College of Life Sciences, Fujian Normal University, Fuzhou, People's Republic of China.
Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, People's Republic of China.
Environ Technol. 2021 Nov;42(27):4279-4285. doi: 10.1080/09593330.2020.1754472. Epub 2020 Apr 21.
The objective of the study was to improve tetracycline degradation efficiency by XPY-10 using statistical experimental designs. Different culture conditions (FeSO, pH and glucose) were optimized for tetracycline biodegradation and the mutual interactions between these three variables were analysed using Box-Behnken design (BBD) and response surface methodology (RSM). The results showed that the empirical model was suitable for experimental data, and the maximum tetracycline degradation efficiency by XPY-10 was 95.18% under the optimum conditions of 0.02% of FeSO, pH 7.83 and 0.28% of glucose, which was further verified by experiments. This study indicated the excellent ability of XPY-10 in degrading tetracycline and theoretical support for the follow-up practice to remediate tetracycline contaminated environment.
该研究的目的是通过 XPY-10 使用统计实验设计来提高四环素的降解效率。采用 Box-Behnken 设计(BBD)和响应面法(RSM)对不同的培养条件(FeSO4、pH 和葡萄糖)进行优化,以实现四环素的生物降解,并分析这三个变量之间的相互作用。结果表明,经验模型适用于实验数据,在 FeSO4 为 0.02%、pH 为 7.83 和葡萄糖为 0.28%的最佳条件下,XPY-10 对四环素的最大降解效率为 95.18%,实验进一步验证了这一结果。本研究表明 XPY-10 具有出色的四环素降解能力,为后续修复四环素污染环境的实践提供了理论支持。