Metagenomic and proteomic insights into the self‐adaptive cell surface hydrophobicity of Sphingomonas sp. strain PAH02 reducing the migration of cadmium‐phenanthrene co‐pollutant in rice

Author:

Yi Shengwei123,Zhu Zhongnan123,Li Feng123ORCID,Zhu Lizhong4,Wu Chen123,Ge Fei123,Ji Xionghui5,Tian Jiang123

Affiliation:

1. College of Environment and Resources Xiangtan University Xiangtan China

2. Hunan Provincial University Key Laboratory for Environmental and Ecological Health Xiangtan University Xiangtan China

3. Hunan Provincial University Key Laboratory for Environmental Behavior and Control Principle of New Pollutants Xiangtan University Xiangtan China

4. College of Environmental and Resource Sciences Zhejiang University Hangzhou China

5. Hunan Institute of Agro‐Environment and Ecology Hunan Academy of Agricultural Sciences Changsha China

Abstract

AbstractCell surface hydrophobicity (CSH) dominates the interactions between rhizobacteria and pollutants at the soil‐water interface, which is critical for understanding the dissipation of pollutants in the rhizosphere microzone of rice. Herein, we explored the effects of self‐adaptive CSH of Sphingomonas sp. strain PAH02 on the translocation and biotransformation behaviour of cadmium‐phenanthrene (Cd‐Phe) co‐pollutant in rice and rhizosphere microbiome. We evidenced that strain PAH02 reduced the adsorption of Cd‐Phe co‐pollutant on the rice root surface while enhancing the degradation of Phe and adsorption of Cd via its self‐adaptive CSH in the hydroponic experiment. The significant upregulation of key protein expression levels such as MerR, ARHDs and enoyl‐CoA hydratase/isomerase, ensures self‐adaptive CSH to cope with the stress of Cd‐Phe co‐pollutant. Consistently, the bioaugmentation of strain PAH02 promoted the formation of core microbiota in the rhizosphere soil of rice (Oryza sativa L.), such as Bradyrhizobium and Streptomyces and induced gene enrichment of CusA and PobA that are strongly associated with pollutant transformation. Consequently, the contents of Cd and Phe in rice grains at maturity decreased by 17.2% ± 0.2% and 65.7% ± 0.3%, respectively, after the bioaugmentation of strain PAH02. These findings present new opportunities for the implementation of rhizosphere bioremediation strategies of co‐contaminants in paddy fields.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Hunan Province

Publisher

Wiley

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