Literature DB >> 33249309

A newly discovered function of nitrate reductase in chemoautotrophic vanadate transformation by natural mackinawite in aquifer.

Chao He1, Baogang Zhang2, Jianping Lu1, Rui Qiu1.   

Abstract

Mackinawite (FeS), a widely-distributed natural reducing mineral, can donate electron for various (bio)processes. However, little is known about mackinawite-driven chemoautotrophic bioreduction of toxic vanadate [V(V)] in aquifer. This study demonstrates that V(V) is successfully bioreduced by mackinawite under anaerobic condition via 150-d operation of constructed aquifer. Complete V(V) removal was achieved at the initial concentration of 10 mg/L and flow rate of 0.125 mL/min. Fluctuant hydrochemistry and hydrodynamics affected V(V) removal performance. Biotic activity was identified as the major contribution to V(V) transformation (76.4 ± 1.01%). Chemoautotrophic genera (e.g., Thiobacillus) could oxidize FeS coupled to direct V(V) reduction independently. Heterotrophic V(V) reducers (e.g., Pseudomonas and Spirochaeta) could also achieve V(V) detoxification by utilizing metabolic intermediates synthesized by autotrophic Fe(II) oxidizers (e.g., Thiobacillus) and S(-II) oxidizing genera (e.g., Sulfuricurvum). Gene abundance and enzymatic activity tests confirmed that nitrate reductase gene napA functioned crucially in chemoautotrophic V(V) reduction by Fe(II) and S(-II) donating electron. V(V) was reduced to insoluble V(IV) while elements in mackinawite were oxidized to Fe(III) and SO42-. This study reveals the coupling of iron, sulfur and vanadium in biogeochemical cycling, and offers a promising strategy for remediation of V(V)-polluted aquifer.
Copyright © 2020 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Aquifer; Bioreduction; Chemoautotrophic bioprocess; Mackinawite; Vanadate

Year:  2020        PMID: 33249309     DOI: 10.1016/j.watres.2020.116664

Source DB:  PubMed          Journal:  Water Res        ISSN: 0043-1354            Impact factor:   11.236


  2 in total

1.  Characterization and bioremediation potential of native heavy-metal tolerant bacteria isolated from rat-hole coal mine environment.

Authors:  L Shylla; S K Barik; S R Joshi
Journal:  Arch Microbiol       Date:  2021-03-04       Impact factor: 2.552

2.  Microbially-Enhanced Vanadium Mining and Bioremediation Under Micro- and Mars Gravity on the International Space Station.

Authors:  Charles S Cockell; Rosa Santomartino; Kai Finster; Annemiek C Waajen; Natasha Nicholson; Claire-Marie Loudon; Lorna J Eades; Ralf Moeller; Petra Rettberg; Felix M Fuchs; Rob Van Houdt; Natalie Leys; Ilse Coninx; Jason Hatton; Luca Parmitano; Jutta Krause; Andrea Koehler; Nicol Caplin; Lobke Zuijderduijn; Alessandro Mariani; Stefano Pellari; Fabrizio Carubia; Giacomo Luciani; Michele Balsamo; Valfredo Zolesi; Jon Ochoa; Pia Sen; James A J Watt; Jeannine Doswald-Winkler; Magdalena Herová; Bernd Rattenbacher; Jennifer Wadsworth; R Craig Everroad; René Demets
Journal:  Front Microbiol       Date:  2021-04-01       Impact factor: 5.640

  2 in total

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