推进野生动物-污染相互作用的时空维度。

IF 8.9 2区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL
Jack A Brand, Jake M Martin, Marcus Michelangeli, Eli S J Thoré, Natalia Sandoval-Herrera, Erin S McCallum, Drew Szabo, Damien L Callahan, Timothy D Clark, Michael G Bertram, Tomas Brodin
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引用次数: 0

摘要

化学污染是全球变化中增长最快的因素之一。已知许多污染物会破坏动物行为,改变生态相互作用,并改变进化轨迹。至关重要的是,化学污染物和个体生物在整个环境中都是非随机分布的。尽管如此,目前关于化学物质对野生动物造成影响的证据主要来自限制生物活动和强制均质暴露的试验。虽然这些方法提供了关键的生态毒理学见解,但它们忽略了自然中形成野生动物与污染关系的动态时空相互作用。事实上,污染物和动物在环境中非随机移动这一看似简单的概念,创造了一个复杂的动态相互作用,其中许多从未被理论建模或实验验证过。在这里,我们概念化污染物和生物体时空变化之间的动态相互作用,并强调其生态和进化意义。我们提出了一种三管齐下的方法——集成计算机建模、允许运动的实验室实验和基于野外的自由放养动物跟踪——以弥合控制生态毒理学研究与现实世界野生动物暴露之间的差距。遥测、遥感和计算模型的进步为量化这些相互作用提供了必要的工具,为解释时空复杂性的生态毒理学新时代铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advancing the Spatiotemporal Dimension of Wildlife-Pollution Interactions.

Chemical pollution is one of the fastest-growing agents of global change. Numerous pollutants are known to disrupt animal behavior, alter ecological interactions, and shift evolutionary trajectories. Crucially, both chemical pollutants and individual organisms are nonrandomly distributed throughout the environment. Despite this fact, the current evidence for chemical-induced impacts on wildlife largely stems from tests that restrict organism movement and force homogeneous exposures. While such approaches have provided pivotal ecotoxicological insights, they overlook the dynamic spatiotemporal interactions that shape wildlife-pollution relationships in nature. Indeed, the seemingly simple notion that pollutants and animals move nonrandomly in the environment creates a complex of dynamic interactions, many of which have never been theoretically modeled or experimentally tested. Here, we conceptualize dynamic interactions between spatiotemporal variation in pollutants and organisms and highlight their ecological and evolutionary implications. We propose a three-pronged approach-integrating in silico modeling, laboratory experiments that allow movement, and field-based tracking of free-ranging animals-to bridge the gap between controlled ecotoxicological studies and real-world wildlife exposures. Advances in telemetry, remote sensing, and computational models provide the necessary tools to quantify these interactions, paving the way for a new era of ecotoxicology that accounts for spatiotemporal complexity.

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来源期刊
Environmental Science & Technology Letters Environ.
Environmental Science & Technology Letters Environ. ENGINEERING, ENVIRONMENTALENVIRONMENTAL SC-ENVIRONMENTAL SCIENCES
CiteScore
17.90
自引率
3.70%
发文量
163
期刊介绍: Environmental Science & Technology Letters serves as an international forum for brief communications on experimental or theoretical results of exceptional timeliness in all aspects of environmental science, both pure and applied. Published as soon as accepted, these communications are summarized in monthly issues. Additionally, the journal features short reviews on emerging topics in environmental science and technology.
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