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利用响应面法优化新分离的X19G2对活性黑5的脱色效果

Optimization of reactive black 5 decolorization by the newly isolated X19G2 using response-surface methodology.

作者信息

Dammak Islem, Ben Atitallah Imen, Louati Ibtihel, Hadrich Bilel, Mechichi Tahar

机构信息

Laboratory of Biochemistry and Enzymatic Engineering of Lipases, National Engineering School of Sfax (ENIS), University of Sfax, Sfax, Tunisia.

Laboratory of Enzyme Engineering and Microbiology, National Engineering School of Sfax (ENIS), University of Sfax, Sfax, Tunisia.

出版信息

3 Biotech. 2022 Jun;12(6):142. doi: 10.1007/s13205-022-03191-6. Epub 2022 Jun 1.

DOI:10.1007/s13205-022-03191-6
PMID:35664650
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9160172/
Abstract

In the current investigation, the capacity of different yeast strains to decolorize reactive black 5 (RB-5) was assessed. A comparative study between the different strains demonstrated that X19G2 exhibited the highest decolorization rate (69.20 ± 1.16%) after 48 h of incubation. This strain was selected to optimize the medium components' concentrations for maximum RB-5 decolorization. Response-surface methodology (RSM) was tested for the most significant parameters (glucose, yeast extract and RB-5 dye concentrations) that were previously determined by Plackett-Burman design. A dye decolorization rate of 99.59 ± 0.24% was achieved within 48 h using a maximum RB-5 concentration (0.15 g/L) with glucose and yeast extract concentrations equalling to 10.5 g/L and 1 g/L, respectively. Experimental data results proved to fit well with the pseudo-second order kinetics model. The phytotoxicity assessment was carried out using seeds to determine the toxicity of RB-5 before and after treatment by . Results suggested that germination rate and the length of seeds radical irrigated with 0.15 g/L of RB-5 decreased by 30 and 53%, compared to those irrigated with treated solution. Therefore, metabolites derived from decolorization of RB-5 by X19G2 were significantly less toxic than the original dye.

摘要

在当前的研究中,评估了不同酵母菌株对活性黑5(RB-5)的脱色能力。不同菌株之间的比较研究表明,孵育48小时后,X19G2表现出最高的脱色率(69.20±1.16%)。选择该菌株来优化培养基成分的浓度,以实现最大程度的RB-5脱色。针对先前通过Plackett-Burman设计确定的最显著参数(葡萄糖、酵母提取物和RB-5染料浓度),测试了响应面方法(RSM)。使用最大RB-5浓度(0.15 g/L),葡萄糖和酵母提取物浓度分别等于10.5 g/L和1 g/L时,在48小时内实现了99.59±0.24%的染料脱色率。实验数据结果证明与伪二级动力学模型拟合良好。使用种子进行了植物毒性评估,以确定处理前后RB-5的毒性。结果表明,与用处理后的溶液灌溉的种子相比,用0.15 g/L的RB-5灌溉的种子发芽率和胚根长度分别降低了30%和53%。因此,X19G2对RB-5脱色产生的代谢产物毒性明显低于原始染料。

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