生境异质性驱动下舟山渔场鱼类群落营养生态位及潜在营养来源

Trophic niche and potential food sources of fish driven by habitat heterogeneity in Zhoushan Fishing Ground

  • 摘要:
    目的 舟山渔场环境复杂且生境异质性高,探究其对鱼类群落营养生态位及食物来源的驱动作用,有助于揭示生态系统的能量流动特征与食物网稳定性,为渔业资源保护提供科学依据。
    方法 以鱼类为研究对象,结合稳定同位素技术,采用贝叶斯标准椭圆模型(SIBER)和稳定同位素溯源混合模型(Simmr),解析不同生境鱼类群落营养结构及其潜在食物来源。
    结果 近岸海域鱼类δ13C值范围为−21.37‰~−13.91‰,δ15N值范围为8.22‰~13.65‰;外海海域鱼类δ13C值范围为−20.85‰~−15.71‰,δ15N值范围为7.01‰~14.30‰,两者差异主要受环境异质性影响。营养生态位分析可知,近岸鱼类多项指标(如δ13C值范围、凸边形面积等)高于外海区,且其核心营养生态位基本覆盖了外海鱼类。颗粒有机物(POM)为近岸海域鱼类的主要碳源,而浮游植物则是外海鱼类的主要食物来源。
    结论 舟山渔场生境异质性对不同食性鱼类营养生态位特征具有显著的塑造作用,近岸区鱼类具有更强的生态适应性。本研究揭示了舟山渔场不同海区鱼类营养生态位的差异及其驱动因素,为实施针对性渔业管理策略和保护生物多样性提供了科学支撑。

     

    Abstract: Zhoushan Fishing Ground is characterized by environmental complexity and high habitat heterogeneity. Investigating how these conditions drive the trophic niches and food sources of fish communities is essential for elucidating the energy flow dynamics and food web stability of the ecosystem, thereby providing a scientific basis for the conservation of fishery resources. Samples were collected from bottom trawl surveys conducted in the fishing ground during spring and autumn of 2024. The study area was divided into nearshore and offshore zones along the 123°E longitudinal boundary. Stable isotope analysis was employed to examine trophic structure and identify potential food sources. Analytical methods included the Stable Isotope Bayesian Ellipses model (SIBER) for quantifying trophic niche metrics and the Stable Isotope Mixing Model (simmr) for estimating the proportional contributions of basal organic matter sources to fish consumers. The results showed that in the nearshore zone, fishδ13C values ranged from -21.37‰ to -13.91‰,δ15N values from 8.22‰ to 13.65‰. In the offshore zone,δ13C values ranged from –20.85‰ to –15.71‰,δ15N values from 7.01‰ to 14.30‰. These differences were primarily driven by environmental heterogeneity. Trophic niche analysis revealed that nearshore fish exhibited higher isotopic metrics, such as theδ13C range (CR) and total convex hull area (TA), indicating greater dietary diversity and a broader trophic niche breadth. Moreover, the size-corrected standard ellipse area (SEAc) of nearshore fish largely overlapped with that of offshore fish, suggesting that nearshore populations utilize a wider spectrum of basal resources. This expanded niche space implies not only greater ecological plasticity but also enhanced resilience to environmental perturbations, as access to diverse resources buffers against fluctuations in any single food source. Particulate organic matter (POM) was the primary carbon source for nearshore fish (contributing 36.2%), reflecting the substantial role of terrestrial detritus and sedimentary organic matter in supporting nearshore fish production. In contrast, phytoplankton was the dominant food source for offshore fish (contributing 33.2%), confirming a shift from mixed terrestrial–marine sources nearshore to predominantly marine-based production offshore. These spatial patterns in resource utilization illustrate how environmental gradients shape energy flow through the ecosystem. In conclusion, habitat heterogeneity in the Zhoushan Fishing Ground significantly influences the trophic niche characteristics of fish with diverse feeding habits. The findings indicate that nearshore fish populations possess greater ecological adaptability. By elucidating the spatial differences in fish trophic niches and their underlying drivers, this study provides a scientific foundation for developing targeted fisheries management strategies and enhancing biodiversity conservation in the region. Specifically, management measures should prioritize the preservation of habitat connectivity and the protection of diverse basal resources-particularly in nearshore areas-to maintain the functional integrity of the food web and support sustainable fisheries.

     

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