College of Bioscience and Biotechnology, Yangzhou University, Yangzhou 225009, China.
Int J Mol Sci. 2023 Nov 20;24(22):16529. doi: 10.3390/ijms242216529.
Microorganism-based methods have been widely applied for the treatment of phenol-polluted environments. The previously isolated NL1 strain could completely degrade 0.5 g/L phenol within 12 h, but not higher concentrations of phenol. In this study, we developed an evolutionary strain NL115, through adaptive laboratory evolution, which possessed improved degradation ability and was able to degrade 1.5 g/L phenol within 12 h. Compared with that of the starting strain NL1, the concentration of degradable phenol by the developed strain increased three-fold; its phenol tolerance was also enhanced. Furthermore, comparative genomics showed that sense mutations mainly occurred in genes encoding alkyl hydroperoxide reductase, phenol hydroxylase, 30S ribosomal protein, and mercury resistance operon. Comparative transcriptomics between NL115 and NL1 revealed the enrichment of direct degradation, stress resistance, and vital activity processes among the metabolic responses of adapted to phenol stress. Among these, all the upregulated genes (logfold-change > 5) encoded peroxidases. A phenotypic comparison of NL1 and NL115 found that the adapted strain NL115 exhibited strengthened antioxidant capacity. Furthermore, the increased enzymatic activities of phenol hydroxylase and alkyl hydroperoxide reductase in NL115 validated their response to phenol. Overall, this study provides insight into the mechanism of efficient phenol degradation through adaptive microbial evolution and can help to drive improvements in phenol bioremediation.
微生物方法已广泛应用于处理受酚污染的环境。先前分离的 NL1 菌株可以在 12 小时内完全降解 0.5 g/L 的苯酚,但不能降解更高浓度的苯酚。在本研究中,我们通过适应性实验室进化开发了一种进化菌株 NL115,该菌株具有改善的降解能力,能够在 12 小时内降解 1.5 g/L 的苯酚。与起始菌株 NL1 相比,开发菌株可降解的苯酚浓度增加了三倍;其苯酚耐受性也得到了增强。此外,比较基因组学表明,顺式突变主要发生在编码烷基氢过氧化物还原酶、苯酚羟化酶、30S 核糖体蛋白和汞抗性操纵子的基因中。NL115 和 NL1 之间的比较转录组学揭示了适应苯酚胁迫的代谢反应中直接降解、应激抗性和生命活性过程的富集。在这些过程中,所有上调的基因(logfold-change>5)都编码过氧化物酶。NL1 和 NL115 的表型比较发现,适应菌株 NL115 表现出增强的抗氧化能力。此外,NL115 中苯酚羟化酶和烷基氢过氧化物还原酶的酶活性增加验证了它们对苯酚的响应。总体而言,本研究通过微生物的适应性进化提供了高效降解苯酚的机制见解,并有助于推动苯酚生物修复的改进。