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Updated: Sep 23, 2026

An Anaerobic Biosensor Assay for the Detection of Mercury and Cadmium
Published on: December 17, 2018
Bacterially induced synthesis of low-Cd struvite coupled with Cd2+ biosorption under high cadmium stress
Abstract:
Chemical precipitation of struvite is promising for phosphorus recovery from wastewater. However, metal cations with high phosphate affinity, such as Cd2+, can reduce struvite phase purity and promote heavy-metal incorporation, limiting practical safety. In this study, seawater was used as the magnesium source and Shewanella oneidensis MR-1 as the mineralizing strain to establish a struvite biomineralization system under Cd2+ stress, aiming to remove aqueous Cd2+ using MR-1 while producing struvite with low Cd content. An artificial Cd2+ stress gradient of 1-30 mg L-1 was applied, with 30 mg L-1 representing an extreme high-Cd condition. The results showed that MR-1 induced the formation of struvite-dominated precipitates across the tested Cd2+ concentration range, with calculated struvite contents of 96.03-97.36%. MR-1 also removed 85.16-100% of Cd2+ from the aqueous phase through biosorption. At the same initial Cd2+ concentrations, bio-struvite contained 7.13-354.35 mg kg-1 Cd, significantly lower than the 923.74-18339.83 mg kg-1 measured in chemically precipitated struvite. Total phosphorus removal efficiencies were 88.27-91.46% and 58.12-60.23% in the biomineralization and chemical precipitation systems, respectively. TEM-EDS and FTIR analyses indicated that carboxyl, hydroxyl, amino, amide, and phosphorus-containing functional groups on the MR-1 surface were involved in Cd2+ immobilization. The good fit to the pseudo-second-order model further supported an important role of chemisorption in Cd2+ immobilization. This study provides a new strategy for the resource-oriented treatment of Cd-contaminated eutrophic wastewater.
