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Biology subjects

Eddy, W. C.

Publications and source records attributed to Eddy, W. C..

2 recordsLinked to original sources

Functional traits of ectomycorrhizal trees influence their effects on surrounding soil organic matter properties

Ectomycorrhizal (EM) effects on forest ecosystem carbon (C) and nitrogen (N) cycling are highly variable, which may be due to underappreciated functional differences among EM-associating trees. We hypothesize that differences in functional traits among EM tree genera will correspond to differences in soil organic matter (SOM) dynamics. We explored how differences among three genera of angiosperm EM trees (Quercus, Carya, and Tilia) in functional traits associated with leaf litter quality, resource use and allocation patterns, and microbiome assembly related to overall soil biogeochemical properties. In support of our hypothesis, we found consistent differences among EM tree genera in function traits. Quercus trees had lower litter quality, lower {delta}13C in SOM, higher {delta}15N in leaf tissues, greater oxidative extracellular enzyme activities, and higher EM fungal diversity than Tilia trees, while Carya trees were often intermediary. These functional traits corresponded to overall SOM C and N dynamics and soil fungal and bacterial community composition. Our findings suggest that trait variation among EM-associating tree species should be an important consideration in assessing plant-soil relationships such that EM trees cannot be categorized as a unified functional guild.

ecology↗

A new conceptual framework explaining spatial variation in soil nitrous oxide emissions

Soil emissions of nitrous oxide (N2O), a potent greenhouse gas, contribute substantially to global warming from agriculture. Spatial variation in N2O emissions within agricultural fields leads to high uncertainty in the benefits of climate-smart agricultural practices. Here, we present a new conceptual framework explaining spatial variation in soil N2O emissions developed from high spatial resolution automated measurements of soil N2O emissions together with measurements of gross N2O fluxes and soil physicochemical properties in two separately managed maize fields in central Illinois, USA. We found that sub-field locations with consistently low N2O emissions had distinct biogeochemical properties compared to locations where high emissions occurred episodically, leading to spatial variation in which factors control N2O production rates. In the consistent N2O cold spots, soil nitrate (NO3-) and dissolved organic carbon (DOC) constrained N2O production irrespective of changes in soil moisture. In contrast, in the episodic N2O hot spots which had higher soil NO3- and DOC availability, N2O production was stimulated by increases in soil moisture. These findings form the cannon model which conceptualizes how sub-field scale variation in soil NO3- and DOC determines where increases in soil moisture can trigger high soil N2O emissions within agricultural fields.

ecology↗