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有效利用具有生物表面活性潜力的植物促生根际细菌来对抗玉米植物中的石油毒性。

Efficacious use of potential biosurfactant producing plant growth promoting rhizobacteria to combat petrol toxicity in Zea mays L. plants.

机构信息

Institute of Botany, University of the Punjab, Quaid-E-Azam Campus, Lahore, 54590, Pakistan.

School of Biological Sciences, University of the Punjab, Quaid-E-Azam Campus, Lahore, 54590, Pakistan.

出版信息

Environ Sci Pollut Res Int. 2023 Apr;30(18):53725-53740. doi: 10.1007/s11356-023-25925-6. Epub 2023 Mar 3.

Abstract

Soil pollution caused by petroleum hydrocarbons is a serious threat for human life, as it affects the groundwater, cause economical losses after decreasing the agricultural production, and create other ecological issues. Here, we are reporting the isolation and screening of rhizosphere bacteria possessing biosurfactant producing potential and capable of enhancing plant growth under petrol stress as well as possessing. Efficient biosurfactant producers having plant growth promoting traits were characterized morphologically, physiologically, and phylogenetically. These selected isolates were identified as Bacillus albus S2i, Paraclostridium benzoelyticum Pb4, and Proteus mirabilis Th1 based on 16S rRNA sequence analysis. These bacteria possessed plant growth promoting attributes as well as exhibited positive activity toward the assays based on hydrophobicity, lipase activity, surface activity, and hydrocarbon degradation that indicated the production of biosurfactants. Fourier transform infrared spectroscopy of crude biosurfactants extracted from bacterial strains revealed that the biosurfactants from Pb4 and Th1 might belong to glycolipid or glycolipopeptide class whereas the biosurfactants from S2i could be from phospholipid class. Scanning electron micrographs exhibited group of exopolymer matrices interconnecting the cells forming a complex network of mass, while energy dispersive X-ray analysis has shown elemental composition of biosurfactants with dominance of nitrogen, carbon, oxygen, and phosphorous. Further, these strains were then used to ascertain their effect on the growth and biochemical parameters including stress metabolites and antioxidant enzymology of Zea mays L. plants grown under petrol (gasoline) stress. Significant increments in all studied parameters were observed in comparison with control treatments that might be due to petrol degradation by bacteria and also by secreting growth stimulating substances released by these bacteria in soil ecosystem. To the best of our knowledge, this is the first report in which Pb4 and Th1 were studied as surfactant producing PGPR and further their role as biofertilizer for the significant improvement in phytochemical constituents of maize plants grown under petrol stress was assessed.

摘要

石油烃引起的土壤污染对人类生命构成了严重威胁,因为它会影响地下水,在降低农业产量后造成经济损失,并造成其他生态问题。在这里,我们报告了具有生物表面活性剂产生潜力并能够在石油压力下增强植物生长以及具有高效生物表面活性剂产生特性的根际细菌的分离和筛选,这些特性具有植物生长促进特性。通过形态学、生理学和系统发育学对具有植物生长促进特性的有效生物表面活性剂产生菌进行了特征描述。这些选定的分离物基于 16S rRNA 序列分析被鉴定为白杆菌 S2i、苯并乙降解梭菌 Pb4 和奇异变形杆菌 Th1。这些细菌具有植物生长促进特性,并表现出疏水性、脂肪酶活性、表面活性和烃降解测定中的阳性活性,表明生物表面活性剂的产生。从细菌菌株中提取的粗生物表面活性剂的傅里叶变换红外光谱表明,Pb4 和 Th1 的生物表面活性剂可能属于糖脂或糖肽类,而 S2i 的生物表面活性剂可能属于磷脂类。扫描电子显微镜照片显示了一组细胞间相互连接的细胞外聚合物基质,形成了一个复杂的质量网络,而能量色散 X 射线分析显示了生物表面活性剂的元素组成,以氮、碳、氧和磷为主。此外,然后使用这些菌株来确定它们对在汽油(汽油)压力下生长的玉米(Zea mays L.)植物的生长和生化参数的影响,包括应激代谢物和抗氧化酶学。与对照处理相比,所有研究参数都有显著增加,这可能是由于细菌对汽油的降解以及这些细菌在土壤生态系统中分泌的生长刺激物质。据我们所知,这是首次研究 Pb4 和 Th1 作为产生表面活性剂的 PGPR 的报告,进一步评估了它们作为生物肥料在汽油压力下显著提高玉米植物的植物化学物质组成的作用。

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