首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Reestablishment of ion homeostasis during chill-coma recovery in the cricket Gryllus pennsylvanicus
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Reestablishment of ion homeostasis during chill-coma recovery in the cricket Gryllus pennsylvanicus

机译:pen冷G恢复过程中离子稳态的重建

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The time required to recover from cold-induced paralysis (chill-coma) is a common measure of insect cold tolerance used to test central questions in thermal biology and predict the effects of climate change on insect populations. The onset of chill-coma in the fall field cricket {Gryllus pennsylvanicus, Orthoptera: Gryllidae) is accompanied by a progressive drift of Na~+ and water from the hemolymph to the gut, but the physiological mechanisms underlying recovery from chill-coma are not understood for any insect. Using a combination of gravimetric methods and atomic absorption spectroscopy, we demonstrate that recovery from chill-coma involves a reestablishment of hemolymph ion content and volume driven by removal of Na~+ and water from the gut. Recovery is associated with a transient elevation of metabolic rate, the time span of which increases with increasing cold exposure duration and closely matches the duration of complete osmotic recovery. Thus, complete recovery from chill-coma is metabolically costly and encompasses a longer period than is required for the recovery of muscle potentials and movement. These findings provide evidence that physiological mechanisms of hemolymph ion content and volume regulation, such as ion-motive ATPase activity, are instrumental in chill-coma recovery and may underlie natural variation in insect cold tolerance.
机译:从寒冷引起的麻痹(寒冷昏迷)中恢复所需的时间是昆虫耐寒性的常用度量,用于测试热生物学中的核心问题并预测气候变化对昆虫种群的影响。秋季field(Gryllus pennsylvanicus,直翅目:Gryllidae)出现冷昏迷的同时伴随着Na〜+和水从淋巴到肠的逐渐漂移,但是从冷昏迷中恢复的生理机制却并非如此被任何昆虫所理解。使用重量分析法和原子吸收光谱法相结合,我们证明了从冷昏迷中恢复涉及通过从肠中去除Na〜+和水驱动的血淋巴离子含量和体积的重建。恢复与代谢率的瞬时升高相关,其时间跨度随着冷暴露持续时间的增加而增加,并且与完全渗透恢复的持续时间紧密匹配。因此,从冷昏迷中完全恢复在代谢上是昂贵的,并且比恢复肌肉电位和运动所需的时间更长。这些发现提供了证据,表明血淋巴离子含量和体积调节的生理机制,例如离子动力ATPase的活性,在寒冷昏迷的恢复中起着重要作用,并且可能是昆虫耐寒性的自然变化的基础。

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