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首页> 外文期刊>American Journal of Physiology >Control of breathing and adaptation to high altitude in the bar-headed goose.
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Control of breathing and adaptation to high altitude in the bar-headed goose.

机译:控制呼吸和适应高头鹅的高度。

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The bar-headed goose flies over the Himalayan mountains on its migratory route between South and Central Asia, reaching altitudes of up to 9,000 m. We compared control of breathing in this species with that of low-altitude waterfowl by exposing birds to step decreases in inspired O(2) under both poikilocapnic and isocapnic conditions. Bar-headed geese breathed substantially more than both greylag geese and pekin ducks during severe environmental (poikilocapnic) hypoxia (5% inspired O(2)). This was entirely due to an enhanced tidal volume response to hypoxia, which would have further improved parabronchial (effective) ventilation. Consequently, O(2) loading into the blood and arterial Po(2) were substantially improved. Because air convection requirements were similar between species at 5% inspired O(2), it was the enhanced tidal volume response (not total ventilation per se) that improved O(2) loading in bar-headed geese. Other observations suggest that bar-headed geese depress metabolism less than low-altitude birds during hypoxia and also may be capable of generating higher inspiratory airflows. There were no differences between species in ventilatory sensitivities to isocapnic hypoxia, the hypoxia-induced changes in blood CO(2) tensions or pH, or hypercapnic ventilatory sensitivities. Overall, our results suggest that evolutionary changes in the respiratory control system of bar-headed geese enhance O(2) loading into the blood and may contribute to this species' exceptional ability to fly high.
机译:灰头雁在其南亚和中亚之间的迁徙路线上飞越喜马拉雅山脉,海拔高达9000 m。我们通过暴露鸟类在poikilocapnic和isocapnic条件下的吸入O(2)逐步降低来比较该物种与低空水禽的呼吸控制。在严重的环境(poikilocapnic)缺氧(5%的O(2))作用下,条头雁的呼吸明显比灰雁和北京鸭都多。这完全是由于对低氧的潮气量反应增强,这将进一步改善支气管旁(有效)通气。因此,显着改善了血液中的O(2)和动脉Po(2)。由于空气对流的要求在5%吸入O(2)的物种之间是相似的,因此增强的潮气量响应(不是总通风量本身)改善了带头鹅的O(2)负荷。其他观察结果表明,在低氧条件下,大头雁抑制代谢的能力比低海拔鸟类要低,并且还可能产生更高的吸气气流。没有等离子间呼吸不足的通气敏感性,低氧诱导的血液CO(2)张力或pH值变化或高碳酸血症通气敏感性之间的差异。总体而言,我们的研究结果表明,长头雁的呼吸控制系统的进化变化会增强O(2)进入血液的负荷,并可能有助于该物种高飞的能力。

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