Trace metals such as iron are present in marine environments in very small concentrations, but they play an essential role in microbial physiology, yet their bioavailability and toxicity remain poorly understood due to complex seawater chemistry and background contamination. Heterotrophic bacteria serve as simple model system to understand these dynamics. To address this, we developed a chemically controlled growth medium to methodically study these trace metal interactions with marine heterotrophic bacteria. Background trace metals were removed from all nutrients like carbon, nitrogen, phosphorus and seawater using Chelex 100 resin and acid-washed bottles. All experiments were performed in triplicates. We validated the system with iron replete and deplete conditions using comparative growth curves and quantitative siderophores measurements via chrome azurol S (CAS) assays. Iron limitation conditions showed reduced bacterial growth compared to iron-replete conditions, followed by increased siderophore production, confirming effective iron limitation and slowed physiological response. Given the importance of pH in controlling trace metal speciation and background chemistry, Initially we tested multiple buffering systems like MOPS, bicarbonate, their combination, EPPS, HEPES, and TAPS over 96 hour, with TAPS, and EPPS showing the best pH stability, We then evaluated these buffers across a broad range of pH to form a chemically defined medium with stable pH. EPPS effectively maintained pH up to 8.5, while TAPS provided the greatest stability at pH 8. Suitable buffering systems for pH 6.0–7.0 remain under investigation. Future work will focus on quantifying toxicity responses of bioavailable trace metals across pH gradient on Alteromonas species.
发表评论