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Jenkins, D. G.

Publications and source records attributed to Jenkins, D. G..

2 recordsLinked to original sources

Spatial scaling of beta diversity supports the regional community concept for clades as different as ants, birds, diatoms, and trees

AimThree fundamental and inter-related concepts have accrued debates: ecological communities, beta diversity ({beta}), and spatial scale. Spatial scaling of {beta} informs the community concept because the scale of maximal {beta} corresponds to the most apparent size of an ecological community (without invoking external features of habitat, etc.). Here we test five alternative hypotheses about spatial scaling of {beta} for ants, birds, diatoms, and trees across the contiguous USA, using spatial grains from 1 to 106 km2. We compare {beta} scaling among clades and test hypotheses about repeatability where data permit for: (a) summer and winter bird {beta} in six consecutive years; (b) trees through time (4 years, spaced 5 years apart). Finally, we compare different forms of {beta} (i.e., observed and deviations from null models based on spatial heterogeneity and spatial homogeneity). LocationThe contiguous United States of America Time PeriodRecent but varying with clade Taxa Studiedants, birds, diatoms, and trees MethodsWe obtained data from publicly-available sources and assigned point locations to hexagonal grids ranging from 1 to 106 km2. At each spatial grain, we calculated mean pairwise {beta} between each hexagon and its neighboring grids. We also compared alternative {beta} measures and evaluated potential confounding effects of neighborhood size and species richness on results. ResultsSpatial scaling of {beta} repeatedly supported the regional community concept among clades, though with different spatial scales per clade. Based on peak mean {beta}, community size for trees ([~]300 km2) < winter birds ([~]500 km2) < summer birds ([~]2000 km2) {approx} ants ([~]2000 km2) < diatoms ([~]11,000 km2). We note that community scales represent peaks on gradients rather than definitive one-size-fits-all scales. Spatial scaling of {beta} was sensitive to seasonality (birds) and consistent among years for both birds and trees. Also, {beta} deviation from a null model based on spatial heterogeneity adjusted observed {beta} but was less sensitive to neighborhood size and species richness than {beta} deviation based on spatial homogeneity. Main conclusionsResults here indicate that: (a) similar patterns should occur across the tree of life; (b) local ecological and evolutionary forces scale up to form repeatable regional community patterns in ways not yet fully understood; (c) local biodiversity conservation efforts need to be coordinated at biogeographical scales to best achieve goals; and (d) a recent method to calculate {beta} deviation from a null model based on spatial heterogeneity improves {beta} research.

ecology↗

Natural history and ecological effects on the establishment and fate of Florida carpenter ant cadavers infected by the parasitic manipulator Ophiocordyceps camponoti-floridani.

O_LIOphiocordyceps fungi manipulate the behavior of their ant hosts to produce a summit disease phenotype, thereby establishing infected ant cadavers onto vegetation at elevated positions suitable for fungal growth and transmission. Multiple environmental and ecological factors have been proposed to shape the timing, positioning, and outcome of these manipulations. C_LIO_LIWe conducted a long-term field study of Ophiocordyceps camponoti-floridani infections of Camponotus floridanus ants - the Florida zombie ants. We propose and refine hypotheses on the factors that shape infection outcomes by tracking the occurrence of and fungal growth from hundreds of ant cadavers. We modeled and report these data in relation to weather, light, vegetation, and attack by hyperparasites. C_LIO_LIWe investigated environmental factors that could affect the occurrence and location of newly manipulated ant cadavers. New cadaver occurrence was preferentially biased toward epiphytic Tillandsia bromeliads, canopy openness, and summer weather conditions (an interactive effect of temperature, humidity, and precipitation). Furthermore, we suggest that incident light at the individual cadaver level reflects microhabitat choice by manipulated ants or selective pressure on cadaver maintenance for conditions that improve fungal survival. C_LIO_LIWe also asked which environmental conditions affect fungal fitness. Continued fungal development of reproductive structures and putative transmission increased with moist weather conditions (interaction of humidity and precipitation) and canopy openness, while being reduced by hyperparasitic mycoparasite infections. Moreover, under the most open canopy conditions, we found an atypical Ophiocordyceps growth morphology that could represent a plastic response to conditions influenced by high light levels. C_LIO_LITaken together, we explore general trends and the effects of various ecological conditions on host and parasite disease outcomes in the Florida zombie ant system. These insights from the field can be used to inform experimental laboratory setups that directly test the effects of biotic and abiotic factors on fungus-ant interactions or aim to uncover underlying molecular mechanisms. C_LI

ecology↗