Institute of Microbiology, Bulgarian Academy of Sciences, Acad. G. Bontchev Str., bl. 26, Sofia, 1113, Bulgaria.
Biodegradation. 2010 Jul;21(4):625-35. doi: 10.1007/s10532-010-9330-7. Epub 2010 Feb 2.
The ability of the white rot fungus Trametes versicolor strain 1 to degrade and utilize methylated phenols (cresols) was established for the first time in a medium not containing any other carbon components. The data obtained demonstrated the better potential of the strain to assimilate p-cresol instead of o- or m- cresol. The 0.5 g/l p-cresol provided was degraded in full after 96 h. The effect of a dual substrate mixture (0.3 g/l phenol + 0.2 g/l p-cresol) on the growth behavior and degradation capacity of the investigated strain was examined. The cell-free supernatants were analyzed by HPLC. It was established that the presence of p-cresol had not prevented complete phenol degradation but had a significant delaying effect on the phenol degradation dynamics. Phenol hydroxylase, catechol 1.2-dioxygenase and cis,cis-muconate cyclase activities were obtained in conditions of single and mixed substrates cultivation. The influence of different phenolic substrates on phenol hydroxylase activity in Trametes versicolor 1 was established. The mathematical models describing the dynamics of single substrates' utilization as well as the mutual influence of phenol and p-cresol in the mixture were developed on the bases of Haldane kinetics. The estimated interaction coefficients (I(ph/cr) = 4.72, I(cr/ph) = 7.46) demonstrated the significant inhibition of p-cresol on phenol biodegradation and comparatively low level of influence of phenol presence on the p-cresol degradation. Molecular 18S RNA gene taxonomy of the investigated strain was performed.
首次在不含任何其他碳源的培养基中证实了白腐真菌彩绒革盖菌 1 号菌株降解和利用甲基苯酚(甲酚)的能力。研究数据表明,该菌株同化对-甲酚的潜力优于邻-或间-甲酚。96 小时后,完全降解了 0.5 g/L 的对-甲酚。考察了双底物混合物(0.3 g/L 苯酚+0.2 g/L 对-甲酚)对研究菌株生长行为和降解能力的影响。用 HPLC 分析无细胞上清液。结果表明,对-甲酚的存在并未阻止苯酚的完全降解,但对苯酚降解动力学有显著的延迟作用。在单底物和混合底物培养条件下获得了苯酚羟化酶、儿茶酚 1,2-双加氧酶和顺,顺-粘康酸环化酶的活性。确定了不同酚类底物对彩绒革盖菌 1 中苯酚羟化酶活性的影响。在 Haldane 动力学的基础上,建立了描述单底物利用动力学以及混合物中苯酚和对-甲酚相互影响的数学模型。估计的相互作用系数(I(ph/cr) = 4.72,I(cr/ph) = 7.46)表明,对-甲酚对苯酚生物降解有显著的抑制作用,而苯酚的存在对对-甲酚降解的影响相对较低。对所研究菌株的 18S RNA 基因进行了分子分类学研究。