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上升流强度调节沿海物种的适应性和生理表现:对 Humboldt 海流系统中紫扇贝养殖的影响。

Upwelling intensity modulates the fitness and physiological performance of coastal species: Implications for the aquaculture of the scallop Argopecten purpuratus in the Humboldt Current System.

机构信息

Centro de Estudios Avanzados en Zonas Áridas (CEAZA), Coquimbo, Chile; Center for the Study of Multiple-drivers on Marine Socio-Ecological Systems (MUSELS), Chile.

Centro de Innovación Acuícola AquaPacífico, Coquimbo, Chile; Departamento de Biología Marina, Facultad de Ciencias del Mar, Universidad Católica del Norte, Coquimbo, Chile.

出版信息

Sci Total Environ. 2020 Nov 25;745:140949. doi: 10.1016/j.scitotenv.2020.140949. Epub 2020 Jul 19.

Abstract

Understanding how marine species cope with the natural environmental variability of their native habitats will provide significant information about their sensitivity to the potential environmental changes driven by climate change. In particular, marine species inhabiting upwelling ecosystems are experiencing low seawater temperatures, as well as, acidic and low oxygen conditions as a consequence of the nature of the deep upwelled waters. Our study is focused on one of the most important socio-economical resources of the Humboldt Current System (HCS): the scallop Argopecten purpuratus which has been historically subjected to intensive aquaculture in areas influenced by upwelling processes. Here, a long-term field experiment was performed to understand how tolerant and well-locally-adapted is A. purpuratus to upwelling conditions by studying a set of fitness, physiological, and biomineralogical traits. Stronger upwelling generated a minor water column stratification, with lower temperatures, pH, and oxygen conditions. On the contrary, as upwelling weakened, temperature, pH, and oxygen availability increased. Finally, upwelling intensity also determined the number, duration, and intensity of the cooling and de-oxygenation events occurring in A. purpuratus habitat, as well as, the food availability (chlorophyll-a concentration, Chl-a). Physiologically, A. purpuratus was able to cope with stressful environmental conditions imposed by higher upwelling intensities by enhancing its metabolic and calcification rates, as well, producing higher concentrations of the shell organic matter. These physiological changes impacted the total energy budget, which was highly dependent on Chl-a concentration, and revealed important traits trade-offs with significant fitness costs (higher mortalities emerged when longer and more intense upwelling events succeed). Our study increases the knowledge about the physiological performance and tolerance of this important resource to the ocean acidification and ocean-deoxygenation imposed by variable upwelling intensities, as well as, its potential vulnerability under future changing conditions driven by a potential upwelling intensification.

摘要

了解海洋物种如何应对其原生栖息地的自然环境变化,将为它们对气候变化驱动的潜在环境变化的敏感性提供重要信息。特别是,栖息在上升流生态系统中的海洋物种正经历着低温、酸性和低氧条件,这是由于深部上升水的性质造成的。我们的研究集中在洪堡海流系统(HCS)最重要的社会经济资源之一:扇贝 Argopecten purpuratus,它在受上升流过程影响的地区一直受到密集的水产养殖。在这里,进行了一项长期的野外实验,通过研究一组适应性和生理特征,来了解 A. purpuratus 对上升流条件的耐受性和适应程度。较强的上升流导致较小的水柱分层,温度、pH 值和氧气条件较低。相反,随着上升流减弱,温度、pH 值和氧气供应增加。最后,上升流强度还决定了发生在 A. purpuratus 栖息地的冷却和缺氧事件的数量、持续时间和强度,以及食物供应(叶绿素-a 浓度,Chl-a)。在生理上,A. purpuratus 通过提高其新陈代谢和钙化率来应对较高上升流强度带来的压力环境条件,同时产生更高浓度的壳有机质。这些生理变化影响了总能量预算,该预算高度依赖于 Chl-a 浓度,并揭示了与重要适应性成本相关的重要特征权衡(当更长和更强烈的上升流事件发生时,死亡率更高)。我们的研究增加了对这种重要资源对由可变上升流强度引起的海洋酸化和缺氧的生理表现和耐受性的了解,以及在未来由上升流强度潜在增强驱动的变化条件下其潜在脆弱性。

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