Department of Biochemistry and Molecular Biology, University of Georgia, Athens, GA, USA.
Biological Systems and Engineering, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.
ISME J. 2023 Mar;17(3):382-392. doi: 10.1038/s41396-022-01351-3. Epub 2022 Dec 26.
Multiple heavy metal contamination is an increasingly common global problem. Heavy metals have the potential to disrupt microbially mediated biogeochemical cycling. However, systems-level studies on the effects of combinations of heavy metals on bacteria are lacking. For this study, we focused on the Oak Ridge Reservation (ORR; Oak Ridge, TN, USA) subsurface which is contaminated with several heavy metals and high concentrations of nitrate. Using a native Bacillus cereus isolate that represents a dominant species at this site, we assessed the combined impact of eight metal contaminants, all at site-relevant concentrations, on cell processes through an integrated multi-omics approach that included discovery proteomics, targeted metabolomics, and targeted gene-expression profiling. The combination of eight metals impacted cell physiology in a manner that could not have been predicted from summing phenotypic responses to the individual metals. Exposure to the metal mixture elicited a global iron starvation response not observed during individual metal exposures. This disruption of iron homeostasis resulted in decreased activity of the iron-cofactor-containing nitrate and nitrite reductases, both of which are important in biological nitrate removal at the site. We propose that the combinatorial effects of simultaneous exposure to multiple heavy metals is an underappreciated yet significant form of cell stress in the environment with the potential to disrupt global nutrient cycles and to impede bioremediation efforts at mixed waste sites. Our work underscores the need to shift from single- to multi-metal studies for assessing and predicting the impacts of complex contaminants on microbial systems.
多种重金属污染是一个日益严重的全球性问题。重金属有可能扰乱微生物介导的生物地球化学循环。然而,缺乏关于重金属组合对细菌影响的系统水平研究。在这项研究中,我们专注于橡树岭保留地(ORR;美国田纳西州橡树岭)的地下,这里受到多种重金属和高浓度硝酸盐的污染。使用一种代表该地点优势物种的本土蜡状芽孢杆菌分离物,我们通过整合的多组学方法评估了八种金属污染物的组合影响,所有这些金属污染物的浓度均与现场相关,该方法包括发现蛋白质组学、靶向代谢组学和靶向基因表达谱分析。八种金属的组合以不能通过将对单个金属的表型反应相加来预测的方式影响细胞生理。暴露于金属混合物中会引发全局铁饥饿反应,而在单独暴露于金属时不会观察到这种反应。这种铁动态平衡的破坏导致含铁辅因子的硝酸盐和亚硝酸盐还原酶的活性降低,这两种酶在现场的生物硝酸盐去除中都很重要。我们提出,同时暴露于多种重金属的组合效应是环境中一种未被充分认识但却很重要的细胞应激形式,有可能破坏全球养分循环,并阻碍混合废物场的生物修复工作。我们的工作强调需要从单一金属研究转向多金属研究,以评估和预测复杂污染物对微生物系统的影响。