Pharmaceutical and Antibiotic Environmental Impacts, Advanced biosensing and bioanalysis techniques, Biosensors and Analytical Detection

Pharmaceutical pollution of the world’s rivers

Proceedings of the National Academy of Sciences · 2022

JJohn L. Wilkinson·AAlistair B.A. Boxall·DDana W. Kolpin·KKmy Leung·RRacliffe Weng Seng Lai·CCristóbal Galbán‐Malagón·AAiko D. Adell·JJulie Mondon·MMarc Métian·RRob Marchant·AAlejandra Bouzas‐Monroy·AAida Cuní‐Sanchez·AAnja Coors·PPedro Carriquiriborde·MMacarena Rojo·CChristopher Gordon·MMagdalena Cara·MMonique Moermond·TThais Luarte·VVahagn Petrosyan·YYekaterina Perikhanyan·CClare S. Mahon·CChristopher J. McGurk·TThilo Hofmann·TTapos Kormoker·VVolga Iñiguez·JJessica Guzman-Otazo·JJean Leite Tavares·FFrancisco Gildasio De Figueiredo·MMaría Tereza Pepe Razzolini·VVictorien Dougnon·GGildas Gbaguidi·OOumar Traoré·JJules M. Blais·LLinda E. Kimpe·MMichelle Wong·DDonald Wong·RRomaric Ntchantcho·JJaime Pizarro·GGuang‐Guo Ying·CChang-Er Chen·MMartha Isabel Páez-Melo·JJina Martínez-Lara·JJean‐Paul Otamonga·JJohn Poté·SSuspense A. Ifo·PPenelope Wilson·SSilvia Echeverría-Sáenz·NNikolina Udiković‐Kolić·MMilena Milaković·DDespo Fatta‐Kassinos·LLida Ioannou‐Ttofa·VVladimíra Belušová·JJan Vymazal·MMaría Cárdenas-Bustamante·BBayable A. Kassa·JJeanne Garric·AArnaud Chaumot·PPeter Gibba·IIlia Kunchulia·SSven Seidensticker·GGérasimos Lyberatos·HHalldór Pálmar Halldórsson·MMolly Melling·SShashidhar Thatikonda·MManisha Lamba·AAnindrya Nastiti·AAdee Supriatin·NNima Pourang·AAli Abedini·OOmar Abdullah·SSalem Gharbia·FFrancesco Pilla·BBenny Chefetz·TTom Topaz·KKoffi Marcellin Yao·BBakhyt Aubakirova·RRaikhan Beisenova·LLydia Olaka·JJemimah K. Mulu·PPeter Chatanga·VVictor Ntuli·NNathaniel T. Blama·SSheck Sherif·AAhmad Zaharin Aris·LLey Juen Looi·MMahamoudane Niang·SSeydou T. Traore·RRik Oldenkamp·OOlatayo Michael Adetayo Ogunbanwo·MMuhammad Ashfaq·MMuhammad Iqbal·ZZiad Abdeen·AAaron O’Dea·JJorge Manuel Morales‐Saldaña·MMaría Custodio·HHeidi De la Cruz·IIan A. Navarrete·FFábio Carvalho·AAlhaji Brima Gogra
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Abstract

Environmental exposure to active pharmaceutical ingredients (APIs) can have negative effects on the health of ecosystems and humans. While numerous studies have monitored APIs in rivers, these employ different analytical methods, measure different APIs, and have ignored many of the countries of the world. This makes it difficult to quantify the scale of the problem from a global perspective. Furthermore, comparison of the existing data, generated for different studies/regions/continents, is challenging due to the vast differences between the analytical methodologies employed. Here, we present a global-scale study of API pollution in 258 of the world's rivers, representing the environmental influence of 471.4 million people across 137 geographic regions. Samples were obtained from 1,052 locations in 104 countries (representing all continents and 36 countries not previously studied for API contamination) and analyzed for 61 APIs. Highest cumulative API concentrations were observed in sub-Saharan Africa, south Asia, and South America. The most contaminated sites were in low- to middle-income countries and were associated with areas with poor wastewater and waste management infrastructure and pharmaceutical manufacturing. The most frequently detected APIs were carbamazepine, metformin, and caffeine (a compound also arising from lifestyle use), which were detected at over half of the sites monitored. Concentrations of at least one API at 25.7% of the sampling sites were greater than concentrations considered safe for aquatic organisms, or which are of concern in terms of selection for antimicrobial resistance. Therefore, pharmaceutical pollution poses a global threat to environmental and human health, as well as to delivery of the United Nations Sustainable Development Goals.

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