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关于多功能微生物群落如何在低温下增强阿特拉津去除和磷吸收的代谢见解。

Metabolic insights into how multifunctional microbial consortium enhances atrazine removal and phosphorus uptake at low temperature.

作者信息

Han Siyue, Tao Yue, Zhao Longwei, Cui Yunhe, Zhang Ying

机构信息

School of Resources and Environment, Northeast Agricultural University, Harbin 150030, PR China.

School of Resources and Environment, Northeast Agricultural University, Harbin 150030, PR China.

出版信息

J Hazard Mater. 2024 Jan 5;461:132539. doi: 10.1016/j.jhazmat.2023.132539. Epub 2023 Sep 12.

DOI:10.1016/j.jhazmat.2023.132539
PMID:37717445
Abstract

Agricultural soils in the black soil region of northeast China often face negative stress due to low temperatures, pesticide contamination, and inadequate nutrient supply. In this study, a new cold-tolerant strain of Peribacillus simplex C1 (C1) was selectively isolated from atrazine contaminated soil. The artificially constructed microbial consortium (CPD) [C1, phosphorus-solubilizing bacterium Enterobacter sp. P1, and atrazine-degrading bacterium Acinetobacter lwoffii DNS32] demonstrated the most effective performance in enhancing atrazine degradation and phosphorus-solubilizing capacity when the initial inoculation ratio of 5:1:2 at 15 °C. CPD enhanced energy-related metabolic pathways and increased choline production to regulate bacterial adaptation to temperature decrease. Additionally, the strains could selectively utilize carbon sources (low molecular weight organic acids) or nitrogen sources (some metabolites of atrazine) provided by each other to enhance growth. Furthermore, strain C1 enhanced membrane fluidity through increased expression of the unsaturated fatty acids. Pot experiments demonstrated that CPD assisted soybean seedlings in resisting dual stresses of low temperature and atrazine contamination by inducing the expression of genes related to photosynthesis, membrane permeability, phosphorus response, and cold tolerance.

摘要

中国东北黑土区的农业土壤常因低温、农药污染和养分供应不足而面临负面压力。在本研究中,从莠去津污染土壤中选择性分离出一种新的耐冷简单芽孢杆菌菌株C1(C1)。人工构建的微生物群落(CPD)[C1、解磷细菌肠杆菌属P1和莠去津降解菌洛氏不动杆菌DNS32]在15℃下初始接种比例为5:1:2时,在提高莠去津降解和解磷能力方面表现出最有效的性能。CPD增强了与能量相关的代谢途径,并增加胆碱生成以调节细菌对温度降低的适应性。此外,这些菌株可以选择性地利用彼此提供的碳源(低分子量有机酸)或氮源(莠去津的一些代谢产物)来促进生长。此外,菌株C1通过增加不饱和脂肪酸的表达来增强膜流动性。盆栽试验表明,CPD通过诱导与光合作用、膜通透性、磷响应和耐冷性相关的基因表达,帮助大豆幼苗抵抗低温和莠去津污染的双重胁迫。

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