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Optimization of culturing conditions for isolated Arthrobacter sp. ZXY-2, an effective atrazine-degrading and salt-adaptive bacterium

机译:分离节杆菌的培养条件的优化。 ZXY-2,一种有效的阿特拉津降解和盐适应细菌

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摘要

The increasing salinity in aquatic environments has had a negative impact on the biodegradation of atrazine, an extensively used herbicide which has been proven to pollute soil and water ecosystems. In the present study, a novel atrazine-degrading strain (ZXY-2) was isolated from industrial wastewater and identified as the Arthrobacter genus with the 16S rRNA gene. Results indicated that the strain showed a high salinity tolerance, and was able to tolerate NaCl concentrations up to 10% (w/w). Plackett–Burman (PB) multifactorial design and response surface methodology (RSM) were then employed to optimize the culturing conditions. Results showed that among the selected fifteen factors, six contributing factors were obtained. Subsequently, by employing the RSM to model and optimize atrazine degradation, a biodegradation efficiency of 12.73 mg L−1 h−1 was reached under optimal conditions (34.04 °C, pH 9.0, inoculum size 10% (v/v), 2.212 g L−1 of sucrose, 6 g L−1 of Na2HPO4·12H2O, and 50 mg L−1 of atrazine). In addition, a statistically quadratic polynomial mathematical model was suggested (R2 = 0.9873). In contrast to other atrazine-degrading bacteria, ZXY-2 appears to be adapted to life under high salinity conditions and sustains excellent atrazine degradation performance. Therefore it could potentially be applied in atrazine bioremediation.
机译:水生环境中盐度的增加对阿特拉津的生物降解产生了负面影响,阿特拉津是一种广泛使用的除草剂,已被证明会污染土壤和水的生态系统。在本研究中,从工业废水中分离出一种新型的阿特拉津降解菌株(ZXY-2),并将其鉴定为具有16S rRNA基因的节杆菌属。结果表明该菌株显示出较高的盐度耐受性,并且能够耐受高达10%(w / w)的NaCl浓度。然后采用Plackett-Burman(PB)多因素设计和响应面方法(RSM)来优化培养条件。结果表明,在选择的15个因素中,获得了6个影响因素。随后,通过使用RSM对阿特拉津的降解进行建模和优化,在最佳条件(34.04°C,pH 9.0,接种量10%(v / v),2.212 g)下,生物降解效率达到12.73 mg L-1 h-1 L-1蔗糖,6 g L-1 Na2HPO4·12H2O和50 mg L-1阿特拉津。另外,建议使用统计二次多项式数学模型(R2 = 0.9873)。与其他降解r去津的细菌相比,ZXY-2似乎适应了高盐度条件下的生活,并保持了出色的at去津降解性能。因此,它可以潜在地应用于阿特拉津的生物修复。

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