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The Biophysics of Coral Reef Resilience: Hydrodynamic and Ecological Drivers of Coral Survival Under Extreme Heat

The Biophysics of Coral Reef Resilience: Hydrodynamic and Ecological Drivers of Coral Survival Under Extreme Heat
珊瑚礁恢复力的生物物理学:极热条件下珊瑚生存的水动力和生态驱动因素
批准号:
2049567
负责人:
Anne Cohen
金额:
$175.24万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2021
资助国家:
美国
项目状态:
已结题
起止时间:
2021-10-01 至 2024-09-30

项目摘要

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中文摘要
翻译
珊瑚礁是地球上最多样化的生态系统之一,支撑着世界各地数亿人的生计。海洋变暖和愈演愈烈的热浪正在杀死珊瑚礁,目前正在紧急努力识别和保护那些能够在未来变暖中幸存下来的珊瑚礁。赤道太平洋中部的珊瑚礁在过去20年里经历了三次极端高温事件。研究人员获得的初步观测数据显示,每次事件期间珊瑚的死亡率在空间上是不同的,这意味着一些珊瑚群落已经发展出对热应激的适应能力。在这项研究中,研究人员正在研究珊瑚礁温度和水流的细微尺度变化在促进珊瑚韧性方面的作用,方法是提供遗传适应机会,通过上升流或内波保护珊瑚降温,或通过增加食物供应。这些结果将为珊瑚群落在极端高温下生存的机制提供新的见解,并提供一个新的工具,使科学家和珊瑚礁管理者能够确定有弹性的珊瑚礁进行保护。此外,该项目正在支持一名早期职业科学家、研究生和本科生的研究,为美国的高中生提供参与研究的机会,以及坎顿高中生的参与。将通过演讲和包括电影在内的各种媒体进行外联。水动力模型的成果将公之于众,项目成果将有助于科学界目前正在开发的珊瑚温度阈值通用地图。海洋变暖和不断加剧的热浪正在破坏全球热带的珊瑚礁。因此,一项协调一致的努力正在进行,以确定和保护能够在这些变化中幸存下来的珊瑚群落。这个跨学科的研究小组正在结合海洋观测、三维精细水动力模型模拟、海底调查和生物分析,以调查珊瑚礁水动力学在促进赤道太平洋中部坎顿岛珊瑚抵御热应力方面的作用。研究人员正在测试一种假设,即海洋和大气强迫与珊瑚礁水深测量相互作用,导致水温和珊瑚礁水流的可预测的细微尺度不均匀。他们还在验证这样一个假设,即环境的异质性反过来通过提供遗传适应、保护性降温和/或增加食物供应的机会,促进珊瑚在极端高温下的生存。研究结果将为珊瑚礁复原力的生物物理机制提供洞察力,并提供一种新的工具来预测广泛的珊瑚礁生态系统的复原力。该项目由生物和物理海洋学计划提供资金支持。该奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Coral reefs are among the most diverse ecosystems on the planet and support the livelihoods of hundreds of millions of people around the world. Ocean warming and intensifying heatwaves are killing coral reefs and there are urgent efforts underway to identify and protect those capable of surviving future warming. Coral reefs in the central equatorial Pacific have experienced three extreme heat events over the last two decades. Initial observational data obtained by the investigators show that coral mortality during each event was spatially variable, implying that some coral communities have developed resilience to thermal stress. In this study, the investigators are examining the role of fine-scale variations in reef temperature and water flow in promoting coral resilience by providing opportunities for genetic adaptation, by protectively cooling corals through upwelling or internal waves, or by enhancing food supply. Results will provide novel insights into the mechanisms by which coral communities survive extreme heat and a new tool that allows scientists and coral reef managers to identify resilient reefs for protection. Additionally, this project is supporting an early-career scientist, graduate and undergraduate research, opportunities for high school students in the United States to participate in research, as well as participation by Kanton high school students. Outreach will be conducted through presentations and a variety of media, including film. The hydrodynamic model output will be made publicly available, and project outcomes will contribute to a universal map of coral thermal thresholds currently under development by the scientific community.Ocean warming and intensifying heatwaves are devastating coral reefs across the global tropics. Consequently, a coordinated effort is underway to identify and protect coral communities that can survive these changes. This interdisciplinary team of investigators is combining oceanographic observations, 3-dimensional fine-scale hydrodynamic model simulations, benthic surveys, and biological assays to investigate the role of reef hydrodynamics in facilitating coral resilience to thermal stress on Kanton Island in the central equatorial Pacific. The investigators are testing the hypothesis that oceanographic and atmospheric forcing interact with reef bathymetry to induce predictable fine-scale heterogeneity in water temperature and flow across the reef. They are also testing the hypothesis that environmental heterogeneity, in turn, facilitates coral survival of extreme heat by providing opportunities for genetic adaptation, protective cooling, and/or enhanced food supply. Results will provide insights into the biophysical mechanisms underpinning reef resilience and a new tool with which to predict resilience across a broad range of coral reef ecosystems.This project is supported with funds from the Biological and Physical Oceanography Programs.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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NSF Convergence Accelerator Track E: Digital Reefs: A Globally Coordinated, Universally Accessible Digital Twin Network for the Coral Reef Blue Economy
  • 批准号:
    2230734
  • 项目类别:
    Cooperative Agreement
  • 资助金额:
    $498.08万
  • 财政年份:
    2022
  • 负责人:
    Anne Cohen
  • 依托单位:
NSF Convergence Accelerator Track E: A Globally Coordinated, Universally-Accessible Digital Twin Network for the Coral Reef Blue Economy
Resolving 20th Century Sea Surface Temperatures in the Central Equatorial Pacific with Laser Sr-U
Temperature and variability of the Atlantic Warm Pool during and since the Little Ice Age
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