AQDS and Redox-Active NOM Enables Microbial Fe(III)-Mineral Reduction at cm-Scales

被引:76
作者
Bai, Yuge [1 ]
Mellage, Adrian [2 ]
Cirpka, Olaf A. [2 ]
Sun, Tianran [3 ]
Angenent, Largus T. [3 ]
Haderlein, Stefan B. [4 ]
Kappler, Andreas [1 ]
机构
[1] Univ Tubingen, Ctr Appl Geosci, Geomicrobiol, D-72074 Tubingen, Germany
[2] Univ Tubingen, Ctr Appl Geosci, Hydrogeol, D-72074 Tubingen, Germany
[3] Univ Tubingen, Ctr Appl Geosci, Environm Biotechnol, D-72074 Tubingen, Germany
[4] Univ Tubingen, Ctr Appl Geosci, Environm Mineral & Chem, D-72074 Tubingen, Germany
关键词
NATURAL ORGANIC-MATTER; HUMIC SUBSTANCES; ELECTRON-TRANSFER; FE(III) OXIDE; DISSIMILATORY REDUCTION; IRON REDUCTION; FERRIHYDRITE; TRANSFORMATION; MECHANISMS; REACTIVITY;
D O I
10.1021/acs.est.9b07134
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Redox-active organic molecules such as anthraquinone-2,6-disulfonate (AQDS) and natural organic matter (NOM) can act as electron shuttles thus facilitating electron transfer from Fe(III)-reducing bacteria (FeRB) to terminal electron acceptors such as Fe(III) minerals. In this research, we examined the length scale over which this electron shuttling can occur. We present results from agar-solidified experimental incubations, containing either AQDS or NOM, where FeRB were physically separated from ferrihydrite or goethite by 2 cm. Iron speciation and concentration measurements coupled to a diffusion-reaction model Fe(III) mineral highlighted clearly Fe(III) reduction in the presence of electron shuttles, independent of the type of FeRB. Based on our fitted model, the rate of ferrihydrite reduction increased from 0.07 to 0.19 mu mol d(-1) with a 10-fold increase in the AQDS concentration, highlighting a dependence of the reduction rate on the electron-shuttle concentration. To capture the kinetics of Fe(II) production, the effective AQDS diffusion coefficient had to be increased by a factor of 9.4. Thus, we postulate that the 2 cm electron transfer was enabled by a combination of AQDS molecular diffusion and an electron hopping contribution from reduced to oxidized AQDS molecules. Our results demonstrate that AQDS and NOM can drive microbial Fe(III) reduction across 2 cm distances and shed light on the electron transfer process in natural anoxic environments.
引用
收藏
页码:4131 / 4139
页数:9
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