Becerra Caryl Ann, Murphy Brendan, Veldman Brittnee V, Nüsslein Klaus
Department of Biology, California State University Channel Islands, Camarillo, CA 93012, USA.
Cambrian BioPharma, Inc., New York, NY 10003, USA.
Microorganisms. 2024 Sep 25;12(10):1939. doi: 10.3390/microorganisms12101939.
Acid mine drainage (AMD) pollutes natural waters, but some impacted systems show natural attenuation. We sought to identify the biogeochemical mechanisms responsible for the natural attenuation of AMD. We hypothesized that biogenic sulfide-mediated iron reduction is one mechanism and tested this in an experimental model system. We found sulfate reduction occurred under acidic conditions and identified a suite of sulfate-reducing bacteria (SRB) belonging to the groups , , , and . Iron reduction was not detected in microcosms when iron-reducing bacteria or SRB were selectively inhibited. SRB also did not reduce iron enzymatically. Rather, the biogenic sulfide produced by SRB was found to be responsible for the reduction of iron at low pH. Addition of organic substrates and nutrients stimulated iron reduction and increased the pH. X-ray diffraction and an electron microprobe analysis revealed that the polycrystalline, black precipitate from SRB bioactive samples exhibited a greater diversity of iron chalcogenide minerals with reduced iron oxidation states, and minerals incorporating multiple metals compared to abiotic controls. The implication of this study is that iron reduction mediated by biogenic sulfide may be more significant than previously thought in acidic environments. This study not only describes an additional mechanism by which SRB attenuate AMD, which has practical implications for AMD-impacted sites, but also provides a link between the biogeochemical cycling of iron and sulfur.
酸性矿山排水(AMD)污染天然水体,但一些受影响的系统呈现出自然衰减现象。我们试图确定导致AMD自然衰减的生物地球化学机制。我们假设生物源硫化物介导的铁还原是一种机制,并在实验模型系统中对此进行了测试。我们发现硫酸盐还原在酸性条件下发生,并鉴定出一组属于、、和组的硫酸盐还原菌(SRB)。当铁还原菌或SRB被选择性抑制时,在微观世界中未检测到铁还原。SRB也不会通过酶促作用还原铁。相反,发现SRB产生的生物源硫化物在低pH值下负责铁的还原。添加有机底物和营养物质刺激了铁还原并提高了pH值。X射线衍射和电子微探针分析表明,与非生物对照相比,SRB生物活性样品中的多晶黑色沉淀物呈现出更多种类的铁硫族化合物矿物,其铁氧化态降低,且含有多种金属的矿物。这项研究的意义在于,在酸性环境中,生物源硫化物介导的铁还原可能比之前认为的更为重要。这项研究不仅描述了SRB衰减AMD的另一种机制,这对受AMD影响的场地具有实际意义,还提供了铁和硫生物地球化学循环之间的联系。