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具有分泌吲哚-3-乙酸和溶解无机磷功能的蜡状芽孢杆菌吸附铅的机制。

Mechanism of lead adsorption by a Bacillus cereus strain with indole-3-acetic acid secretion and inorganic phosphorus dissolution functions.

机构信息

Sericultural and Agri-Food Research Institute, Guangdong Academy of Agricultural Sciences, Guangzhou, 510610, China.

Key Laboratory of Urban Agriculture in South China, Ministry of Agriculture and Rural Affairs, GuangZhou, 510610, China.

出版信息

BMC Microbiol. 2023 Mar 4;23(1):57. doi: 10.1186/s12866-023-02795-z.

Abstract

BACKGROUND

Heavy metal pollution has become a major source of environmental pollution because of increasing industrialization. Microbial remediation is a promising approach to remediate lead-contaminated environments owing to its cost-effective, environment-friendly, ecologically sustainable, and highly efficient properties. In this study, the growth-promoting functions and lead-adsorption ability of Bacillus cereus SEM-15 were examined, and the functional mechanism of the strain was preliminarily identified using scanning electron microscopy, energy spectrum, infrared spectrum, and genome analyses, providing theoretical support for utilization of B. cereus SEM-15 in heavy metals remediation.

RESULTS

B. cereus SEM-15 showed strong ability to dissolve inorganic phosphorus and secrete indole-3-acetic acid. The lead adsorption efficiency of the strain at lead ion concentration of 150 mg/L was more than 93%. Single factor analysis revealed the optimal conditions for heavy metal adsorption by B. cereus SEM-15 (adsorption time, initial lead ion concentration, pH, and inoculum amount were 10 min, 50-150 mg/L, 6-7, and 5 g/L, respectively) in nutrient-free environment, with the lead adsorption rate reaching 96.58%. Scanning electron microscopy of B. cereus SEM-15 cells before and after lead adsorption showed adherence of a large number of granular precipitates to the cell surface after lead adsorption. X-Ray photoelectron spectroscopy and Fourier transform infrared spectroscopy results indicated the characteristic peaks of Pb-O, Pb-O-R (R = functional group), and Pb-S bonds after lead adsorption, and a shift in the characteristic peaks of bonds and groups related to C, N, and O. Genome annotation results showed the presence of genes related to heavy metals tolerance and plant growth promotion in B. cereus SEM-15, providing a molecular basis for the strain's heavy metals tolerance and plant growth promotion functions.

CONCLUSIONS

This study analyzed the lead adsorption characteristics of B. cereus SEM-15 and the associated influencing factors, and discussed the adsorption mechanism and related functional genes, providing a basis for clarifying the underlying molecular mechanism and offering a reference for further research on plant-microorganisms combined remediation of heavy metals polluted environments.

摘要

背景

随着工业化的发展,重金属污染已成为环境污染的主要来源。由于具有成本效益高、环境友好、生态可持续和高效等特点,微生物修复成为修复铅污染环境的一种很有前途的方法。本研究考察了蜡样芽孢杆菌 SEM-15 的促生长功能和铅吸附能力,并通过扫描电子显微镜、能谱、红外光谱和基因组分析初步确定了该菌株的功能机制,为蜡样芽孢杆菌 SEM-15 在重金属修复中的应用提供了理论支持。

结果

蜡样芽孢杆菌 SEM-15 具有较强的溶解无机磷和分泌吲哚-3-乙酸的能力。该菌株在铅离子浓度为 150mg/L 时的铅吸附效率超过 93%。单因素分析表明,在无营养环境中,蜡样芽孢杆菌 SEM-15 吸附重金属的最佳条件(吸附时间、初始铅离子浓度、pH 值和接种量分别为 10min、50-150mg/L、6-7 和 5g/L)下,铅吸附率达到 96.58%。蜡样芽孢杆菌 SEM-15 细胞在吸附前后的扫描电镜观察结果表明,吸附后细胞表面附着大量颗粒状沉淀物。X 射线光电子能谱和傅里叶变换红外光谱结果表明,吸附后出现 Pb-O、Pb-O-R(R=官能团)和 Pb-S 键的特征峰,以及与 C、N 和 O 相关的键和基团的特征峰发生位移。基因组注释结果表明,蜡样芽孢杆菌 SEM-15 中存在与重金属耐受和植物生长促进相关的基因,为该菌株的重金属耐受和植物生长促进功能提供了分子基础。

结论

本研究分析了蜡样芽孢杆菌 SEM-15 的铅吸附特性及其相关影响因素,探讨了吸附机制及相关功能基因,为阐明其潜在分子机制提供了依据,为进一步研究重金属污染环境中植物-微生物联合修复提供了参考。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3ca3/9985246/1b0f5e81c410/12866_2023_2795_Fig1_HTML.jpg

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