4.5 Review

Antineoplastic Agents: Environmental Prevalence and Adverse Outcomes in Aquatic Organisms

Journal

ENVIRONMENTAL TOXICOLOGY AND CHEMISTRY
Volume 39, Issue 5, Pages 967-985

Publisher

WILEY
DOI: 10.1002/etc.4687

Keywords

Aquatic toxicology; Pharmaceuticals; Contaminants of emerging concern; Immunotoxicity

Funding

  1. Programa Nacional de Becas de Postgrado en el Exterior Don Carlos Antonio Lopez
  2. Fulbright Commission (Uruguay)
  3. Aquatic Animal Program at the University of Florida

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Cancer is the second leading cause of death worldwide, with 9.6 million cancer-related deaths in 2018. Cancer incidence has increased over time, and so has the prescription rate of chemotherapeutic drugs. These pharmaceuticals, known as antineoplastic agents, enter the aquatic environment via human excretion and wastewater. The objectives of the present critical review were to investigate the risk of antineoplastics to aquatic species and to summarize the current state of knowledge regarding their levels in the environment, because many antineoplastics are not adequately removed during wastewater treatment. We conducted 2 separate literature reviews to synthesize data on the global environmental prevalence and toxicity of antineoplastics. The antineoplastics most frequently detected in the environment included cyclophosphamide, ifosfamide, tamoxifen, methotrexate, and 5-fluorouracil; all were detectable in multiple water sources, including effluent and surface waters. These antineoplastics span 3 different mechanistic classes, with cyclophosphamide and ifosfamide classified as alkylating agents, tamoxifen as a hormonal agent, and methotrexate and 5-fluorouracil as antimetabolites. Studies that characterize the risk of antineoplastics released into aquatic environments are scarce. We summarize the biological impacts of the most environmentally prevalent antineoplastics on aquatic organisms and propose an adverse outcome pathway for cyclophosphamide and ifosfamide, 2 widely prescribed drugs with a similar immunotoxic mode of action. Acute and chronic ecotoxicity studies using aquatic models are needed for risk characterization of antineoplastics. Environ Toxicol Chem 2020;00:1-19. (c) 2020 SETAC

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