4.5 Article

Altitudinal variation in bumble bee (Bombus) critical thermal limits

Journal

JOURNAL OF THERMAL BIOLOGY
Volume 59, Issue -, Pages 52-57

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.jtherbio.2016.04.015

Keywords

Bumble bees; Critical thermal limits; Elevation; CTmin; CTmax; T-rec

Funding

  1. Department of Zoology and Physiology
  2. Grand Teton Association Boyd Evison Graduate Fellowship
  3. US National Science Foundation [DEB-1457659]
  4. Direct For Biological Sciences
  5. Division Of Environmental Biology [1457659] Funding Source: National Science Foundation

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Organism critical thermal limits are often tightly linked to current geographic distribution and can therefore help predict future range shifts driven by changing environmental temperatures. Thermal tolerance of diverse organisms often varies predictably with latitude, with upper thermal limits changing little and lower thermal limits decreasing with latitude. Despite similarly steep gradients in environmental temperatures across altitude, few studies have investigated altitudinal variation in critical thermal limits. We estimated critical thermal minimum (CTmin), critical thermal maximum (CTmax) and recovery temperature (T-rec) by tracking righting response of three bumble bee species during thermal ramps: Bombus huntii collected from 2180 m asl, and Bombus bifarius and Bombus sylvicola collected from 3290 m asl in Wyoming, USA. Overall, larger bees could tolerate more extreme temperatures, likely due to a thermal inertia driven lag between core body temperatures and air temperatures. Despite their smaller size, high altitude bumble bees tolerated colder air temperatures: they had similar to 1 degrees C lower Crmin and recovered from cold exposure at similar to 3-4 degrees C lower air temperatures. Conversely, low altitude bees tolerated similar to 5 degrees C hotter air temperatures. These altitudinal differences in thermal tolerance parallel differences in average daily minimum (1.2 degrees C) and maximum (7.5 degrees C) temperatures between these sites. These results provide one of the few measurements of organism thermal tolerance across altitude and the first evidence for geographical differences in tolerance of temperature extremes in heterothermic bumble bees. (C) 2016 Elsevier Ltd. All rights reserved.

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