Ecosystem function in changing environments: an integrative approach to modeling the control of genetic biodiversity and secondary productivity by hydrodynamic circulation
Ecosystem function in changing environments: an integrative approach to modeling the control of genetic biodiversity and secondary productivity by hydrodynamic circulation
批准号:
336324-2006
负责人:
Johnson, Ladd
金额:
$14.17万
依托单位:
依托单位国家:
加拿大
项目类别:
Strategic Projects - Group
财政年份:
2006
资助国家:
加拿大
项目状态:
已结题
起止时间:
2006-01-01 至 2007-12-31
中文摘要
由于人类活动和自然过程的共同作用,沿海环境是严重紧张的生态系统。圣劳伦斯河口(SLE)是加拿大最大、受影响最严重的河口,原因包括污染和过度捕捞。该生态系统背后的关键特征是环流模式--洋流和潮汐的组合,既创造了具有鲜明特征的水团,又输送了永久或暂时生活在水柱中的生物(即,底栖无脊椎动物幼虫)。循环模式将通过创造支持遗传多样性和当地种群稳定的异质环境以及通过控制个体在种群之间的扩散,从而对物种的种群结构产生深远的影响。最终,这些影响将影响次生生产,次生生产是维持食物网络结构和能量流动的关键生态系统功能。在这里,我们建议研究海岸和离岸环流对三种关键无脊椎动物的种群结构和次生生产的影响,这三种关键无脊椎动物是河口桡足类、海洋桡足类和海洋贻贝,它们共同构成了SLE中次生生产的基础。我们将描述这些物种的遗传和人口结构,研究任何这样的结构如何对应于SLE的水文结构,并记录这种结构对生态生理性能的影响。然后,我们将使用这些信息来开发能够预测不同环境情景下次生生产力的模型,包括与气候变化相关的情景(例如,淡水排放变化)。我们预计环流模式将对种群结构产生重大影响,并伴随着对次生生产力的影响,这是确定管理单元的空间规模和时间稳定性的关键重要性的结果,这是制定政府环境政策以保护加拿大生态系统健康的关键过程。
英文摘要
Coastal environments are severely stressed ecosystems due to a combination of human activities and natural processes. The St. Lawrence estuary (SLE) is Canada's largest and most heavily impacted estuary due to a suite of stressors including pollution and over-fishing. The keystone feature underlying this ecosystem is the pattern of circulation - the combination of currents and tides that both create water masses of distinct characteristics and transport organisms living in the water column either permanently or temporarily (i.e., the larvae of benthic invertebrates). Circulation patterns will thus have profound effects on the population structure of species both by creating a heterogeneous environment that can support genetic diversity and local population stability and by controlling the dispersal of individuals between populations. Ultimately these effects will influence secondary production, a key ecosystem function in the maintenance of food web structure and energy flow. Here we propose to examine the influence of coastal and off-shore circulation on the population structure and secondary production of three key invertebrates, an estuarine copepod, a marine copepod, and a marine mussel, that together form the basis of secondary production in the SLE. In parallel, we will describe the genetic and demographic structure of these species, examine how any such structure corresponds to hydrographic structures of the SLE and document the effect of this structure on ecophysiological performance. We will then use this information to develop models capable of predicting the secondary productivity under different environmental scenarios, including those associated with climate change (e.g., altered freshwater discharge). We anticipate circulation patterns will have large effects on population structure with concomitant effects on the secondary production, a consequence of key importance in identifying the spatial scales and temporal stability of management units, a vital process in the development of governmental environmental policies for protecting the health of Canadian ecosystems.
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