Author:
Moses Arthur,Ramírez-Andreotta Mónica D.,McLain Jean E.T.,Obergh Victoria,Rutin Emma,Sandhaus Shana,Kilungo Aminata P.
Abstract
AbstractAs climate change strains the world’s freshwater resources, access to safe and clean water becomes limited. The use of alternative water sources, such as rooftop-harvested rainwater, has become one mechanism to address freshwater scarcity in the American Southwest, particularly when it comes to home gardening. The University of Arizona’s Project Harvest, in partnership with the Sonora Environmental Research Institute, Inc., is a multi-year, co-created citizen science project aimed at increasing current understanding of harvested rainwater quality. Citizens in four Arizona, USA, communities (Hayden/Winkelman, Globe/Miami, Dewey-Humboldt, and Tucson) submitted harvested rainwater samples over 3 years. The harvested rainwater samples were then analyzed using IDEXX Colilert® for total coliforms and E. coli and using Hach PathoScreen™ test for sulfate-reducing bacteria (SRB). This study design allows for the validation of a low-cost, at-home alternative methodology for testing rainwater for bacteria that may indicate fecal contamination. In total, 226 samples were tested using both methodologies, revealing a positive correlation (r=0.245; p<0.002) between total coliform MPN and SRB MPN, but no discernable correlation between E. coli MPN and SRB MPN. This work indicates a potential value of SRB testing for harvested rainwater if cost, laboratory access, and fecal contamination are of concern.
Publisher
Springer Science and Business Media LLC
Subject
Management, Monitoring, Policy and Law,Pollution,General Environmental Science,General Medicine
Reference27 articles.
1. Arizona Department of Environmental Quality. (2018). Sulfur dioxide (SO2) pollution. Retrieved May 2, 2023, from https://azdeq.gov/sulfur-dioxide-so2-pollution.
2. Barton, L. L., & Fauque, G. D. (2009). Chapter 2 Biochemistry, physiology and biotechnology of sulfate-reducing bacteria. Advances in Applied Microbiology, 68, 41–98. https://doi.org/10.1016/S0065-2164(09)01202-7
3. Castillo, G., Duarte, R., Ruiz, Z., Marucic, M. T., Honorato, B., Mercado, R., Coloma, V., Lorca, V., Martins, M. T., & Dutka, B. J. (1994). Evaluation of disinfected and untreated drinking water supplies in Chile by the H2S paper strip test. Water Research, 28, 1765–1770.
4. Croghan, C. W., & Egeghy, P. P. (2003). Methods of dealing with values below the limit of detection using SAS. Southern SAS User Group.
5. Davis, L. F., Ramírez-Andreotta, M. D., & Buxner, S. (2020). Engaging diverse citizen scientists for environmental health: Recommendations from participants and promotoras. Citizen Science: Theory and Practice, 5(1), 7. https://doi.org/10.5334/cstp.253
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