Research Center for Biomaterials, Indonesian Institute of Sciences (LIPI), Jl. Raya Bogor, Km. 46, Cibinong 16911, Bogor, Indonesia.
Department of Applied Bioscience, Faculty of Agriculture, Ehime University, 3-5-7 Tarumi, Matsuyama 790-8566, Ehime, Japan.
J Hazard Mater. 2014 Aug 15;278:454-63. doi: 10.1016/j.jhazmat.2014.06.039. Epub 2014 Jun 25.
The potential of fungal co-culture of the filamentous Pestalotiopsis sp. NG007 with four different basidiomycetes--Trametes versicolor U97, Pleurotus ostreatus PL1, Cerena sp. F0607, and Polyporus sp. S133--for accelerating biodegradation of petroleum hydrocarbons (PHCs) was studied using three different physicochemical characteristic PHCs in soil. All the combinations showed a mutual intermingling mycelial interaction on the agar plates. However, only NG007/S133 (50/50) exhibited an optimum growth rate and enzymatic activities that supported the degradation of asphalt in soil. The co-culture also degraded all fractions at even higher concentrations of the different PHCs. In addition, asphaltene, which is a difficult fraction for a single microorganism to degrade, was markedly degraded by the co-culture, which indicated that the simultaneous biodegradation of aliphatic, aromatic, resin, and asphaltene fractions had occurred in the co-culture. An examination of in-vitro degradation by the crude enzymes and the retrieval fungal culture from the soil after the experiment confirmed the accelerated biodegradation due to enhanced enzyme activities in the co-culture. The addition of piperonyl butoxide or AgNO3 inhibited biodegradation by 81-99%, which demonstrated the important role of P450 monooxygenases and/or dioxygenases in the initial degradation of the aliphatic and aromatic fractions in PHCs.
研究了丝状 Pestalotiopsis sp. NG007 与四种不同担子菌——Trametes versicolor U97、Pleurotus ostreatus PL1、Cerena sp. F0607 和 Polyporus sp. S133——共培养对土壤中石油烃(PHC)生物降解的潜力,使用了三种不同理化特性的 PHC。所有组合在琼脂平板上都表现出相互交织的菌丝体相互作用。然而,只有 NG007/S133(50/50)表现出最佳的生长速率和酶活性,支持了土壤中沥青的降解。共培养还在不同 PHC 更高浓度下降解了所有馏分。此外,对于单一微生物来说难以降解的沥青质,也被共培养显著降解,这表明在共培养中同时发生了脂肪族、芳香族、树脂和沥青质馏分的生物降解。通过粗酶的体外降解和实验后从土壤中回收真菌培养物的检查,证实了由于共培养中酶活性的增强,促进了生物降解。添加胡椒基丁醚或 AgNO3 抑制了 81-99%的生物降解,这表明 P450 单加氧酶和/或双加氧酶在 PHC 中脂肪族和芳香族馏分的初始降解中起着重要作用。