In vitro and in silico Studies Reveal Bacillus cereus AA-18 as a Potential Candidate for Bioremediation of Mercury-Contaminated Wastewater
Mercury (Hg) pollution is a worldwide problem and increasing day by day due to natural and anthropogenic sources. In this study, mercury-resistant (Hg R ) bacterial isolates were isolated from industrial wastewater of Ittehad Chemicals Ltd., Kala Shah Kaku, Lahore, Pakistan. Out of 65 bacterial isol...
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Veröffentlicht in: | Frontiers in microbiology 2022-06, Vol.13, p.847806-847806 |
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Zusammenfassung: | Mercury (Hg) pollution is a worldwide problem and increasing day by day due to natural and anthropogenic sources. In this study, mercury-resistant (Hg
R
) bacterial isolates were isolated from industrial wastewater of Ittehad Chemicals Ltd., Kala Shah Kaku, Lahore, Pakistan. Out of 65 bacterial isolates, five isolates were screened out based on showing resistance at 30–40 μg/ml against HgCl
2
. Selected Hg-resistant bacterial isolates were characterized as
Bacillus subtilis
AA-16 (OK562835),
Bacillus cereus
AA-18 (OK562834),
Bacillus
sp. AA-20 (OK562833),
Bacillus paramycoides
AA-30 (OK562836), and
Bacillus thuringiensis
AA-35 (OK562837).
B. cereus
AA-18 showed promising results in the resistance of HgCl
2
(40 μg/ml) due to the presence of
mer
A gene. Scanning electron microscopy (SEM) analysis of immobilized
B. cereus
AA-18 showed the accumulation Hg on the cell surface. The inoculation of immobilized
B. cereus
AA-18 remediated 86% Hg of industrial wastewater up to 72 h at large scale (
p
< 0.05).
In silico
analysis showed structural determination of MerA protein encoded by
mer
A gene of
B. cereus
AA-18 (OK562598) using ProtParam, Pfam, ConSurf Server, InterPro, STRING, Jpred4, PSIPRED, I-TASSER, COACH server, TrRosetta, ERRAT, VERIFY3D, Ramachandran plot, and AutoDock Vina (PyRx 8.0). These bioinformatics tools predicted the structural-based functional homology of MerA protein (mercuric reductase) associated with
mer
operon harboring bacteria involved in Hg-bioremediation system. |
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ISSN: | 1664-302X 1664-302X |
DOI: | 10.3389/fmicb.2022.847806 |