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1.
J Chem Ecol ; 47(3): 313-321, 2021 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-33683546

RESUMO

Climate warming can influence interactions between plants and associated organisms by altering levels of plant secondary metabolites. In contrast to studies of elevated temperature on aboveground phytochemistry, the consequences of warming on root chemistry have received little attention. Herein, we investigated the effects of elevated temperature, defoliation, and genotype on root biomass and phenolic compounds in trembling aspen (Populus tremuloides). We grew saplings of three aspen genotypes under ambient or elevated temperatures (+4-6 °C), and defoliated (by 75%) half of the trees in each treatment. After 4 months, we harvested roots and determined their condensed tannin and salicinoid (phenolic glycoside) concentrations. Defoliation reduced root biomass, with a slightly larger impact under elevated, relative to ambient, temperature. Elevated temperature decreased condensed tannin concentrations by 21-43% across the various treatment combinations. Warming alone did not alter salicinoid concentrations but eliminated a small negative impact of defoliation on those compounds. Graphical vector analysis suggests that effects of warming and defoliation on condensed tannins and salicinoids were predominantly due to reduced biosynthesis of these metabolites in roots, rather than to changes in root biomass. In general, genotypes did not differ in their responses to temperature or temperature by defoliation interactions. Collectively, our results suggest that future climate warming will alter root phytochemistry, and that effects will vary among different classes of secondary metabolites and be influenced by concurrent ecological interactions such as herbivory. Temperature- and herbivory-mediated changes in root chemistry have the potential to influence belowground trophic interactions and soil nutrient dynamics.


Assuntos
Desfolhantes Químicos/química , Extratos Vegetais/análise , Folhas de Planta/química , Raízes de Plantas/química , Raízes de Plantas/metabolismo , Populus/química , Populus/metabolismo , Animais , Biomassa , Mudança Climática , Desfolhantes Químicos/metabolismo , Genótipo , Glicosídeos/química , Glicosídeos/metabolismo , Herbivoria , Larva/efeitos dos fármacos , Mariposas , Fenóis/química , Fenóis/metabolismo , Folhas de Planta/metabolismo , Proantocianidinas/química , Proantocianidinas/metabolismo , Metabolismo Secundário , Solo , Temperatura
2.
Anal Bioanal Chem ; 405(4): 1333-44, 2013 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-23180073

RESUMO

Poplar (Populus) and birch (Betula) species are widely distributed throughout the northern hemisphere, where they are foundation species in forest ecosystems and serve as important sources of pulpwood. The ecology of these species is strongly linked to their foliar chemistry, creating demand for a rapid, inexpensive method to analyze phytochemistry. Our study demonstrates the feasibility of using near-infrared reflectance spectroscopy (NIRS) as an inexpensive, high-throughput tool for determining primary (e.g., nitrogen, sugars, starch) and secondary (e.g., tannins, phenolic glycosides) foliar chemistry of Populus and Betula species, and identifies conditions necessary for obtaining reliable quantitative data. We developed calibrations with high predictive power (residual predictive deviations ≤ 7.4) by relating phytochemical concentrations determined with classical analytical methods (e.g., spectrophotometric assays, liquid chromatography) to NIR spectra, using modified partial least squares regression. We determine that NIRS, although less sensitive and precise than classical methods for some compounds, provides useful predictions in a much faster, less expensive manner than do classical methods.


Assuntos
Betula/química , Extratos Vegetais/análise , Folhas de Planta/química , Populus/química , Espectroscopia de Luz Próxima ao Infravermelho/métodos , Nitrogênio/análise , Amido/análise , Taninos/análise
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