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Harnessing the Potential of Bacillus altitudinis MT422188 for Copper Bioremediation

生物吸附 化学 生物修复 核化学 弗伦德利希方程 细菌生长 吉布斯自由能 细菌 废水 吸附 环境化学 生物 环境工程 有机化学 吸附 遗传学 物理 量子力学 工程类
作者
Maryam Khan,Muhammad Kamran,Roqayah H. Kadi,Mohamed M. Hassan,Abeer Elhakem,Haifa Abdulaziz S. Alhaithloul,Mona H. Soliman,Muhammad Zahid Mumtaz,Muhammad Ashraf,Saba Shamim
出处
期刊:Frontiers in Microbiology [Frontiers Media]
卷期号:13 被引量:14
标识
DOI:10.3389/fmicb.2022.878000
摘要

The contamination of heavy metals is a cause of environmental concern across the globe, as their increasing levels can pose a significant risk to our natural ecosystems and public health. The present study was aimed to evaluate the ability of a copper (Cu)-resistant bacterium, characterized as Bacillus altitudinis MT422188, to remove Cu from contaminated industrial wastewater. Optimum growth was observed at 37°C, pH 7, and 1 mm phosphate, respectively. Effective concentration 50 (EC50), minimum inhibitory concentration (MIC), and cross-heavy metal resistance pattern were observed at 5.56 mm, 20 mm, and Ni > Zn > Cr > Pb > Ag > Hg, respectively. Biosorption of Cu by live and dead bacterial cells in its presence and inhibitors 1 and 2 (DNP and DCCD) was suggestive of an ATP-independent efflux system. B. altitudinis MT422188 was also able to remove 73 mg/l and 82 mg/l of Cu at 4th and 8th day intervals from wastewater, respectively. The presence of Cu resulted in increased GR (0.004 ± 0.002 Ug-1FW), SOD (0.160 ± 0.005 Ug-1FW), and POX (0.061 ± 0.004 Ug-1FW) activity. Positive motility (swimming, swarming, twitching) and chemotactic behavior demonstrated Cu as a chemoattractant for the cells. Metallothionein (MT) expression in the presence of Cu was also observed by SDS-PAGE. Adsorption isotherm and pseudo-kinetic-order studies suggested Cu biosorption to follow Freundlich isotherm as well as second-order kinetic model, respectively. Thermodynamic parameters such as Gibbs free energy (∆G°), change in enthalpy (∆H° = 10.431 kJ/mol), and entropy (∆S° = 0.0006 kJ/mol/K) depicted the biosorption process to a feasible, endothermic reaction. Fourier Transform Infrared Spectroscopy (FTIR), Scanning Electron Microscopy (SEM), and Energy-Dispersive X-Ray Spectroscopy (EDX) analyses revealed the physiochemical and morphological changes in the bacterial cell after biosorption, indicating interaction of Cu ions with its functional groups. Therefore, these features suggest the potentially effective role of B. altitudinis MT422188 in Cu bioremediation.

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