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Turcotte, M. M.

Publications and source records attributed to Turcotte, M. M..

5 recordsLinked to original sources

Neopolyploidy-induced changes in the giant duckweed (Spirodela polyrhiza) alter herbivore preference, performance, and plant population performance

PremisePolyploidy is a widespread mutational process in angiosperms that may alter population performance of not only plants but also their animal associates. Yet, knowledge of whether ploidy affects plant-herbivore dynamics is scarce. Here, we test whether aphid herbivores exhibit preference for diploid or neopolyploid plants, whether ploidy impacts plant and herbivore performance, and whether these interactions depend on plant genetic background. MethodsUsing multiple pairs of independently synthesized neotetraploid greater duckweed (Spirodela polyrhiza) and their diploid progenitors, we evaluated the effect of neopolyploidy on duckweeds interaction with the water-lily aphid (Rhopalosiphum nymphaeae). Using two-way choice experiments, we first evaluated feeding preference by the herbivore. We then evaluated the consequences of ploidy on aphid and plant performance by measuring population growth over multiple generations. Key ResultsAphids preferred neopolyploids over diploids when the plants were provided at equal abundances but not when they were provided at equal surface area, indicating the role of plant size in driving this preference. Additionally, neopolyploidy increased aphid population performance, but this result was highly dependent on the genetic lineage of the plant. Lastly, the impact of herbivory on neopolyploids vs. diploid duckweed varied greatly with genetic lineage, but overall, neopolyploids appeared to be generally less tolerant than diploids. ConclusionsWe conclude that polyploidization can impact the preference and performance of herbivores on their plant hosts, whereas plant performance depends on complex interactions between herbivory, ploidy, and genetic lineage. These results have significant implications for the establishment and persistence of plants and herbivores in nature.

ecology↗

Neopolyploidy increases stress tolerance and reduces fitness plasticity across multiple urban pollutants: support for the 'general purpose' genotype hypothesis.

Whole genome duplication is a common macromutation with extensive impacts from gene expression, to cellular function, and whole organism phenotype. As a result, it has been proposed that polyploids have general purpose genotypes that perform better than their diploid progenitors under stressful conditions. Here we test this hypothesis in the context of stresses presented by anthropogenic pollutants. Specifically, we tested how multiple neotetraploid genetic lineages of the Greater Duckweed (Spirodela polyrhiza) perform across a favorable control environment and five urban pollutants (iron, salt, manganese, copper, and aluminum). By quantifying the population growth rate of duckweed over multiple generations we found that across most pollutants, but not all, polyploidy decreased the growth rate of actively growing propagules but increased that of dormant ones. Yet, when considering total propagule production, polyploidy increased tolerance to most pollutants and polyploids maintained population-level fitness across pollutants better than diploids. Furthermore, broad-sense genetic correlations in growth rate among pollutants were all positive in neopolyploids but not so for diploids. Our results provide a rare test and support for the hypotheses that polyploids are more tolerant of stressful conditions and can maintain fitness better than diploids across heterogenous stresses. These results may help predict the distribution of polyploids across stress gradients such as those caused by urbanization and other human activities.

evolutionary biology↗

Experimentally quantifying impact of herbivory on duckweed communities in natural pond ecosystems.

Plant herbivory structures communities, impacts energy and nutrient flow in ecosystems, and drives speciation. Yet, our knowledge of plant-herbivore interactions remains limited in freshwater ecosystems compared to terrestrial ones. We still lack robust experimental data on the impact of herbivores in nature on whole families of important macrophytes such as the globally distributed duckweed family (Lemnaceae). We conducted a replicated manipulative field experiment, using exclosures, across multiple bodies of water quantifying both ambient herbivory as well as herbivory caused by the addition of two different weevil and aphid herbivores. We found that invertebrate herbivores can strongly impact duckweed multi-generational population growth (e.g., reducing daily relative growth rate by up to 82% compared to controls) and differentially impact duckweed species composition. These impacts, however, vary greatly across sites and with the identity of the herbivores. Our results suggest that insect herbivores can severely slow the growth of the of the worlds fastest growing plant family. It also provides crucial information as duckweed continue to be developed for various applied purposes such a biofuel production and bioremediation.

ecology↗

Characterization of microsatellite markers for the duckweed Spirodela polyrhiza and Lemna minor tested on samples from Europe or the United States of America.

Microsatellite primers are a valuable tool to use for both observational and experimental studies in numerous taxa. Here, we develop 18 and 16 microsatellite markers for the widespread duckweeds Lemna minor and Spirodela polyrhiza, respectively. All 18 L. minor primers and 12 of the 16 S. polyrhiza primers amplified polymorphic loci when tested on samples from Europe or Western Pennsylvania, USA.

genetics↗

Polyploidy impacts population growth and competition with diploids: multigenerational experiments reveal key life history tradeoffs

O_LIEcological theory predicts that early generation polyploids ("neopolyploids") should quickly go extinct owing to the disadvantages of rarity and competition with their diploid progenitors. However, polyploids persist in natural habitats globally. This paradox has been addressed theoretically by recognizing that reproductive assurance of neopolyploids and niche differentiation can promote establishment. Despite this, the direct effects of polyploidy at the population level remain largely untested even though establishment is an intrinsically population-level process. C_LIO_LIWe conducted population-level experiments where investment in current and future growth was tracked in four lineage pairs of diploids and synthetic neopolyploids of the aquatic plant Spirodela polyrhiza. Population growth was evaluated with and without competition between diploids and neopolyploids across a range of nutrient treatments. C_LIO_LIAlthough neopolyploid populations produce more biomass, they reach lower population sizes, and have reduced carrying capacities when growing alone or in competition across all nutrient treatments. Thus, contrary to individual-level studies, our population-level data suggest that neopolyploids are competitively inferior to diploids. Conversely, neopolyploid populations have greater investment in dormant propagule production than diploids. C_LIO_LIOur results show that neopolyploid populations should not persist based on current growth dynamics, but high potential future growth may allow polyploids to establish in subsequent growing seasons. C_LI

ecology↗