Removal of bacterial plant pathogens in columns filled with quartz and natural sediments under anoxic and oxygenated conditions

•First study to analyze the transport of plant pathogenic bacteria in natural sands•Bacterial removal was several log10 higher in natural sediments compared to quartz•Column studies give insights on bacterial fate during simulated aquifer passage•Results will serve as basis for the design of MAR sys...

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Veröffentlicht in:Water research (Oxford) 2022-07, Vol.220, p.118724-118724, Article 118724
Hauptverfasser: Eisfeld, Carina, Schijven, Jack F., van der Wolf, Jan M., Medema, Gertjan, Kruisdijk, Emiel, van Breukelen, Boris M.
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Sprache:eng
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Zusammenfassung:•First study to analyze the transport of plant pathogenic bacteria in natural sands•Bacterial removal was several log10 higher in natural sediments compared to quartz•Column studies give insights on bacterial fate during simulated aquifer passage•Results will serve as basis for the design of MAR systems Irrigation with surface water carrying plant pathogens poses a risk for agriculture. Managed aquifer recharge enhances fresh water availability while simultaneously it may reduce the risk of plant diseases by removal of pathogens during aquifer passage. We compared the transport of three plant pathogenic bacteria with Escherichia coli WR1 as reference strain in saturated laboratory column experiments filled with quartz sand, or sandy aquifer sediments. E. coli showed the highest removal, followed by Pectobacterium carotovorum, Dickeya solani and Ralstonia solanacearum. Bacterial and non-reactive tracer breakthrough curves were fitted with Hydrus-1D and compared with colloid filtration theory (CFT). Bacterial attachment to fine and medium aquifer sand under anoxic conditions was highest with attachment rates of max. katt1 = 765 day-1 and 355 day-1, respectively. Attachment was the least to quartz sand under oxic conditions (katt1 = 61 day-1). In CFT, sticking efficiencies were higher in aquifer than in quartz sand but there was no differentiation between fine and medium aquifer sand. Overall removal ranged between < 6.8 log10 m−1 in quartz and up to 40 log10 m−1 in fine aquifer sand. Oxygenation of the anoxic aquifer sediments for two weeks with oxic influent water decreased the removal. The results highlight the potential of natural sand filtration to sufficiently remove plant pathogenic bacteria during aquifer storage. [Display omitted]
ISSN:0043-1354
1879-2448
DOI:10.1016/j.watres.2022.118724