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Botsch, J. C.

Publications and source records attributed to Botsch, J. C..

4 recordsLinked to original sources

Resource use differences of two coexisting chironomid species at localized scales

The abundances of competing species may show positive correlations in time and space if they rely on a shared resource. Such positive correlations might obscure resource partitioning that facilitates coexistence of competitors and affects their abundances, spatial distributions, and population dynamics. Here, we examine the potential for resource partitioning between two ecologically similar midge species (Diptera: Chironomidae) in Lake Myvatn, Iceland. Tanytarsus gracilentus and Chironomus islandicus larvae coexist at high abundances in benthic habitats, and they have been previously described as feeding upon diatoms and detritus. Furthermore, both species show large, roughly synchronized population fluctuations, implying potential reliance on a shared fluctuating resource and posing the question of how these species coexist at high abundances. We first considered spatial partitioning of larvae; across multiple sites, abundances of both species were positively correlated. Thus, spatial partitioning across different sites in the lake did not appear to be strong. We then inferred differences in dietary resource use with stable carbon isotopes. T. gracilentus larvae had higher {delta}13C values than C. islandicus (mean difference = 5.39 {+/-} 1.84{per thousand}), suggesting interspecific differences in resource use. Differences in resource selectivity, tube-building behavior, and feeding styles may facilitate resource partitioning between these two species. Relative to surface sediments, T. gracilentus had higher {delta}13C values (1.84 {+/-} 0.96{per thousand}), suggesting that they selectively graze on 13C-enriched resources such as productive algae from the surface of their tubes. In contrast, C. islandicus had lower {delta}13C values than surface sediments (-2.87 {+/-} 1.95{per thousand}), suggesting reliance on isotopically depleted resources, which may include detrital organic matter and associated microbes that larvae selectively consume from the sediment surface or within their tube walls. Overall, our study illustrates that coexisting and ecologically similar species may show positive correlations in space and time while using different resources at fine spatial scales.

ecology↗

Dependence of an aquatic insect population on contemporaneous primary production

O_LICharacterizing the dynamics of energy flow through ecosystems requires quantifying the degree to which primary and secondary production are coupled. This coupling is expected to be tight in ecosystems with high internal production relative to external carbon and energy inputs. C_LIO_LIWe experimentally quantified the dependence of aquatic insect emergence on fresh primary production, specifically for the midge population in Lake Myvatn, Iceland. Using field mesocosms, we manipulated algal primary production by reducing light availability via shading. We then used dissolved oxygen incubations to estimate fluxes of carbon through photosynthesis (i.e., gross primary production or "GPP") over the course of the experiment. C_LIO_LIWe found that elevated GPP was associated with higher emergence rates of adults, as judged both by comparison of emergence across the experimental shading treatments and estimates of in situ GPP within the mesocosms. Furthermore, larger adults emerged earlier than smaller ones, suggesting that asymmetries in resource availability among individuals affected the timing of emergence. Nonetheless, midge emergence was substantial under light-limiting conditions, indicating that while midges benefit from primary production contemporaneous with larval development, they are also capable of completing their life cycles on carbon already existing in the organic matter pool. C_LIO_LIOur results show that even in systems with limited allochthonous inputs, contemporaneous primary production may be not necessary for high secondary production and insect emergence. Instead, consumers can develop from consumption of biomass derived from past autochthonous primary production. This suggests that primary production and consumer dynamics can be partially decoupled in time in systems that depend on internal production. C_LI

ecology↗

Ecosystem engineering alters density-dependent feedbacks in an aquatic insect population

Ecosystem engineers have large impacts on the communities in which they live, and these impacts may feed back to populations of engineers themselves. In this study, we assessed the effect of ecosystem engineering on density-dependent feedbacks for midges in Lake Myvatn, Iceland. The midge larvae reside in the sediment and build silk tubes that provide a substrate for algal growth, thereby elevating benthic primary production. Benthic algae are in turn the primary food source for the midge larvae, setting the stage for the effects of engineering to feed back to the midges themselves. Using a field mesocosm experiment manipulating larval midge densities, we found a generally positive but nonlinear relationship between density and benthic production. Furthermore, adult emergence increased with the primary production per midge larva. By combining these two relationships in a simple model, we found that the positive effect of midges on benthic production weakened the negative density dependence at low to intermediate larval densities. However, this benefit disappeared at high densities when midge consumption of primary producers exceeded their positive effects on primary production through ecosystem engineering. Our results illustrate how ecosystem engineering can alter density-dependent feedbacks for engineer populations.

ecology↗

Quantifying community responses to environmental variation from replicate time series

Time-series data for ecological communities are increasingly available from long-term studies designed to track species responses to environmental change. However, classical multivariate methods for analyzing community composition have limited applicability for time series, as they do not account for temporal autocorrelation in community-member abundances. Furthermore, traditional approaches often obscure the connections between responses at the community level and those for individual taxa, limiting their capacity to infer mechanisms of community change. We show how linear mixed models that account for group-specific temporal autocorrelation and observation error can be used to infer both taxon- and community-level responses to environmental predictors from replicated time-series data. Variation in taxon-specific responses to predictors is modeled using random effects, which can be used to characterize variation in community composition. Moreover, the degree of autocorrelation is estimated separately for each taxon, since this is likely to vary due to differences in their underlying population dynamics. We illustrate the utility of the approach by analyzing the response of a predatory arthropod community to spatiotemporal variation in allochthonous resources in a subarctic landscape. Our results show how mixed models with temporal autocorrelation provide a unified approach to characterizing taxon- and community-level responses to environmental variation through time.

ecology↗