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Data from: Cold-acclimation increases depolarization resistance and tolerance in muscle fibers from a chill-susceptible insect, Locusta migratoria

<p>Cold exposure depolarizes cells in insects due to a reduced electrogenic ion transport and a gradual increase in extracellular [K<sup>+</sup>]. Cold-induced depolarization is linked to cold injury in chill-susceptible insects, and the locust, <i>Locusta migratoria</i>, has shown improved cold tolerance following cold-acclimation through depolarization resistance. Here we investigate how cold-acclimation influences depolarization resistance and how this resistance relates to improved cold tolerance. To address this question, we investigated if cold-acclimation affects the electrogenic transport capacity and/or the relative K<sup>+</sup> permeability during cold exposure by measuring membrane potentials of warm- and cold-acclimated locusts in the presence/absence of ouabain (Na<sup>+</sup>/K<sup>+</sup> pump blocker) or 4-aminopyridine (4-AP, voltage-gated K<sup>+</sup> channel blocker). In addition, we compared the membrane lipid composition of muscle tissue from warm- and cold-acclimated locust, and the abundance of a range transcripts related to ion transport and cell injury accumulation. We found that cold-acclimated locusts are depolarization resistant due to an elevated K<sup>+</sup> permeability, facilitated by opening of 4-AP sensitive K<sup>+</sup> channels. In accordance, cold-acclimation was associated with an increased abundance of <i>shaker</i> transcripts (gene encoding 4-AP sensitive voltage-gated K<sup>+</sup> channels). Furthermore, we found that cold-acclimation improved muscle cell viability following exposure to cold and hyperkalemia even when muscles were depolarized substantially. Thus, cold-acclimation confers resistance to depolarization by altering the relative ion permeability, but cold-acclimated locusts are also more tolerant to depolarization.</p>

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