School of Energy and Environmental Engineering, University of Science and Technology Beijing, Beijing 100083, China; Beijing Key Laboratory on Resource-Oriented Treatment of Industrial Pollutants, Beijing 100083, China.
School of Energy and Environmental Engineering, University of Science and Technology Beijing, Beijing 100083, China; Beijing Key Laboratory on Resource-Oriented Treatment of Industrial Pollutants, Beijing 100083, China.
J Hazard Mater. 2018 Jan 5;341:1-9. doi: 10.1016/j.jhazmat.2017.07.036. Epub 2017 Jul 24.
This study investigates the V-resistant endophytic bacteria isolated from V-accumulator Pteris vittata grown on stone coal smelting district. Among all the ten isolates, the strain PRE01 identified as Serratia marcescens ss marcescens by Biolog GEN III MicroPlate™ was screened out by ranking first in terms of heavy metal resistance and plant growth promoting traits. The S. marcescens PRE01 had strong V, Cr and Cd resistance especially for V up to 1500mg/L. In addition, it exhibited ACC deaminase activity, siderophore production and high indoleacetic acid production (60.14mg/L) and solubilizing P potential (336.41mg/L). For heavy metal detoxification tests, PRE01 could specifically assimilate 97.6%, 21.7% and 6.6% of Cd(II), Cr(VI) and V(V) within 72h incubation. Despite the poor absorption of the two anions, most V(V) and Cr(VI) were detoxified and reduced to lower valence states by the strain. Furthermore, the isolate had the potential to facilitate the metals uptake of their hosts by changing heavy metal speciation. Our research may open up further scope of utilizing the endophyte for enhancing phytoextraction of vanadium industry contaminated soils.
本研究调查了从石煤矿冶炼区生长的 V 积累植物蜈蚣草中分离出的 V 抗性内生细菌。在所有的 10 个分离株中,通过生物鉴定 GEN III MicroPlate™,菌株 PRE01 被鉴定为粘质沙雷氏菌 ss 粘质亚种,其重金属抗性和植物促生特性排名第一。粘质沙雷氏菌 PRE01 对 V、Cr 和 Cd 具有很强的抗性,特别是对 V 的抗性高达 1500mg/L。此外,它表现出 ACC 脱氨酶活性、铁载体生产和高吲哚乙酸生产(60.14mg/L)和溶磷潜力(336.41mg/L)。对于重金属解毒测试,PRE01 可以在 72h 孵育内分别特异性同化 97.6%、21.7%和 6.6%的 Cd(II)、Cr(VI)和 V(V)。尽管对两种阴离子的吸收较差,但大多数 V(V)和 Cr(VI)被该菌株解毒并还原为较低的价态。此外,该分离株还有可能通过改变重金属形态来促进其宿主对金属的吸收。我们的研究可能为利用内生菌来增强对钒工业污染土壤的植物提取开辟了更广阔的前景。