Department of Microbial Biotechnology, School of Biology, College of Science, University of Tehran, Tehran, Iran.
Microbiology and Biotechnology Research Group, Research Institute of Petroleum Industry, Tehran, Iran.
J Hazard Mater. 2021 Aug 15;416:126202. doi: 10.1016/j.jhazmat.2021.126202. Epub 2021 May 24.
The present study was conducted to compare the efficiency of different microbial mixed-cultures consists of fifteen oil-degrading microorganisms with different combinations. The investigation was targeted toward the removal of 500 mg/l pyrene and 1% w/v tetracosane, as single compounds or mixture. Sequential Fungal-Bacterial Mixed-Culture (SMC) in which bacteria added one week after fungi, recorded 60.76% and 73.48% degradation for pyrene and tetracosane; about 10% more than Traditional Fungal-Bacterial Mixed-Culture (TMC). Co-degradation of pollutants resulted in 24.65% more pyrene degradation and 6.41% less tetracosane degradation. The non-specified external enzymes of fungi are responsible for initial attacks on hydrocarbons. Delayed addition of bacteria and co-contamination would result in higher growth of fungi which increases pyrene degradation. The addition of Rhamnolipid potently increased the extent of pyrene and tetracosane degradation by approximately 16% and 23% and showed twice better performance than Tween-80 in 20 times less concentration. The results indicated the importance of having sufficient knowledge on the characteristics of the contaminated site and its contaminants as well as oil-degrading species. Gaining this knowledge and using it properly, such as the later addition of bacteria (new method of mixed-cultures inoculation) to the contaminated culture, can serve as a promising approach.
本研究旨在比较由 15 种具有不同组合的石油降解微生物组成的不同微生物混合培养物的效率。研究的目的是去除 500mg/L 芘和 1%w/v 二十四烷,作为单一化合物或混合物。真菌-细菌顺序混合培养(SMC)中,细菌在真菌添加一周后添加,记录到芘和二十四烷的降解率分别为 60.76%和 73.48%;比传统真菌-细菌混合培养(TMC)高出约 10%。污染物的共降解导致芘的降解增加了 24.65%,二十四烷的降解减少了 6.41%。真菌的非特异性外部酶负责对碳氢化合物的初始攻击。细菌的延迟添加和共污染会导致真菌生长增加,从而增加芘的降解。鼠李糖脂的添加有力地增加了芘和二十四烷的降解程度,分别增加了约 16%和 23%,在浓度低 20 倍的情况下,性能比吐温 80 好两倍。结果表明,充分了解污染场地及其污染物以及石油降解物种的特性非常重要。获得这些知识并正确使用,例如将细菌(混合培养接种的新方法)添加到污染培养物中,可以作为一种有前途的方法。