Department of Environmental Science, G. B. Pant University of Agriculture and Technology, U S Nagar, Pantnagar, Uttarakhand, 263145, India.
World J Microbiol Biotechnol. 2022 Feb 24;38(4):61. doi: 10.1007/s11274-022-03250-3.
Benzo[a]pyrene (BaP) is a high molecular weight polycyclic aromatic hydrocarbon produced as a result of incomplete combustion of organic substances. Over the years, the release of BaP in the atmosphere has increased rapidly, risking human lives. BaP can form bonds with DNA leading to the formation of DNA adducts thereby causing cancer. Therefore addressing the problem of its removal from the environment is quite pertinent though it calls for a very cumbersome and tedious process owing to its recalcitrant nature. To resolve such issues many efforts have been made to develop physical and chemical technologies of BaP degradation which have neither been cost-effective nor eco-friendly. Microbial degradation of BaP, on the other hand, has gained much attention due to added advantage of the high level of microbial diversity enabling great potential to degrade the substance without impairing environmental sustainability. Microorganisms produce enzymes like oxygenases, hydrolases and cytochrome P450 that enable BaP degradation. However, microbial degradation of BaP is restricted due to several factors related to its bio-availability and soil properties. Technologies like bio-augmentation and bio-stimulation have served to enhance the degradation rate of BaP. Besides, advanced technologies such as omics and nano-technology have opened new doors for a better future of microbial degradation of BaP and related compounds.
苯并[a]芘(BaP)是一种高分子量多环芳烃,是有机物质不完全燃烧的结果。多年来,大气中 BaP 的释放迅速增加,危及人类生命。BaP 可以与 DNA 形成键,导致 DNA 加合物的形成,从而导致癌症。因此,解决其从环境中去除的问题非常重要,尽管由于其顽固的性质,这需要一个非常繁琐和乏味的过程。为了解决这些问题,人们已经做出了许多努力来开发 BaP 降解的物理和化学技术,但这些技术既不具有成本效益,也不环保。另一方面,由于微生物多样性水平高,具有很大的降解潜力,而不会损害环境可持续性,因此微生物降解 BaP 引起了广泛关注。微生物产生的酶,如加氧酶、水解酶和细胞色素 P450 ,使 BaP 得以降解。然而,由于 BaP 的生物可利用性和土壤特性等相关因素的限制,微生物降解 BaP 受到了限制。生物增强和生物刺激等技术已被用于提高 BaP 的降解速率。此外,组学和纳米技术等先进技术为更好地实现微生物降解 BaP 和相关化合物的未来开辟了新的途径。