical stratification;Herbivory;Piper kelleyi Tepe
DOI:
doi:10.5061/dryad.v6p96q5
摘要:
Phytochemical traits are a key component of plant defense theory. Chemical ecology has been biased towards studying effects of individual metabolites
Data from: Chemical cues linked to risk: cues from belowground natural enemies enhance plant defences and influence herbivore behaviour
负责人:
Helms, Anjel M.
关键词:
below‐ground chemical ecology entomopathogenic nematodes plant defence tritrophic interactions
DOI:
doi:10.5061/dryad.5tk7357
摘要:
emit a characteristic blend of volatile compounds with bioactivity in plants and insects. EPN chemical cues influenced both performance and prefe
Data from: Step-wise evolution of complex chemical defenses in millipedes: a phylogenomic approach
负责人:
Rodriguez, Juanita
关键词:
DOI:
doi:10.5061/dryad.c50hm00
摘要:
the evolution of Earth’s biological complexity, and chemical defense evolution serves as an ideal study system. The classic explanation for the evolution
Data from: Macroevolution of leaf defenses and secondary metabolites across the genus Helianthus
负责人:
关键词:
chemical sunflowers physical HPLC herbivory pathogen
DOI:
doi:10.5061/dryad.5hq56
摘要:
resource environments. Here, we examined the evolution of leaf physical and chemical defenses and secondary metabolites in relation to environmental characteristic
Data from: Finding a home in the noise: cross-modal impact of anthropogenic vibration on animal search behaviour
负责人:
Roberts, Louise
关键词:
animal search behaviour anthropogenic noise chemical sensing cross-modal shells substrate-borne vibration
DOI:
doi:10.5061/dryad.655tf67
摘要:
Chemical cues and signals enable animals to sense their surroundings over vast distances and find key resources, like food and shelter. Howeve
Data from: Aposematism in the burying beetle? Dual function of anal fluid in parental care and chemical defense
负责人:
关键词:
Chemical defence;variation in coloration;Social immunity;public goods;warning signals
DOI:
doi:10.5061/dryad.770sn
摘要:
er the anal exudates also provide a responsive chemical defense, which is advertised to potential avian predators by the beetle’s orange and black
Data from: Phenotypic responses to microbial volatiles render a mold fungus more susceptible to insect damage
负责人:
关键词:
Insect-fungus interactions;Aspergillus;multispecies interactions;secondary metabolites;volatile organic compounds;Drosophila;Saccharomyces;microbial ecology;chemical interference
DOI:
doi:10.5061/dryad.pc1q925
摘要:
chemical defense” genes upon insect damage. These results suggest that volatiles can be ecologically important factors that affect the chemical?based combative
Data from: Active foraging for toxic prey during gestation in a snake with maternal provisioning of sequestered chemical defenses
负责人:
关键词:
antipredator defense maternal care defensive sequestration prey choice foraging strategy
DOI:
doi:10.5061/dryad.s0h82
摘要:
potential costs. Our Y-maze experiments demonstrated that gravid females were more likely to trail the chemical cues of toads than were males or non-gravid
Data from: Defensive chemicals of neighboring plants limit visits of herbivorous insects: associational resistance within a plant population
负责人:
关键词:
Neighboring plants;Defensive traits;Associational effect;Neighborhood effect;Nicotiana tabacum;herbivore;nicotine
DOI:
doi:10.5061/dryad.6mn56r9
摘要:
Despite our understanding of chemical defenses and their consequences for plant performance and herbivores, we know little about whether defensive
Data from: Soil microbial communities alter leaf chemistry and influence allelopathic potential among coexisting plant species
负责人:
关键词:
soil feedbacks;Aster novae-angliae;leaf chemistry;Asteraceae;allelopathy;Solidago canadensis;Solidago rugosa;Aster pilosus;Conditionality
DOI:
doi:10.5061/dryad.3418j
摘要:
While both plant–soil feedbacks and allelochemical interactions are key drivers of plant community dynamics, the potential for these two drivers

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