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氨与水生态系统——全球来源、生物地球化学循环及其对鱼类影响综述。

Ammonia and aquatic ecosystems - A review of global sources, biogeochemical cycling, and effects on fish.

机构信息

U.S. Geological Survey, Columbia Environmental Research Center, Columbia, MO 65201, USA.

U.S. Geological Survey, Columbia Environmental Research Center, Columbia, MO 65201, USA.

出版信息

Sci Total Environ. 2024 Jan 10;907:167911. doi: 10.1016/j.scitotenv.2023.167911. Epub 2023 Oct 21.

Abstract

The purpose of this review is to better understand the full life cycle and influence of ammonia from an aquatic biology perspective. While ammonia has toxic properties in water and air, it also plays a central role in the biogeochemical nitrogen (N) cycle and regulates mechanisms of normal and abnormal fish physiology. Additionally, as the second most synthesized chemical on Earth, ammonia contributes economic value to many sectors, particularly fertilizers, energy storage, explosives, refrigerants, and plastics. But, with so many uses, industrial N-fixation effectively doubles natural reactive N concentrations in the environment. The consequence is global, with excess fixed nitrogen driving degradation of soils, water, and air; intensifying eutrophication, biodiversity loss, and climate change; and creating health risks for humans, wildlife, and fisheries. Thus, the need for ammonia research in aquatic systems is growing. In response, we prepared this review to better understand the complexities and connectedness of environmental ammonia. Even the term "ammonia" has multiple meanings. So, we have clarified the nomenclature, identified units of measurement, and summarized methods to measure ammonia in water. We then discuss ammonia in the context of the N-cycle, review its role in fish physiology and mechanisms of toxicity, and integrate the effects of human N-fixation, which continuously expands ammonia's sources and uses. Ammonia is being developed as a carbon-free energy carrier with potential to increase reactive nitrogen in the environment. With this in mind, we review the global impacts of excess reactive nitrogen and consider the current monitoring and regulatory frameworks for ammonia. The presented synthesis illustrates the complex and interactive dynamics of ammonia as a plant nutrient, energy molecule, feedstock, waste product, contaminant, N-cycle participant, regulator of animal physiology, toxicant, and agent of environmental change. Few molecules are as influential as ammonia in the management and resilience of Earth's resources.

摘要

本综述的目的是从水生生物学的角度更好地了解氨的整个生命周期和影响。虽然氨在水和空气中具有毒性,但它在生物地球化学氮(N)循环中也起着核心作用,并调节鱼类正常和异常生理的机制。此外,作为地球上第二大合成化学品,氨为许多行业(特别是肥料、能源储存、炸药、制冷剂和塑料)带来了经济价值。但是,由于用途如此之多,工业固氮有效地使环境中的自然活性氮浓度增加了一倍。其后果是全球性的,过量的固定氮导致土壤、水和空气的退化;加剧富营养化、生物多样性丧失和气候变化;并给人类、野生动物和渔业带来健康风险。因此,对水生系统中氨的研究需求正在增长。有鉴于此,我们编写了本综述,以更好地了解环境氨的复杂性和关联性。即使是“氨”这个术语也有多种含义。因此,我们澄清了命名法,确定了测量单位,并总结了测量水中氨的方法。然后,我们从氮循环的角度讨论了氨,综述了它在鱼类生理学和毒性机制中的作用,并整合了人类固氮的影响,这不断扩大了氨的来源和用途。氨正被开发为一种无碳能源载体,有可能增加环境中的活性氮。考虑到这一点,我们回顾了过量活性氮的全球影响,并考虑了目前用于监测和监管氨的框架。所呈现的综合分析说明了氨作为植物养分、能源分子、原料、废物、污染物、氮循环参与者、动物生理学调节剂、毒物和环境变化剂的复杂和相互作用的动态。在地球资源的管理和恢复中,没有多少分子像氨一样具有影响力。

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