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Aquatic ecotoxicology: what has been accomplished and what lies ahead? An Eastern Canada historical perspective

机译:水生生态毒理学:已完成的工作以及未来的工作?加拿大东部的历史视角

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Our recent history shows that degradation of aquatic ecosystems essentially stems from industrialization, urbanization and increasing human populations. After a first industrial boom in the late 19th century, contamination pressures on receiving waters now appear to be continual because of expanding economies and technologies developing at the planetary scale. Given the diversity of issues, problems and challenges facing water quality today because of complex waste and chemical discharges into waterways, aquatic ecotoxicology has blossomed with time into a more mature discipline of the environmental sciences. Its two fundamental pillars, bioassays and biomarkers, have become essential tools that allow the determination of numerous and versatile effects measurements. Herein, we demonstrate some of the ways in which these tools have been applied and how they have evolved over the past decades to appraise the ecotoxicity of contaminants impacting aquatic systems. Examples discussed are largely reflective of work conducted in the Environment Canada (EC) laboratories (Saint-Lawrence Centre, Montréal, Canada). Success stories include improvement of industrial effluent quality contributing to beluga whale population recovery in the Saint-Lawrence River, biomarker field studies conducted with endemic and caged bivalves to more fully comprehend urban effluent adverse effects, and increased discernment on the hazard potential posed by emerging classes of chemicals. Ecotoxicology continues to be confronted with diverse issues and needs related to a myriad of chemical contaminants released to aquatic environments worldwide. To cope with these, ecotoxicology will have to bank on new tools ( e.g. , toxicogenomics, bio-informatics, modeling) and become more interdisciplinary by taking into account knowledge provided by other disciplines ( e.g. , ecology, chemistry, climatology, microbiology) in order to more fully understand and adequately interpret hazard. This will be paramount to supply regulators and legislators with the sound and scientifically valid information needed in order to mitigate environmental degradation.?
机译:我们最近的历史表明,水生生态系统的退化主要源于工业化,城市化和人口增长。在19世纪后期第一次工业繁荣之后,由于经济增长和行星级技术的发展,接收水的污染压力现在似乎仍在持续。鉴于当今由于复杂的废物和排放到水道中的化学物质而面临的水质问题,问题和挑战的多样性,随着时间的流逝,水生生态毒理学逐渐发展成为环境科学中更为成熟的学科。它的两个基本支柱,即生物测定法和生物标记物,已经成为必不可少的工具,可以用来确定多种多样的效果测量结果。本文中,我们演示了使用这些工具的一些方式以及它们在过去几十年中的演变过程,以评估影响水生系统的污染物的生态毒性。讨论的示例很大程度上反映了加拿大环境署(EC)实验室(加拿大蒙特利尔圣劳伦斯中心)开展的工作。成功案例包括改善工业废水质量,促进圣劳伦斯河白鲸种群的恢复,利用地方性和笼养双壳类动物进行的生物标志物现场研究,以更充分地理解城市废水的不利影响,以及对新兴阶层潜在危害的更多认识化学药品。生态毒理学继续面临着各种各样的问题和需要,这些问题和需要与释放到全球水生环境中的无数化学污染物有关。为了应对这些问题,生态毒理学将不得不依靠新的工具(例如毒理基因组学,生物信息学,建模),并通过考虑其他学科(例如生态学,化学,气候学,微生物学)提供的知识而变得更具跨学科性。更全面地理解和充分解释危害。这对于为监管机构和立法者提供合理和科学有效的信息以减轻环境恶化至关重要。

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