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首页> 外文期刊>Progress in Oceanography >Spawning areas of eastern Baltic cod revisited: Using hydrodynamic modelling to reveal spawning habitat suitability, egg survival probability, and connectivity patterns
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Spawning areas of eastern Baltic cod revisited: Using hydrodynamic modelling to reveal spawning habitat suitability, egg survival probability, and connectivity patterns

机译:再探波罗的海鳕鱼东部的产卵区:使用流体动力学模型揭示产卵栖息地的适宜性,卵的存活概率和连通性模式

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摘要

In the highly variable environment of the Baltic Sea two genetically distinct cod stocks exist, one west of the island of Bornholm, which is referred to as the western stock, and one to the east of Bornholm, the eastern stock. A hydrodynamic model combined with a Lagrangian particle tracking technique was utilised to provide spatially and temporally resolved long-term information on environmentally-related (i) spawning habitat size, (ii) egg/yolk-sac larval survival, (iii) separation of causes of mortality, and (iv) connectivity between spawning areas of eastern Baltic cod. Simulations were performed to quantify processes generating heterogeneity in spatial distribution of cod eggs and yolk sac larvae up to the first feeding stage. The spatial extent of cod eggs represented as virtual drifters is primarily determined by oxygen and salinity conditions at spawning, which define the habitat requirement to which cod's physiology is suited for egg development. The highest habitat suitability occurred in the Bornholm Basin, followed by the Gdansk Deep, while relatively low habitat suitability was obtained for the Arkona and the Gotland Basin. During drift egg and yolk sac larval survival is to a large extent affected by sedimentation. Eggs initially released in the western spawning grounds (Arkona and Bornholm Basin) were more affected by sedimentation than those released in the eastern spawning grounds (Gdansk Deep and Gotland Basin). Highest relative survival of eastern Baltic cod eggs occurred in the Bornholm Basin, with a pronounced decrease towards the Gdansk Deep and the Gotland Basin. Relatively low survival rates in the Gdansk Deep and in the Gotland Basin were attributable to oxygen-dependent mortality. Low oxygen content had almost no impact on survival in the Arkona Basin. For all spawning areas temperature dependent mortality was only evident after severe winters. Egg buoyancy in relation to topographic features like bottom sills and strong bottom slopes could appear as a barrier for the transport of Baltic cod eggs and yolk sac larvae and could potentially limit the connectivity of Baltic cod early life stages between the different basins in the western and eastern Baltic Sea. The possibility of an eastward directed transport up to the first-feeding larval stage exists only for eggs and yolk sac larvae at high buoyancy levels, suggesting that dispersal of early life stages between these spawning areas is limited. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在波罗的海变化多端的环境中,存在两种遗传上不同的鳕鱼种群,其中一个位于博恩霍尔姆岛以西,被称为西部种群,另一个位于博恩霍尔姆以东,即东部种群。利用与拉格朗日粒子跟踪技术相结合的流体动力学模型来提供与环境有关的(i)产卵栖息地大小,(ii)卵/卵黄囊幼虫存活,(iii)原因分离的时空分解的长期信息。死亡率,以及(iv)波罗的海鳕鱼东部产卵区之间的连通性。进行模拟以量化直至第一饲养阶段在鳕鱼卵和卵黄囊幼虫的空间分布中产生异质性的过程。表示为虚拟浮游生物的鳕鱼卵的空间范围主要由产卵时的氧气和盐度条件决定,氧气和盐度条件确定了鳕鱼生理学适合卵发育的栖息地要求。生境适应性最高的地区是博恩霍尔姆盆地,其次是格但斯克深部地区,而阿科纳盆地和哥特兰盆地的生境适宜性则相对较低。在漂流过程中,卵和卵黄囊幼虫的存活在很大程度上受到沉积的影响。最初在西部产卵场(阿科纳和博恩霍尔姆盆地)释放的卵比在东部产卵场(格但斯克深部和哥得兰盆地)释放的卵受沉积的影响更大。波罗的海东部鳕鱼卵的相对存活率最高,发生在博恩霍尔姆盆地,而向格但斯克深部和哥得兰盆地则明显减少。格但斯克深部和哥特兰盆地的相对较低的生存率归因于氧依赖性死亡率。低氧含量对阿科纳盆地的生存几乎没有影响。对于所有产卵区,仅在严冬之后才明显发现温度依赖性死亡率。与地形特征(如底槛和强烈的底坡)相关的鸡蛋浮力可能会成为波罗的海鳕鱼卵和卵黄囊幼虫运输的障碍,并有可能限制西部和西部不同盆地之间波罗的海鳕鱼早期生命阶段的连通性。波罗的海东部。仅在高浮力水平的卵和卵黄囊幼虫中,才有可能向东定向运输直至初次喂养的幼虫阶段,这表明这些产卵区之间早期生命阶段的扩散受到限制。 (C)2016 Elsevier Ltd.保留所有权利。

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  • 来源
    《Progress in Oceanography》 |2016年第4期|13-25|共13页
  • 作者单位

    GEOMAR Helmholtz Ctr Ocean Res Kiel, Dusternbrooker Weg 20, D-24105 Kiel, Germany;

    GEOMAR Helmholtz Ctr Ocean Res Kiel, Dusternbrooker Weg 20, D-24105 Kiel, Germany;

    GEOMAR Helmholtz Ctr Ocean Res Kiel, Dusternbrooker Weg 20, D-24105 Kiel, Germany;

    Uppsala Univ, Dept Ecol & Genet, Ar Res Stn, SE-62167 Visby, Sweden;

    Inst Food Safety Anim Hlth & Environm BIOR, Daugavgrivas Str 8, LV-1048 Riga, Latvia;

    Swedish Univ Agr Sci, Dept Aquat Resources, Skolgatan 6, S-74242 Oregrund, Sweden;

    Tech Univ Denmark, Natl Inst Aquat Resources, Jaegersborg Alle 1, DK-2920 Charlottenlund, Denmark;

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