首页> 外文期刊>The Journal of Experimental Biology >Oxygen-limited thermal tolerance is seen in a plastron-breathing insect and can be induced in a bimodal gas exchanger
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Oxygen-limited thermal tolerance is seen in a plastron-breathing insect and can be induced in a bimodal gas exchanger

机译:氧气限制的热耐受性出现在呼吸昆虫中,并且可以在双峰气体交换器中诱导

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摘要

Thermal tolerance has been hypothesized to result from a mismatch between oxygen supply and demand. However, the generality of this hypothesis has been challenged by studies on various animal groups, including air-breathing adult insects. Recently, comparisons across taxa have suggested that differences in gas exchange mechanisms could reconcile the discrepancies found in previous studies. Here, we test this suggestion by comparing the behaviour of related insect taxa with different gas exchange mechanisms, with and without access to air. We demonstrate oxygen-limited thermal tolerance in air-breathing adults of the plastron-exchanging water bug Aphelocheirus aestivalis. Ilyocoris cimicoides, a related, bimodal gas exchanger, did not exhibit such oxygen-limited thermal tolerance and relied increasingly on aerial gas exchange with warming. Intriguingly, however, when denied access to air, oxygen-limited thermal tolerance could also be induced in this species. Patterns in oxygen-limited thermal tolerance were found to be consistent across life-history stages in these insects, with nymphs employing the same gas exchange mechanisms as adults. These results advance our understanding of oxygen limitation at high temperatures; differences in the degree of respiratory control appear to modulate the importance of oxygen in setting tolerance limits.
机译:假设热耐受性是由氧气供需不匹配引起的。但是,该假设的普遍性已受到对各种动物群体(包括呼吸成年昆虫)的研究的挑战。最近,各种生物分类之间的比较表明,气体交换机制的差异可以调和先前研究中发现的差异。在这里,我们通过比较具有和不具有空气接触的不同气体交换机制的相关昆虫类群的行为,来测试该建议。我们展示了plast气交换水bugAphelocheirus aestivalis的呼吸空气的成年人中的氧极限热耐受性。 Ilyocoris cimicoides,一种相关的双峰气体交换器,没有表现出这种受氧气限制的热耐受性,并且越来越依赖于伴随变暖的空中气体交换。有趣的是,当拒绝进入空气时,该物种也可能会诱导出氧气受限的热耐受性。在这些昆虫中,限氧热耐受性的模式在整个生命史阶段都是一致的,若虫采用与成虫相同的气体交换机制。这些结果提高了我们对高温下氧限制的理解;呼吸控制程度的差异似乎可以调节氧气在设定耐受极限时的重要性。

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