Literature DB >> 28927705

Evaluation of aluminium mobilization from its soil mineral pools by simultaneous effect of Aspergillus strains' acidic and chelating exometabolites.

Filip Polák1, Martin Urík2, Marek Bujdoš1, Peter Uhlík3, Peter Matúš1.   

Abstract

This contribution investigates aluminium mobilization from main aluminium pools in soils, phyllosilicates and oxyhydroxides, by acidic and chelating exometabolites of common soil fungi Aspergillus niger and A. clavatus. Their exometabolites' acidity as well as their ability to extract aluminium from solid mineral phases differed significantly during incubation. While both strains are able to mobilize aluminium from boehmite and aluminium oxide mixture to some extent, A. clavatus struggles to mobilize any aluminium from gibbsite. Furthermore, passive and active fungal uptake of aluminium enhances its mobilization from boehmite, especially in later growth phase, with strong linear correlation between aluminium bioaccumulated fraction and increasing culture medium pH. We also provide data on concentrations of oxalate, citrate and gluconate which are synthesized by A. niger and contribute to aluminium mobilization. Compared to boehmite-free treatment, fungus reduces oxalate production significantly in boehmite presence to restrict aluminium extraction efficiency. However, in presence of high phyllosilicates' dosages, aluminium is released to an extent that acetate and citrate is overproduced by fungus. Our results also highlight fungal capability to significantly enhance iron and silicon mobility as these elements are extracted from mineral lattice of phyllosilicates by fungal exometabolites alongside aluminium.
Copyright © 2017 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Aluminium; Bioextraction; Filamentous fungi; Organic acids

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Year:  2017        PMID: 28927705     DOI: 10.1016/j.jinorgbio.2017.09.006

Source DB:  PubMed          Journal:  J Inorg Biochem        ISSN: 0162-0134            Impact factor:   4.155


  1 in total

1.  Aspergillus niger Decreases Bioavailability of Arsenic(V) via Biotransformation of Manganese Oxide into Biogenic Oxalate Minerals.

Authors:  Bence Farkas; Marek Kolenčík; Miroslav Hain; Edmund Dobročka; Gabriela Kratošová; Marek Bujdoš; Huan Feng; Yang Deng; Qian Yu; Ramakanth Illa; B Ratna Sunil; Hyunjung Kim; Peter Matúš; Martin Urík
Journal:  J Fungi (Basel)       Date:  2020-11-09
  1 in total

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