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耐金属嗜盐古菌亚历山大嗜盐富球菌GUSF-1干生物质对Fe (II) 的生物吸附

Bio-adsorption of Fe (II) by dry biomass of metal-tolerant haloarchaeon Haloferax alexandrinus GUSF-1.

作者信息

Naik-Samant Sanika, Gaonkar Sanket, Furtado Irene

机构信息

Microbiology Discipline, School of Biological Sciences and Biotechnology, Goa University, Taleigao Plateau, Goa, Panaji, 403206, India.

Biotechnology Discipline, School of Biological Sciences and Biotechnology, Goa University, Taleigao Plateau, Panaji, Goa, 403206, India.

出版信息

Braz J Microbiol. 2024 Dec;55(4):3389-3402. doi: 10.1007/s42770-024-01535-3. Epub 2024 Oct 7.

DOI:10.1007/s42770-024-01535-3
PMID:39373944
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11711798/
Abstract

Mining-associated activities result in iron pollution exceeding the acceptable limit of 0.3 mg L and are rampant in estuarine soil and water bodies that harbor halophilic microorganisms. Biotechnologies are underway to unveil the concentrations and recover the metals that skip existing physico-chemical methods. Concerning this, the present study describes for the first time the development of a bio-adsorption batch system using dried cells of Haloferax alexandrinus GUSF-1 for Fe (II) from saline water under microaerophilic conditions. A maximum of 99.5% Fe (II) was adsorbed at pH 6.0, 30 ºC in 3 h with 92% efficiency over three adsorption-desorption cycles with saturation and pseudo-second-order kinetics and heterogeneity of Freundlich model having K of 1.38 mg g with the n value of 0.96. Adsorbed Fe (II) by the cells was detected by scanning electron microscopy. The involvement of the carboxyl, amino, hydroxyl, and phosphate groups of the cells in interaction with the metal ions was detected by infrared spectroscopy. Conclusively, the study is the first report of whole dried cells mediated metal adsorption by the haloarcheon Haloferax alexandrinus GUSF-1 which acts as promising candidate for metal clean-up strategy and bioremediation in hypersaline ecosystems.

摘要

与采矿相关的活动导致铁污染超过了0.3毫克/升的可接受限度,并且在含有嗜盐微生物的河口土壤和水体中泛滥。目前正在开展生物技术研究,以揭示现有物理化学方法无法检测到的金属浓度并回收这些金属。关于这一点,本研究首次描述了在微需氧条件下,利用亚历山大嗜盐菌GUSF-1的干燥细胞从盐水中生物吸附铁(II)的间歇系统的开发。在pH 6.0、30℃条件下,3小时内铁(II)的最大吸附量为99.5%,在三个吸附-解吸循环中效率达92%,符合饱和动力学和伪二级动力学,且具有Freundlich模型的非均质性,K值为1.38毫克/克,n值为0.96。通过扫描电子显微镜检测细胞吸附的铁(II)。通过红外光谱检测细胞中的羧基、氨基、羟基和磷酸基团与金属离子相互作用的情况。总之,本研究首次报道了嗜盐古菌亚历山大嗜盐菌GUSF-1的全干燥细胞介导的金属吸附,该菌株有望成为高盐生态系统中金属清理策略和生物修复的候选菌株。

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本文引用的文献

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Soil and Mineral Nutrients in Plant Health: A Prospective Study of Iron and Phosphorus in the Growth and Development of Plants.植物健康中的土壤与矿物质养分:铁和磷对植物生长发育影响的前瞻性研究
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Metal tolerance and biosorption capacities of bacterial strains isolated from an urban watershed.从城市流域分离出的细菌菌株的金属耐受性和生物吸附能力。
Front Microbiol. 2023 Oct 23;14:1278886. doi: 10.3389/fmicb.2023.1278886. eCollection 2023.
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Characterization of Mn O -MnO nanocomposites biosynthesized by cell lysate of Haloferax alexandrinus GUSF-1.由 Haloferax alexandrinus GUSF-1 的细胞裂解物生物合成的 Mn O -MnO 纳米复合材料的表征。
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Conversion of selenite by Haloferax alexandrinus GUSF-1 (KF796625) to pentagonal selenium nanoforms which in vitro modulates the formation of calcium oxalate crystals.亚历山大盐杆菌 GUSF-1 (KF796625) 将亚硒酸盐转化为五边形硒纳米形态,体外调节草酸钙晶体的形成。
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