Key Laboratory for Space Bioscience & Biotechnology, School of Life Sciences, Northwestern Polytechnical University, Xi'an 710072, PR China.
Soil and Environmental Biotechnology Division, National Institute for Biotechnology and Genetic Engineering (NIBGE), PO Box 577, Jhang Road, Faisalabad 38000, Pakistan.
J Hazard Mater. 2018 May 5;349:272-281. doi: 10.1016/j.jhazmat.2017.12.065. Epub 2017 Dec 29.
Bispyribac sodium (BS), is a selective, systemic and post emergent herbicide used to eradicate grasses and broad leaf weeds. Extensive use of this herbicide has engendered serious environmental concerns. Hence it is important to develop strategies for bioremediation of BS in a cost effective and environment friendly way. In this study a bacterial consortium named BDAM, comprising three novel isolates Achromobacter xylosoxidans (BD1), Achromobacter pulmonis (BA2), and Ochrobactrum intermedium (BM2), was developed by virtue of its potential for degradation of BS. Different culture conditions (temperature, pH and inoculum size) were optimized for degradation of BS by the consortium BDAM and the mutual interactions of these parameters were analysed using a 2 full factorial central composite design (CCD) based on Response Surface Methodology (RSM). The optimal values for temperature, pH and inoculum size were found to be 40 °C, 8 and 0.4 g/L respectively to achieve maximum degradation of BS (85.6%). Moreover, the interactive effects of these parameters were investigated using three dimensional surface plots in terms of maximum fitness function. Importantly, it was concluded that the newly developed consortium is a potential candidate for biodegradation of BS in a safe, cost-effective and environmentally friendly manner.
双草醚钠盐(BS)是一种选择性、系统性和后发性除草剂,用于根除草类和阔叶杂草。这种除草剂的广泛使用引起了严重的环境问题。因此,开发一种经济有效且环保的方法来生物修复 BS 非常重要。在这项研究中,通过其降解 BS 的潜力,开发了一种名为 BDAM 的细菌联合体,由三个新分离株(BD1、BA2 和 BM2)组成,分别为无色杆菌(Achromobacter xylosoxidans)、肺铜绿假单胞菌(Achromobacter pulmonis)和中间欧文氏菌(Ochrobactrum intermedium)。通过使用基于响应面法(RSM)的 2 全因子中心复合设计(CCD)优化了由 BDAM 联合体降解 BS 的不同培养条件(温度、pH 和接种量),并分析了这些参数之间的相互作用。发现达到最大 BS 降解(85.6%)的最佳温度、pH 和接种量分别为 40°C、8 和 0.4 g/L。此外,还使用三维表面图根据最大拟合函数研究了这些参数的交互作用。重要的是,结论是新开发的联合体是一种安全、经济有效且环保的 BS 生物降解的潜在候选物。