bioRxiv Science⌕ Search

Biology subjects

Livingston, D. B. H.

Publications and source records attributed to Livingston, D. B. H..

2 recordsLinked to original sources

Glial voltage-gated K+ channels modulate the neural abiotic stress tolerance of Drosophila melanogaster

Severe abiotic stress causes insects to lose nervous function and enter a state of paralytic coma. Central to this loss of function is a spreading depolarization (SD), where a characteristic collapse of ion gradients depolarizes neuronal and glial membranes and rapidly shuts down the CNS. Despite representing a critical limit to CNS function, the stress threshold that elicits SD can be altered by the process of acclimation, though the mechanisms underlying this response remain largely unknown. Here, we made electrophysiological measurements of SD and investigated the role of K+ channels in acclimation of the CNS stress response of Drosophila melanogaster. First, we demonstrate that improved cold tolerance in the CNS elicited by cold acclimation was abolished by pharmacological blockade of K+ channels with voltage-gated K+ channels representing most of this effect. Next, we used the UAS/Gal4 model system to screen for candidate genes encoding glial voltage-gated K+ channels and found that knockdown of sei- and Shaw-encoded channels mimicked the effect of K+ blockade in cold-acclimated flies. Furthermore we show that the knockdown of glial sei-encoded channels also impair tolerance to anoxia and heat stress. These findings suggest that voltage-gated K+ channels, especially those encoded by sei, are integral to the CNS stress- and acclimation-response and we posit that this is elicited through mechanisms involving glial spatial buffering and barrier function. Establishing such causal links between tissue-specific expression of candidate genes and SD mechanisms will inevitably aid our understanding of insect ecophysiology and SD-related neuropathologies. New and NoteworthyUsing thermal acclimation and pharmacology, we demonstrate that voltage-gated K+ channels are involved in setting the threshold for cold-induced spreading depolarization (SD) in the Drosophila melanogaster CNS. Glial knockdown of channels encoded by sei and Shaw reduced the resistance to cold-induced SD, highlighting their importance in acclimation of the CNS. Glia-specific sei-knockdown also reduced tolerance to anoxia and heat. We posit that sei-channels are involved the CNS stress- and acclimation-responses through glial spatial buffering mechanisms.

neuroscience↗

Active transport of brilliant blue FCF across the Drosophila midgut and Malpighian tubule epithelia

Under conditions of stress, many animals suffer from epithelial barrier disruption that can cause molecules to leak down their concentration gradients, potentially causing a loss of organismal homeostasis, further injury or death. Drosophila is a common insect model, used to study barrier disruption related to aging, traumatic injury, or environmental stress. Net leak of a non-toxic dye (Brilliant blue FCF) from the gut lumen to the hemolymph is often used to identify barrier failure under these conditions, but Drosophila are capable of actively transporting structurally-similar compounds. Here, we examined whether cold stress (like other stresses) causes Brilliant blue FCF (BB-FCF) to appear in the hemolymph of flies fed the dye, and if so whether Drosophila are capable of clearing this dye from their body following chilling. Using in situ midgut leak and transport assays as well as Ramsay assays of Malpighian tubule transport, we tested whether these ionoregulatory epithelia can actively transport BB-FCF. In doing so, we found that the Drosophila midgut and Malpighian tubules can mobilize BB-FCF via an active transcellular pathway, suggesting that elevated concentrations of the dye in the hemolymph may occur from increased paracellular permeability, reduced transcellular clearance, or both.\n\nSummary StatementDrosophila are able to actively secrete Brilliant blue FCF, a commonly used marker of barrier dysfunction

physiology↗