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Microbiologically Induced Calcite Precipitation Mediated by Sporosarcina pasteurii
Published on: April 16, 2016
Characterizing carbonate mineral-forming bacterial strains and their carbonic anhydrase activities in two coastal
Khaled Naja1,2, Sara H Alhadidi1, Hadil Elsayed1
1Environmental Science Centre, Qatar University, P.O. Box 2713, Doha, Qatar.
Abstract:
The enzyme carbonic anhydrase (CA) plays a key role in carbonate mineral formation by facilitating the interconversion between CO2 and bicarbonate ions, thus influencing carbonate precipitation processes in natural environments. This study investigates the biomineralization potential of Virgibacillus strains isolated from two distinct coastal sabkhas in Qatar-Dohat Faishakh Sabkha (DFS) and Khor Al-Adaid Sabkha (KAS)-to better understand the enzymatic mechanisms driving carbonate formation in hypersaline environments. The isolated strains were evaluated for mineral formation and CA activity using three artificial media designed to simulate natural conditions: MD1, seawater-based with tryptone (SWTr), and evaporated seawater-based with tryptone (EWTr). While all strains demonstrated the ability to form minerals in MD1, only Virgibacillus salarius and Virgibacillus marismortui, both exclusive to DFS, exhibited robust mineral precipitation in SWTr and EWTr media. These strains also showed significantly higher CA activity compared to Virgibacillus chiguensis and Virgibacillus dokdonensis, which were present in both sabkhas but displayed limited mineralization and low enzymatic activity under saline conditions. Statistical analyses, including ANOVA and principal component analysis (PCA), confirmed the significant role of CA activity and salinity in modulating biomineralization potential among these strains. This research underscores the potential of CA-driven biomineralization for environmental applications. The ability of V. salarius and V. marismortui to precipitate carbonates under high-salinity conditions positions them as promising candidates for bio-based carbon sequestration technologies.
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