Current Biotechnology ›› 2026, Vol. 16 ›› Issue (4): 968-978.DOI: 10.19586/j.2095-2341.2026.0074

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Isolation of Phosphate-solubilizing Bacteria from Alpine Mining Soil and Evaluation of Their Cadmium Immobilization Capacity

Mingzhen HAN1,2(), Qinghai LIU1(), Bin WU2(), Junqi HU2, Cheng QIU1, Chongshuang PAN1   

  1. 1.Key Laboratory of Agricultural Product Quality and Safety of the Xizang Autonomous Region,Institute of Agricultural Quality Standard and Testing,Xizang Academy of Agricultural and Animal Husbandry Sciences,Lhasa 850032,China
    2.State Key Laboratory of Geohazard Prevention and Geoenvironment Protection,College of Ecology and Environment,Chengdu University of Technology,Chengdu 610059,China
  • Received:2026-03-23 Accepted:2026-06-01 Online:2026-07-25 Published:2026-09-11
  • Contact: Bin WU

Abstract:

Phosphate-solubilizing bacteria-mediated biomineralization has great potential for heavy metal remediation, yet its application efficiency and underlying mechanisms in fragile alpine ecosystems remain poorly understood. A cold-tolerant phosphate-solubilizing strain Serratia quinivorans SH was isolated from an alpine tailings reservoir, and its phosphorus-solubilizing capacity, cadmium (Cd) tolerance and Cd immobilization mechanism under low-temperature conditions were systematically explored. The results showed that the maximum net soluble phosphorus concentration of strain SH reached 210.6 mg·L-1 under low temperature, and the strain exhibited prominent tolerance to Cd stress at 5~40 mg·L-1. Furthermore, the net soluble phosphorus concentration ranged from 187.2 to 210.6 mg at 5~15 ℃, with the optimal pH of 7~8 and optimal C/N ratio of 20∶1. Adsorption-precipitation experiments revealed that the maximum net Cd adsorption rate and net precipitation rate of strain SH were 83.3% and 35%, respectively. Characterizations via scanning electron microscopy-energy dispersive X-ray spectroscopy (SEM-EDS) verified that strain SH transformed Cd into stable phosphate precipitates. Whole-genome sequencing analysis further identified functional genes involved in phosphorus solubilization and heavy metal resistance. The results showed that the cold-resistant phosphate-solubilizing strain Serratia quinivorans SH possesses low-temperature phosphorus-solubilizing ability and Cd biomineralization capacity, which can provide strain resources and theoretical support for the remediation of heavy metal pollution in alpine tailings.

Key words: phosphate-solubilizing bacteria, alpine tailings, cadmium contamination, biomineralization

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