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首页> 外文期刊>Ecotoxicology and Environmental Safety >Tellurite biotransformation and detoxification by Shewanella baltica with simultaneous synthesis of tellurium nanorods exhibiting photo-catalytic and anti-biofilm activity
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Tellurite biotransformation and detoxification by Shewanella baltica with simultaneous synthesis of tellurium nanorods exhibiting photo-catalytic and anti-biofilm activity

机译:波氏希瓦氏菌对碲的生物转化和解毒作用,同时合成具有光催化和抗生物膜活性的碲纳米棒

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Tellurite reducing bacterial strain was isolated from Zuari estuary, Goa India which could tolerate 5.5 mM potassium tellurite with a minimum inhibitory concentration of 6 mM. This strain was designated as GUSDZ9 and was identified as Shewanella baltica (accession number: MF350629) based on 16S rRNA gene sequencing and BLAST analysis. The Diethyl-dithiocarbamate based colorimetric analysis clearly demonstrated a complete reduction of 2 mM tellurite to elemental tellurium during the late stationary phase. Te Nanoparticles (TeNPs) biosynthesis which initiated at early log phase (i.e. 4 h) was evidently monitored through colour change and a peak due to surface plasmon resonance at 210 nm using UV-Vis spectroscopic analysis. X-ray crystallographic studies and transmission electron microscopy revealed unique nano-rods with a diameter ranging from 8 to 75 nm. Energy dispersive X-ray analysis further confirmed the presence of pure tellurium. The biogenic TeNPs at 10 and 5 mu g/mL evidently demonstrated 90% degradation of methylene blue dye and anti-biofilm activity against potential Gram-positive and Gram-negative human pathogens respectively. The alkaline comet assay revealed time and dose-dependent genotoxicity at concentrations higher than 15 mu g/mL of TeNPs. This study clearly demonstrated the potential of Shewanella baltica strain GUSDZ9 in bioremediation of toxic tellurite through bio-reduction into elemental tellurium and involvement of biogenic TeNPs in the photo-catalytic reduction of methylene blue and anti-biofilm activity. This is the first report of its kind on the synthesis of biogenic TeNPs from Shewanella baltica demonstrating photo-catalytic, anti-biofilm activity as well as genotoxicity.
机译:从印度果阿的Zuari河口分离出减少亚碲酸盐的细菌菌株,该菌株可耐受5.5 mM的亚碲酸钾,最低抑制浓度为6 mM。基于16S rRNA基因测序和BLAST分析,将该菌株命名为GUSDZ9,并鉴定为波罗氏乳杆菌(登录号:MF350629)。基于二乙基二硫代氨基甲酸酯的比色分析清楚地表明,在固定后期,完全将2 mM亚碲酸盐还原为元素碲。使用紫外-可见光谱分析通过颜色变化和在210 nm处由于表面等离振子共振产生的峰明显地监测了在对数早期(即4 h)开始的Te纳米颗粒(TeNPs)生物合成。 X射线晶体学研究和透射电子显微镜显示直径为8至75 nm的独特纳米棒。能量色散X射线分析进一步证实了纯碲的存在。 10和5μg / mL的生物TeNPs明显证明了90%的亚甲基蓝染料降解和对潜在革兰氏阳性和革兰氏阴性人类病原体的抗生物膜活性。碱性彗星试验揭示了浓度高于15μg / mL的TeNPs的时间和剂量依赖性的遗传毒性。这项研究清楚地证明了波罗的海希瓦氏菌菌株GUSDZ9通过生物还原成元素碲和生物型TeNP参与光催化还原亚甲基蓝和抗生物膜的活性,对有毒的亚碲酸盐进行生物修复的潜力。这是有关波罗的海希瓦氏菌(Shewanella baltica)合成生物型TeNPs的首次报道,证明了其具有光催化,抗生物膜活性以及遗传毒性。

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