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VanderWright, W. J.

Publications and source records attributed to VanderWright, W. J..

2 recordsLinked to original sources

From wings to tails: the aspect ratio of propulsive surfaces as a general proxy for vertebrate dispersal potential

Dispersal shapes many fundamental processes, however, comprehensive measures of dispersal are unavailable for most taxa, limiting our ability to evaluate ecological theory at broad scales. Existing tracking data are often taxonomically and geographically biased, highlighting the need for alternative trait-based approaches to infer dispersal potential. Here, we test whether the aspect ratio of propulsive surfaces provides a general morphological basis for inferring dispersal potential. We show that caudal fin shape is a morphological indicator of dispersal potential in sharks, as it predicts swimming speed and geographic range size. Across 452 (82%) shark species, we find no latitudinal gradient in dispersal potential, contrasting with patterns observed in birds. Instead, dispersal potential is structured by ecological specialization, with no direct effect of environmental temperature on caudal fin shape. We find high dispersal potential is associated with pelagic habitats and metabolically relevant traits, including body size and oxygen uptake capacity. Because morphology can be measured from museum specimens and illustrations, this approach offers opportunities to compare dispersal potential across air and water dwelling vertebrates.

ecology↗

Ecological lifestyle and gill slit height across sharks

Morphology that is linked to metabolic rate - metabolic morphology - provides broad comparative insights into the physiological performance and ecological function of species. However, some metabolic morphological traits, such as gill surface area, require costly and lethal sampling. Measurements from anatomically-accurate drawings, such as those in field guides, offer the opportunity to understand physiological and ecological relationships without the need for physical, lethal sampling. Here, we assess the relationship between the metabolic physiology and ecology of nearly all extant sharks. Specifically, we examine the relationship between gill slit height and each of the three traits that comprise ecological lifestyle: activity, maximum size, and depth. We find that gill slit heights are positively related to activity (measured by the aspect ratio of the caudal fin) and maximum size but negatively related to depth. We also show that gill slit height is best explained by the suite of ecological lifestyle traits rather than any single trait. These results suggest that more active, larger, and shallower species have higher metabolic demands and that these greater metabolic demands can be estimated from external morphological and ecological traits. Our work demonstrates that meaningful ecophysiological relationships can be revealed through measurable metabolic morphological traits from anatomically-accurate drawings.

ecology↗