Literature DB >> 24274146

Fate of Cd during microbial Fe(III) mineral reduction by a novel and Cd-tolerant Geobacter species.

E Marie Muehe1, Martin Obst, Adam Hitchcock, Tolek Tyliszczak, Sebastian Behrens, Christian Schröder, James M Byrne, F Marc Michel, Ute Krämer, Andreas Kappler.   

Abstract

Fe(III) (oxyhydr)oxides affect the mobility of contaminants in the environment by providing reactive surfaces for sorption. This includes the toxic metal cadmium (Cd), which prevails in agricultural soils and is taken up by crops. Fe(III)-reducing bacteria can mobilize such contaminants by Fe(III) mineral dissolution or immobilize them by sorption to or coprecipitation with secondary Fe minerals. To date, not much is known about the fate of Fe(III) mineral-associated Cd during microbial Fe(III) reduction. Here, we describe the isolation of a new Geobacter sp. strain Cd1 from a Cd-contaminated field site, where the strain accounts for 10(4) cells g(-1) dry soil. Strain Cd1 reduces the poorly crystalline Fe(III) oxyhydroxide ferrihydrite in the presence of at least up to 112 mg Cd L(-1). During initial microbial reduction of Cd-loaded ferrihydrite, sorbed Cd was mobilized. However, during continuous microbial Fe(III) reduction, Cd was immobilized by sorption to and/or coprecipitation within newly formed secondary minerals that contained Ca, Fe, and carbonate, implying the formation of an otavite-siderite-calcite (CdCO3-FeCO3-CaCO3) mixed mineral phase. Our data shows that microbially mediated turnover of Fe minerals affects the mobility of Cd in soils, potentially altering the dynamics of Cd uptake into food or phyto-remediating plants.

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Year:  2013        PMID: 24274146     DOI: 10.1021/es403365w

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  7 in total

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2.  Rhizosphere microbial community composition affects cadmium and zinc uptake by the metal-hyperaccumulating plant Arabidopsis halleri.

Authors:  E Marie Muehe; Pascal Weigold; Irini J Adaktylou; Britta Planer-Friedrich; Ute Kraemer; Andreas Kappler; Sebastian Behrens
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4.  Do soil Fe transformation and secretion of low-molecular-weight organic acids affect the availability of Cd to rice?

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Journal:  Environ Sci Pollut Res Int       Date:  2015-08-12       Impact factor: 4.223

Review 5.  Current and future microbiological strategies to remove As and Cd from drinking water.

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6.  Physiological of biochar and α-Fe2O3 nanoparticles as amendments of Cd accumulation and toxicity toward muskmelon grown in pots.

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7.  Deciphering Cadmium (Cd) Tolerance in Newly Isolated Bacterial Strain, Ochrobactrum intermedium BB12, and Its Role in Alleviation of Cd Stress in Spinach Plant (Spinacia oleracea L.).

Authors:  S Renu; Khan Mohd Sarim; Dhananjaya Pratap Singh; Upasana Sahu; Manish S Bhoyar; Asha Sahu; Baljeet Kaur; Amrita Gupta; Asit Mandal; Jyoti Kumar Thakur; Madhab C Manna; Anil Kumar Saxena
Journal:  Front Microbiol       Date:  2022-01-24       Impact factor: 5.640

  7 in total

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