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不动杆菌属 PD3 是一株具有促进植物生长特性的菲(PHE)降解菌,可增强水稻植株对 PHE 的降解和抗逆能力。

Klebsiella sp. PD3, a phenanthrene (PHE)-degrading strain with plant growth promoting properties enhances the PHE degradation and stress tolerance in rice plants.

机构信息

Department of Gynecology and Obstetrics, Tianjin Medical University General Hospital, Tianjin, 300070, China.

School of Environmental Science and Engineering, Tianjin University, Tianjin, 300072, People's Republic of China.

出版信息

Ecotoxicol Environ Saf. 2020 Sep 15;201:110804. doi: 10.1016/j.ecoenv.2020.110804. Epub 2020 Jun 5.

DOI:10.1016/j.ecoenv.2020.110804
PMID:32502907
Abstract

Phenanthrene (PHE) is harmful to human health and is difficult to be eliminated from environment. In this study, an aerobic bacterium capable of use PHE as a sole carbon source and energy was isolated and classified as Klebsiella sp. PD3 according to 16S rDNA analysis. The degradation efficiency of PHE reached to about 78.6% after 12 days of incubation with strain PD3. Identification of metabolites formed during PHE degradation process by this strain was carried out by GC-MS. The first degradation step of PHE by PD3 was proposed to generate 1-hydroxy-2-naphthoic acid. Two subsequent different routes for the metabolism of 1-hydroxy-2-naphthoic acid were proposed. Strain PD3 also showed two plant growth promoting properties like phosphate solubilization and ACC deaminase activity. Inoculation with Klebsiella sp. PD3 significantly improved growth performance, biomass production, seed germination rate, photosynthetic capacity, antioxidant levels, relative water content and chlorophyll accumulation in rice (Oryza sativa L.) plants under PHE stress conditions in comparison with non-inoculation treatment. Moreover, PD3-inoculated rice showed lower ROS accumulation, ethylene production, ACC content, ACC oxidase activity and electrolyte leakage under PHE treatment compared to non-inoculated ones. The combination use of rice plants and strain PD3 was also shown to enhance the removal efficiency of PHE from the soil and decline the PHE accumulation in plants. Synergistic use of plants and bacteria with PHE degradation ability and PGPR attributes to remediate the PHE-contaminated soil will be an important and effective way in the phytoremediation of PHE-contaminated soils.

摘要

菲(PHE)对人体健康有害,且难以从环境中消除。本研究从环境中分离到一株能以 PHE 为唯一碳源和能源的好氧细菌,并根据 16S rDNA 分析将其分类为克雷伯氏菌(Klebsiella)sp. PD3。PD3 菌株在培养 12 天后,对 PHE 的降解效率达到约 78.6%。通过 GC-MS 鉴定了该菌在 PHE 降解过程中形成的代谢产物。提出 PD3 对 PHE 的第一步降解生成 1-羟基-2-萘甲酸。提出了两条随后的 1-羟基-2-萘甲酸代谢途径。PD3 菌株还表现出两种植物促生特性,即溶磷和解氨酶活性。与非接种处理相比,在 PHE 胁迫条件下,接种克雷伯氏菌(Klebsiella)sp. PD3 可显著提高水稻(Oryza sativa L.)的生长性能、生物量生产、种子发芽率、光合能力、抗氧化水平、相对含水量和叶绿素积累。此外,与非接种处理相比,PD3 接种的水稻在 PHE 处理下表现出较低的 ROS 积累、乙烯生成、ACC 含量、ACC 氧化酶活性和电解质泄漏。水稻植物与 PD3 菌株的联合使用也显示出从土壤中提高 PHE 的去除效率,并降低植物中 PHE 的积累。具有 PHE 降解能力和 PGPR 特性的植物和细菌的协同使用,将是修复 PHE 污染土壤的重要和有效途径,可用于 PHE 污染土壤的植物修复。

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