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Overgaard, J.

Publications and source records attributed to Overgaard, J..

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Neural dysfunction correlates with heat coma and CTmax in Drosophila but does not set the boundaries for heat stress survival

When heated, insects loose coordinated movement followed by the onset of heat coma (CTmax). These phenotypes are popular measures to quantify inter- and intraspecific differences in insect heat tolerance, and CTmax correlate well with current species distributions. Here we examined the function of the central nervous system (CNS) in five species of Drosophila with different heat tolerances, while they were exposed to either constant high temperature or a gradual increasing temperature (ramp). Tolerant species were able to preserve CNS function at higher temperatures and for longer durations than sensitive species and similar differences were found for the behavioral indices (loss of coordination and onset of heat coma). Furthermore, the timing and temperature (constant and ramp exposure, respectively) for loss of coordination or complete coma coincided with the occurrence of spreading depolarisation (SD) events in the CNS. These SD events disrupt neurological function and silence the CNS suggesting that CNS failure is the primary cause of impaired coordination and heat coma. Heat mortality occurs soon after heat coma in insects and to examine if CNS failure could also be the proximal cause of heat death, we used selective heating of the head (CNS) and abdomen (visceral tissues). When comparing the temperature causing 50% mortality (LT50) of each body part to that of the whole animal, we found that the head was not particularly heat sensitive compared to the abdomen. Accordingly, it is unlikely that nervous failure is the principal/proximate cause of heat mortality in Drosophila. Summary statementHyperthermic failure of the Drosophila central nervous system causes heat coma, a phenotype varying in temperature between drosophilids, but neural failure is likely not the primary cause of heat mortality.

physiology

Inter- and intraspecific differences in Drosophila cold tolerance are linked to hindgut reabsorption capacity

Maintaining extracellular osmotic and ionic homeostasis is crucial to maintain organismal function. In insects, hemolymph volume and ion content is regulated by the combined actions of the secretory Malpighian tubules and reabsorptive hindgut. When exposed to stressful cold, homeostasis is gradually disrupted, characterized by a debilitating increase in extracellular K+ concentration (hyperkalemia). In accordance with this paradigm, studies have found a strong link between the cold tolerance of insect species and their ability to maintain ion and water homeostasis at low temperature. This is also the case for drosophilids where studies have already established how inter- and intra-specific differences in cold tolerance are linked to the secretory capacity of Malpighian tubules. However, presently there is little information on the effects of temperature on the reabsorptive capacity of the hindgut in Drosophila. To address this question we developed a novel method that allows for continued measurements of hindgut ion and fluid reabsorption in Drosophila. Firstly we demonstrate that this assay is temporally stable (> 3 hours) and that the preparation is responsive to humoral stimulation and pharmacological intervention of active and passive transport in accordance with the current insect hindgut reabsorption model. Using this method at benign (24{degrees}C) and low temperature (3{degrees}C) we investigated how cold acclimation or cold adaptation affected the thermal sensitivity of osmoregulatory function. We found that cold tolerant Drosophila species and cold-acclimated D. melanogaster are innately better at maintaining rates of fluid and Na+ reabsorption at low temperature. Furthermore, cold adaptation and acclimation causes a relative reduction in K+ reabsorption at low temperature. These characteristic responses of cold adapted/acclimated Drosophila will act to promote maintenance of ion and water homeostasis at low temperature and therefore provide further links between adaptations in osmoregulatory capacity of insects and their ability to tolerate cold exposure.

physiology