一株解磷细菌去除溶液镉铅与促进作物生长的效应与机制*
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1.云南农业大学资源与环境学院;2.中国科学院南京土壤研究所

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云南省自然科学基金项目(202401AS070087)、国家自然科学基金项目(42267002)和兰坪铅锌矿区重金属污染与生态修复云南省野外科学观测研究站项目(2025AM340006)


Mechanism of a Cadmium-Lead Tolerant Phosphorus-Solubilizing Bacterium, Bacillus sp. PSB32, in Metal Removal and Plant Growth Promotion in Contaminated Systems
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1.College of Resources and Environment,Yunnan Agricultral University;2.Istitute of Soil Science,Chinese Academy of Science

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the Natural Science Foundation of Yunnan (No.202401AS070087), the National Natural Science Foundation of China (No.42267002) and Heavy Metal Pollution and Ecological Restoration in Lanping Lead-Zinc Mining Area, Observation and Research Station of Yunnan Pronvince(No.2025AM340006).

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    摘要:

    解磷细菌(Phosphorus solubilizing bacteria, PSB)普遍存在于重金属污染土壤中,但关于PSB对土壤重金属及作物生长的影响仍了解有限。采用一株分离自云南高原玉米根际耐受镉(Cd)、铅(Pb)的解磷细菌—芽孢杆菌(Bacillus.sp)PSB32,研究其对溶液中Cd、Pb的去除、污染土壤中玉米(Zea Mays. L)生长的影响及机制。溶液Cd和Pb胁迫下,PSB32对溶液中Cd去除以胞内累积和表面沉淀(分别占Cd总去除量的43.7%和43.2%)为主,胞外吸附为辅(占Cd总去除量的13.0%);对溶液中Pb的去除以表面吸附(占总Pb去除量的53.2%)为主,表面沉淀和胞内累积为辅(分别占总Pb去除量的28.8%和18.0%)。扫描电镜分析发现,溶液Cd和Pb胁迫下PSB32菌体表面形成颗粒状沉积物,X射线衍射鉴定菌体表面的沉淀物为Cd3(PO4)2、Pb5(PO4)3Cl和Pb5(PO4)3OH;傅里叶红外光谱分析发现,-COOH、-OH、-NH2等官能团和PO43-、SO42-等阴离子基团参与菌体对溶液中Cd和Pb的表面络合;盆栽试验中,PSB32导致不同污染程度土壤(污染农田、尾矿、矿渣)残渣态Cd比例提高5.90%~9.43%,可还原态Pb比例降低7.2%~18.8%;有效磷含量增加3.00%~18.7%;促进玉米生物量增加25.7%~82.2%,污染农田和尾矿土壤中玉米茎叶Cd含量增加61.90%和32.91%,矿渣上玉米根系Cd、Pb含量显著增加365%和35.3%。总之,这株解磷细菌具有生物去除溶液镉铅,增加土壤Cd有效性及增强植物耐性的生态功能,可为重金属污染土壤的生物修复提供潜在菌种资源。

    Abstract:

    【Objective】Phosphorus-solubilizing bacteria (PSB) are ubiquitous in heavy metal-contaminated soils; however, their impacts on soil heavy metals and crop growth remain inadequately understood. 【Method】This study investigated the mechanisms and efficacy of Bacillus sp. PSB32, a Cd- and Pb-tolerant PSB strain isolated from the maize rhizosphere in the Yunnan Plateau, in removing aqueous Cd and Pb and influencing maize (Zea mays L.) growth in contaminated soils.【Result】Under Cd and Pb stress, strain PSB32 primarily removed Cd via intracellular accumulation(43.7%) and surface precipitation(43.2%), with biosorption playing a secondary role (13.0%). In contrast, Pb removal was dominated by surface adsorption (53.2%), followed by surface precipitation (28.8%) and intracellular accumulation (18.0%). Scanning electron microscopy (SEM) revealed the formation of granular precipitates on the bacterial cell surface, which were identified by X-ray diffraction (XRD) as Cd?(PO?)?, Pb?(PO?)?Cl (Pyromorphite), and Pb?(PO?)?OH. Fourier transform infrared (FTIR) spectroscopy confirmed the involvement of functional groups (e.g., -COOH, -OH, -NH?) and anionic groups (e.g., PO?3?, SO?2?) in the surface complexation of Cd and Pb. In the pot experiments, the amendment of PSB32 across the three differentially contaminated soils (contaminated farmland, tailings, and slag) led to a consistent increase of 5.90%~9.43% in the residual fraction of Cd, alongside a decrease of 7.20%~18.8% in the reducible fraction of Pb. Concurrently, the soil available phosphorus content was enhanced by 3.00%~18.7%, which contributed to a substantial promotion of maize biomass, ranging from 25.7% to 82.2%. Notably, PSB32 also increased the Cd content in maize shoots by 61.9% and 32.9% in the farmland and tailings soils, respectively, and significantly enhanced the accumulation of Cd and Pb in the roots by 365% and 35.3% in the slag soil.【Conclusion】In conclusion, Bacillus sp. PSB32 demonstrates a dual ecological function: effectively removing aqueous Cd and Pb through multiple mechanisms, and enhancing plant tolerance in contaminated soils by altering metal speciation and improving phosphorus nutrition. This strain presents a promising microbial resource for the bioremediation of heavy metal-contaminated soils.

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傅丽媛,李阳,刘梅静,李小艺,梁新然,何永美,吴龙华,湛方栋.一株解磷细菌去除溶液镉铅与促进作物生长的效应与机制*[J].土壤学报,,[待发表]
FU Liyuan, LIYang, LIU Meijing, LI Xiaoyi, LIANG Xinran, HE Yongmei, WU Longhua, ZHAN Fangdong. Mechanism of a Cadmium-Lead Tolerant Phosphorus-Solubilizing Bacterium, Bacillus sp. PSB32, in Metal Removal and Plant Growth Promotion in Contaminated Systems[J]. Acta Pedologica Sinica,,[In Press]

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  • 收稿日期:2025-08-03
  • 最后修改日期:2025-10-27
  • 录用日期:2025-12-07
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