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首页> 外文期刊>The Journal of Experimental Biology >GABA metabolism is crucial for long-term survival of anoxia in annual killifish embryos
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GABA metabolism is crucial for long-term survival of anoxia in annual killifish embryos

机译:GABA代谢对于年度杀害胚胎的长期存活至关重要

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In most vertebrates, a lack of oxygen quickly leads to irreparable damages to vital organs, such as the brain and heart. However, there are some vertebrates that have evolved mechanisms to survive periods of no oxygen (anoxia). The annual killifish (Austrofundulus limnaeus) survives in ephemeral ponds in the coastal deserts of Venezuela and their embryos have the remarkable ability to tolerate anoxia for months. When exposed to anoxia, embryos of A. limnaeus respond by producing significant amounts of y-aminobutyric acid (GABA). This study aims to understand the role of GABA in supporting the metabolic response to anoxia. To explore this, we investigated four developmentally distinct stages of A. limnaeus embryos that vary in their anoxia tolerance. We measured GABA and lactate concentrations across development in response to anoxia and aerobic recovery. We then inhibited enzymes responsible for the production and degradation of GABA and observed GABA and lactate concentrations, as well as embryo mortality. Here, we show for the first time that GABA metabolism affects anoxia tolerance in A. limnaeus embryos. Inhibition of enzymes responsible for GABA production (glutamate decarboxylase) and degradation (GABA-transaminase and succinic acid semialdehyde dehydrogenase) led to increased mortality, supporting a role for GABA as an intermediate product and not a metabolic end-product. We propose multiple roles for GABA during anoxia and aerobic recovery in A. limnaeus embryos, serving as a neurotransmitter, an energy source, and an anti-oxidant.
机译:在大多数脊椎动物中,缺氧很快就会导致到重要的器官,如大脑和心脏的可索赔损害。然而,有一些脊椎动物具有进化的机制,以存活不含氧气(缺氧)。年度杀戮(Austrafululululululus Limnaeus)在委内瑞拉沿海沙漠中幸存的琐事池塘,他们的胚胎具有显着的耐受性贫砷的能力。当暴露于缺氧时,通过产生大量的Y-氨基丁酸(GABA)来响应A. Limnaeus的胚胎。本研究旨在了解GABA在支持对缺氧的代谢反应方面的作用。为了探索这一点,我们调查了四种胚胎胚胎的巨大明显阶段,这些胚胎在贫血性耐受性中变化。我们以缺氧和有氧恢复,在开发中测量了GABA和乳酸浓度。然后,我们抑制负责GABA的生产和降解的酶,观察到GABA和乳酸浓度,以及胚胎死亡率。在这里,我们首次展示了GABA代谢影响A.IMINAEUS胚胎的缺氧耐受性。抑制对GABA生产(谷氨酸脱羧酶)和降解(GABA-转氨酶和琥珀酸半醛脱氢酶)的抑制导致死亡率增加,支持GABA作为中间产物的作用,而不是代谢最终产物。我们在缺氧期间为GABA提出了多种作用,并用作神经递质,能量源和抗氧化剂的植物胚胎中的有氧恢复。

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