海水酸化对铁角千孔藻(Millepora alcicornis)能量代谢的影响:柠檬酸合成酶活性的抑制表明有氧途径被破坏†

IF 3.5 Q3 ENGINEERING, ENVIRONMENTAL
Andrea Carlina Jesulich, Mariana Machado Lauer, Laura Fernandes de Barros Marangoni, Joseane Aparecida Marques, Yuri Dornelles Zebral, Cristiano Macedo Pereira, Gustavo Adolpho Santos Duarte, Débora de Oliveira Pires, Clovis Barreira e Castro, Emiliano Nicolas Calderon and Adalto Bianchini
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引用次数: 0

摘要

海洋酸化是世界范围内珊瑚礁的主要威胁,在这些条件下,已经有报道称alcicornis Millepora (Linnaeus, 1758)的生长减少。与能量代谢相关的酶的抑制被假设为与海洋酸化的生理影响相关的机制之一。因此,本研究通过中观实验研究了海水pH的三种下降水平是否会改变alcicornis体内参与能量代谢的关键酶的活性。水生珊瑚适应海洋中环境条件20 d,然后暴露于不同的海水pH水平[环境pH(8.1)和实验pH(7.8、7.5和7.2)]16和30 d。分析的终点包括参与糖酵解途径调节的关键酶的活性(己糖激酶和丙酮酸激酶),通过克雷布斯循环产生的有氧能量(柠檬酸合成酶)和通过乳酸形成产生的厌氧能量(乳酸脱氢酶)。结果表明,只有柠檬酸合成酶受到海水酸化的影响,因为在所有实验pH水平(7.8、7.5和7.2)下,其活性都明显降低。这一发现表明,以前报道的M. alcicornis在海水酸化条件下的生长减少可以至少部分地解释为对克雷布斯循环的负面影响,克雷布斯循环是参与有氧能量产生的主要途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Effect of seawater acidification on energy metabolism in the hydrocoral Millepora alcicornis: inhibition of citrate synthase activity indicates disruption in aerobic pathways†

Effect of seawater acidification on energy metabolism in the hydrocoral Millepora alcicornis: inhibition of citrate synthase activity indicates disruption in aerobic pathways†

Ocean acidification is a major threat to coral reefs worldwide, with reduced growth already reported in the hydrocoral Millepora alcicornis (Linnaeus, 1758) under these conditions. Inhibition of enzymes related to energy metabolism is hypothesized as one of the mechanisms associated with the physiological impacts of ocean acidification. Therefore, a mesocosm experiment was conducted to investigate whether three levels of decreasing seawater pH could alter the activity of key enzymes involved in the energy metabolism in M. alcicornis. Hydrocorals were acclimated to marine mesocosm conditions for 20 days and then exposed to different seawater pH levels [ambient pH (8.1) and experimental pH (7.8, 7.5 and 7.2)] for 16 and 30 days. Endpoints analyzed included the activity of key enzymes involved in the regulation of the glycolytic pathway (hexokinase and pyruvate kinase), aerobic energy production via the Krebs cycle (citrate synthase) and anaerobic energy production via lactate formation (lactate dehydrogenase). The results obtained show that only citrate synthase was affected by seawater acidification, as a marked reduction in its activity was observed at all experimental pH levels tested (7.8, 7.5 and 7.2). This finding indicates that reduced growth previously reported for M. alcicornis under seawater acidification conditions can be explained, at least in part, by a negative impact on the Krebs cycle, a major pathway involved in aerobic energy production.

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