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大河流域生境复杂性与普吉特海湾奇努克鲑鱼的生产力。

Large river habitat complexity and productivity of Puget Sound Chinook salmon.

机构信息

Fish Ecology Division, Northwest Fisheries Science Center, National Marine Fisheries Service, National Oceanic and Atmospheric Administration, Seattle, WA, United States of America.

Ocean Associates, Inc., Under contract to Northwest Fisheries Science Center, National Marine Fisheries Service, National Oceanic and Atmospheric Administration, Seattle, WA, United States of America.

出版信息

PLoS One. 2018 Nov 1;13(11):e0205127. doi: 10.1371/journal.pone.0205127. eCollection 2018.

Abstract

While numerous studies have shown that floodplain habitat complexity can be important to fish ecology, few quantify how watershed-scale complexity influences productivity. This scale mismatch complicates population conservation and recovery strategies that evaluate recovery at regional or multi-basin scales. We used outputs from a habitat status and trends monitoring program for ten of Puget Sound's large river systems to examine whether juvenile Chinook salmon productivity relates to watershed-scale habitat complexity. We derived habitat complexity metrics that quantified wood jam densities, side and braid to main channel ratios, and node densities from a remote sensing census of Puget Sound's large river systems. Principal component analysis revealed that 91% of variance in these metrics could be explained by two principal components. These metrics revealed gradients in habitat complexity across Puget Sound which were sensitive to changes in complexity as a result of restoration actions in one watershed. Mixed effects models revealed that the second principle component term (PC2) describing habitat complexity was positively related to log transformed subyearling Chinook per spawner productivity rates from 6-18 cohorts per watershed. Total subyearling productivity (subyearlings per spawner) and fry productivity (subyearling fry per spawner) rates were best described by models that included a positive effect of habitat complexity (PC2) and negative relationships with log transformed peak flow recurrence interval, suggestive of reduced survival due to egg destruction during floods. Total subyearling productivity (subyearlings per spawner) and parr productivity (subyearling parr per spawner) rates were best described by models that included a positive effect of habitat complexity (PC2) and negative relationships with log transformed spawner density, suggestive of density dependent limits on juvenile rearing habitat. We also found that coefficient of variation for log transformed subyearling productivity and subyearling fry productivity rates declined with increasing habitat complexity, supporting the idea that habitat complexity buffers populations from annual variation in environmental conditions. Therefore, we conclude that our watershed-scale census-based approach provided habitat complexity metrics that explained some of the variability in productivity of subyearling juveniles among Chinook salmon populations. Furthermore, this approach may provide a useful means to track and evaluate aggregate effects of habitat changes on the productivity of Endangered Species Act (ESA) listed Chinook salmon populations over time.

摘要

虽然许多研究表明洪泛区生境复杂性对鱼类生态很重要,但很少有研究量化流域尺度的复杂性如何影响生产力。这种尺度不匹配使评估区域或多流域尺度恢复的种群保护和恢复策略变得复杂。我们使用了 Puget Sound 十个大河系统的生境状况和趋势监测计划的输出数据,以检验幼年奇努克鲑鱼的生产力是否与流域尺度的生境复杂性有关。我们从 Puget Sound 大河系统的遥感普查中得出了量化木塞密度、侧支和辫状河与主河道比以及节点密度的生境复杂性指标。主成分分析表明,这些指标的 91%可以用两个主成分来解释。这些指标揭示了 Puget Sound 生境复杂性的梯度变化,这些变化对一个流域的恢复行动导致的复杂性变化很敏感。混合效应模型表明,描述生境复杂性的第二个主成分项(PC2)与每个流域 6-18 个群体每繁殖者的对数转换亚成鱼生产力率呈正相关。总亚成鱼生产力(每繁殖者的亚成鱼)和幼鱼生产力(每繁殖者的亚成鱼幼鱼)率最好由包含生境复杂性(PC2)的正效应和对数转换峰值流量重现期间隔的负关系的模型来描述,这表明由于洪水期间卵的破坏,存活率降低。总亚成鱼生产力(每繁殖者的亚成鱼)和幼鱼的副渔获物生产力(每繁殖者的亚成鱼副渔获物)率最好由包含生境复杂性(PC2)的正效应和繁殖者密度的对数转换的负关系的模型来描述,这表明幼鱼饲养栖息地存在密度依赖的限制。我们还发现,对数转换的亚成鱼生产力和亚成鱼幼鱼生产力率的变异系数随着生境复杂性的增加而降低,这支持了生境复杂性使种群免受环境条件年度变化影响的观点。因此,我们得出结论,我们基于流域尺度普查的方法提供了生境复杂性指标,可以解释奇努克鲑鱼种群中亚成鱼幼鱼生产力的一些变异性。此外,这种方法可能为跟踪和评估栖息地变化对濒危物种法案(ESA)列出的奇努克鲑鱼种群生产力的累积影响提供有用的手段。

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