首页> 外文期刊>The Journal of Experimental Biology >Hypoxic survival strategies in two fishes: extreme anoxia tolerance in the North European crucian carp and natural hypoxic preconditioning in a coral-reef shark
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Hypoxic survival strategies in two fishes: extreme anoxia tolerance in the North European crucian carp and natural hypoxic preconditioning in a coral-reef shark

机译:两条鱼的低氧生存策略:北欧cru鱼的极度缺氧耐受性和珊瑚礁鲨鱼的自然低氧预处理

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Especially in aquatic habitats, hypoxia can be an important evolutionary driving force resulting in both convergent and divergent physiological strategies for hypoxic survival. Examining adaptations to anoxic/ hypoxic survival in hypoxia-tolerant animals may offer fresh ideas for the treatment of hypoxia-related diseases. Here, we summarise our present knowledge of two fishes that have evolved to survive hypoxia under very different circumstances. The crucian carp (Carassius carassius) is of particular interest because of its extreme anoxia tolerance. During the long North European winter, it survives for months in completely oxygen-deprived freshwater habitats.The crucian carp also tolerates a few days of anoxia at room temperature and, unlike anoxia-tolerant freshwater turtles, it is still physically active in anoxia. Moreover, the crucian carp does not appear to reduce neuronal ion permeability during anoxia and may primarily rely on more subtle neuromodulatory mechanisms for anoxic metabolic depression.The epaulette shark (Hemiscyllium ocellatum) is a tropical marine vertebrate. It lives on shallow reef platforms that repeatedly become cut off from the ocean during periods of low tides. During nocturnal low tides, the water [O-2] can fall by 80% due to respiration of the coral and associated organisms. Since the tides become lower and lower over a period of a few days, the hypoxic exposure during subsequent low tides will become progressively longer and more severe. Thus, this shark is under a natural hypoxic preconditioning regimen. Interestingly, hypoxic preconditioning lowers its metabolic rate and its critical Po-2. Moreover, repeated anoxia appears to stimulate metabolic depression in an adenosine-dependent way.
机译:特别是在水生生境中,缺氧可能是重要的进化驱动力,导致缺氧生存的趋同和趋同生理策略。检查耐缺氧动物对缺氧/低氧存活的适应性可能为治疗缺氧相关疾病提供新的思路。在这里,我们总结了我们目前对两种鱼的了解,这些鱼已经进化为可以在非常不同的情况下通过缺氧生存。由于extreme鱼具有极高的耐缺氧性,因此鱼(Carassius carassius)特别受关注。在漫长的北欧冬季中,it鱼在完全缺氧的淡水栖息地中可以生存数月。cru鱼在室温下还可以忍受几天的缺氧,并且与耐缺氧的淡水龟不同,它在缺氧中仍然具有身体活性。此外,the鱼似乎在缺氧时不会降低神经元离子的通透性,并且可能主要依赖于更微妙的神经调节机制来进行缺氧代谢抑制。肩章鲨(Hemiscyllium ocellatum)是热带海洋脊椎动物。它生活在浅礁平台上,在退潮期间,这些平台经常被海洋切断。在夜间退潮期间,由于珊瑚和相关生物的呼吸作用,水[O-2]可能下降80%。由于潮汐在几天之内变得越来越低,因此随后的潮汐中的低氧暴露将逐渐变得越来越严重。因此,该鲨鱼处于自然的低氧预处理条件下。有趣的是,低氧预处理会降低其代谢率和关键的Po-2。此外,反复的缺氧似乎以腺苷依赖性方式刺激代谢抑制。

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