Biophysical model of coral population connectivity in the Arabian/Persian Gulf.

3区 生物学 Q1 Agricultural and Biological Sciences
Advances in Marine Biology Pub Date : 2020-01-01 Epub Date: 2020-08-17 DOI:10.1016/bs.amb.2020.07.001
Geórgenes Cavalcante, Filipe Vieira, Jonas Mortensen, Radhouane Ben-Hamadou, Pedro Range, Elizabeth A Goergen, Edmo Campos, Bernhard M Riegl
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引用次数: 7

Abstract

The coral reef ecosystems of the Arabian/Persian Gulf (the Gulf) are facing profound pressure from climate change (extreme temperatures) and anthropogenic (land-use and population-related) stressors. Increasing degradation at local and regional scales has already resulted in widespread coral cover reduction. Connectivity, the transport and exchange of larvae among geographically separated populations, plays an essential role in recovery and maintenance of biodiversity and resilience of coral reef populations. Here, an oceanographic model in 3-D high-resolution was used to simulate particle dispersion of "virtual larvae." We investigated the potential physical connectivity of coral reefs among different regions in the Gulf. Simulations reveal that basin-scale circulation is responsible for broader spatial dispersion of the larvae in the central region of the Gulf, and tidally-driven currents characterized the more localized connectivity pattern in regions along the shores in the Gulf's southern part. Results suggest predominant self-recruitment of reefs with highest source and sink ratios along the Bahrain and western Qatar coasts, followed by the south eastern Qatar and continental Abu Dhabi coast. The central sector of the Gulf is suggested as recruitment source in a stepping-stone dynamics. Recruitment intensity declined moving away from the Straits of Hormuz. Connectivity varied in models assuming passive versus active mode of larvae movement. This suggests that larval behaviour needs to be taken into consideration when establishing dispersion models, and establishing conservation strategies for these vulnerable ecosystems.

阿拉伯/波斯湾珊瑚种群连通性的生物物理模型。
阿拉伯/波斯湾(海湾)的珊瑚礁生态系统正面临着来自气候变化(极端温度)和人为(土地利用和人口相关)压力的巨大压力。在地方和区域尺度上日益严重的退化已经导致了珊瑚覆盖面积的广泛减少。连通性,即幼虫在地理上分离的种群之间的运输和交换,对恢复和维持珊瑚礁种群的生物多样性和恢复力起着至关重要的作用。在这里,一个三维高分辨率的海洋学模型被用来模拟“虚拟幼虫”的粒子扩散。我们调查了海湾不同地区珊瑚礁的潜在物理连通性。模拟结果表明,盆地尺度环流对墨西哥湾中部地区幼虫的空间分布有较大的影响,而潮汐流在墨西哥湾南部沿岸地区具有更局部的连通性。结果表明,在巴林和卡塔尔西部海岸,源汇比最高的珊瑚礁以自我招募为主,其次是卡塔尔东南部和阿布扎比大陆海岸。海湾的中部地区被建议为跳板动力的招聘来源。从霍尔木兹海峡出发,征兵强度有所下降。假设幼虫运动的被动模式和主动模式的连通性在模型中有所不同。这表明,在建立分散模型和为这些脆弱的生态系统制定保护策略时,需要考虑幼虫的行为。
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来源期刊
Advances in Marine Biology
Advances in Marine Biology MARINE & FRESHWATER BIOLOGY-
CiteScore
6.10
自引率
0.00%
发文量
6
审稿时长
12 months
期刊介绍: Advances in Marine Biology was first published in 1963 under the founding editorship of Sir Frederick S. Russell, FRS. Now edited by Charles Sheppard, the serial publishes in-depth and up-to-date reviews on a wide range of topics which will appeal to postgraduates and researchers in marine biology, fisheries science, ecology, zoology and biological oceanography. Eclectic volumes in the series are supplemented by thematic volumes on such topics as The Biology of Calanoid Copepods.
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