| [1] |
WU J, DUAN D, LU J, et al.. Inorganic pollution around the Qinghai-Xizang Plateau: an overview of the current observations[J]. Sci. Total Environ., 2016, 550: 628-636.
|
| [2] |
SUHANI I, SAHAB S, SRIVASTAVA V, et al.. Impact of cadmium pollution on food safety and human health[J]. Curr. Opin. Toxicol., 2021, 27: 1-7.
|
| [3] |
PEERA S K P G, KHANAM R, DAS S, et al.. A state-of-the-art review on cadmium uptake, toxicity, and tolerance in rice: from physiological response to remediation process[J/OL]. Environ. Res., 2023, 220: 115098[2026-05-15]. .
|
| [4] |
MA Y, WANG L, CAO Y, et al.. Stabilization and remediation of heavy metal-contaminated soils in China: insights from a decade-long national survey[J]. Environ. Sci. Pollut. Res., 2022, 29(26): 39077-39087.
|
| [5] |
GEORGE S E, WAN Y. Microbial functionalities and immobilization of environmental lead: biogeochemical and molecular mechanisms and implications for bioremediation[J/OL]. J. Hazard. Mater., 2023, 457: 131738[2026-05-15]. .
|
| [6] |
ZHANG L, ZHANG J, ZHOU R, et al.. β-tricalcium phosphate enhanced biomineralization of Cd2+ and Pb2+ by Sporosarcina ureilytica HJ1 and Sporosarcina pasteurii HJ2[J/OL]. J. Hazard. Mater., 2024, 474: 134624.
|
| [7] |
HAN L J, LI J S, CHEN Z, et al.. Stabilization of Pb(Ⅱ) in wastewater and tailings by commercial bacteria through microbially induced phosphate precipitation (MIPP)[J/OL]. Sci. Total Environ., 2023, 868: 161628[2026-05-15]. .
|
| [8] |
HE N, HU L, JIANG C, et al.. Remediation of chromium, zinc, arsenic, lead and antimony contaminated acidic mine soil based on Phanerochaete chrysosporium induced phosphate precipitation[J/OL]. Sci. Total Environ., 2022, 850: 157995[2026-05-15]. .
|
| [9] |
ZENG G, DAI J, JIAN J, et al.. The effect of phosphate solubilizing bacteria on the fate of cadmium immobilized by microbial induced phosphate precipitation[J/OL]. J. Environ. Manag., 2025, 380: 125125[2026-05-15]. .
|
| [10] |
宋宇,陈玉洁,陈凯斌,等.不同胶结液驱动解磷微生物固化/稳定化重金属污染土力学特性研究[J].工程地质学报,2025,33(6):2095-2107.
|
|
SONG Y, CHEN Y J, CHEN K B, et al.. Study on the mechanical properties of heavy metal contaminated soil solidified/stabilized by phosphate-solubilizing microorganisms driven by different cementing fluids[J]. J. Eng. Geol., 2025, 33(6): 2095-2107.
|
| [11] |
GLICK B R. Using soil bacteria to facilitate phytoremediation[J]. Biotechnol. Adv., 2010, 28(3): 367-374.
|
| [12] |
MA X, LUO Z, YU Y, et al.. Insight into mineral-microbe interaction on cadmium immobilization via microbially induced phosphate precipitation with various phosphate minerals[J/OL]. J. Hazard. Mater., 2025, 498: 139854[2026-05-15]. .
|
| [13] |
ZENG G, QIAO S, WANG X, et al.. Immobilization of cadmium by Burkholderia sp. QY14 through modified microbially induced phosphate precipitation[J/OL]. J. Hazard. Mater., 2021, 412: 125156[2026-05-15]. .
|
| [14] |
李雪涛,许永利.解磷菌的筛选鉴定及其促生效果研究[J].农业与技术,2024,44(24):108-112.
|
|
LI X T, XU Y L. Screening and identification of phosphate-solubilizing bacteria and its growth-promoting effect[J]. Agric. Technol., 2024, 44(24): 108-112.
|
| [15] |
QIN S, ZHANG H, HE Y, et al.. Improving radish phosphorus utilization efficiency and inhibiting Cd and Pb uptake by using heavy metal-immobilizing and phosphate-solubilizing bacteria[J/OL]. Sci. Total Environ., 2023, 868: 161685.
|
| [16] |
DUAN T, ZHANG J, WANG Z. Responses and indicators of composition, diversity, and productivity of plant communities at different levels of disturbance in a wetland ecosystem[J/OL]. Diversity, 2021, 13(6): 252[2026-05-15]. .
|
| [17] |
ZHANG W, WANG Q, WU Q, et al.. The response of soil Olsen-P to the P budgets of three typical cropland soil types under long-term fertilization[J/OL]. PLoS One, 2020, 15(3): e0230178[2026-05-15]. .
|
| [18] |
USMONKULOVA A, MALUSA E, KADIROVA G, et al.. Ni2+ and Cd2+ biosorption capacity and redox-mediated toxicity reduction in bacterial strains from highly contaminated soils of Uzbekistan[J/OL]. Microorganisms, 2025, 13(7): 1485[2026-05-15]. .
|
| [19] |
XU D, SHEN Z, DOU C, et al.. Effects of soil properties on heavy metal bioavailability and accumulation in crop grains under different farmland use patterns[J/OL]. Sci. Rep., 2022, 12: 9211[2026-05-15]. .
|
| [20] |
BRINZA L, GERAKI K, MATAMOROS-VELOZA A, et al.. The Irish kelp, Fucus vesiculosus, a highly potential green bio sorbent for Cd (Ⅱ) removal: mechanism, quantitative and qualitative approaches[J/OL]. J. Clean. Prod., 2021, 327: 129422[2026-05-15]. .
|
| [21] |
CABESTRERO Ó, TEBES-CAYO C, HINMAN N W, et al.. Mineral paragenesis precipitating in salt flat pools of continental environments replicated in microbial mat microcosms without evaporation[J/OL]. Minerals, 2022, 12(5): 646[2026-05-15]. .
|
| [22] |
YUAN J, LU W. Adsorption of Cr(Ⅵ) from aqueous solutions using inorganic clays modified magnetic chitosan adsorbent: kinetic and thermodynamic study[J/OL]. Desalin. Water Treat., 2024, 319: 100442[2026-05-15]. .
|
| [23] |
ZENG W, ZHANG S, XIA M, et al.. Insights into the production of extracellular polymeric substances of Cupriavidus pauculus1490 under the stimulation of heavy metal ions[J]. RSC Adv., 2020, 10(34): 20385-20394.
|
| [24] |
XING Y, LUO X, LIU S, et al.. Synergistic effect of biofilm growth and cadmium adsorption via compositional changes of extracellular matrix in montmorillonite system[J/OL]. Bioresour. Technol., 2020, 315: 123742[2026-05-15]. .
|
| [25] |
LIU F, HAN X, WANG Z, et al.. Extracellular polymeric substances protect Chlorella sp. against the cadmium stress[J/OL]. Ecologies, 2025, 6(4): 65[2026-05-15]. .
|
| [26] |
GARCIA-SANCHEZ M, BERTRAND I, BARAKAT A, et al.. Improved rock phosphate dissolution from organic acids is driven by nitrate assimilation of bacteria isolated from nitrate and CaCO3-rich soil[J/OL]. PLoS One, 2023, 18(3): e0283437[2026-05-15]. .
|
| [27] |
XIAO S S, WEN J Y, QI Z, et al.. Isolation, identification and phosphate solubilization analysis of phosphate-solubilizing bacteria derived from Pinus sylvestris var. mongolica rhizosphere soil[J]. Chin. Agric. Sci.. Bull., 2020, 36(32): 76-81.
|
| [28] |
MA Y, LIU Y, WANG D, et al.. The impacts of different nitrogen forms on fungal weathering of carbonate and insoluble phosphate in the karst red soil[J/OL]. Environ. Technol. Innov., 2026, 41: 104719[2026-05-15]. .
|
| [29] |
DESALEGN Y M, BEKELE E A, OLU F E. Optimization of Cd(Ⅱ) removal from aqueous solution by natural hydroxyapatite/bentonite composite using response surface methodology[J/OL]. Sci. Rep., 2023, 13: 5158[2026-05-15]. .
|
| [30] |
CUI D, TAN C, DENG H, et al.. Biosorption mechanism of aqueous Pb2+, Cd2+, and Ni2+ ions on extracellular polymeric substances (EPS)[J/OL]. Archaea, 2020, 2020(1): 8891543[2026-05-15]. .
|
| [31] |
LAI W, WU Y, ZHANG C, et al.. Combination of biochar and phosphorus solubilizing bacteria to improve the stable form of toxic metal minerals and microbial abundance in lead/cadmium-contaminated soil[J/OL]. Agronomy, 2022, 12(5): 1003[2026-05-15]. .
|
| [32] |
ZHANG K, XUE Y, ZHANG J, et al.. Removal of lead from acidic wastewater by bio-mineralized bacteria with pH self-regulation[J/OL]. Chemosphere, 2020, 241: 125041[2026-05-15]. .
|
| [33] |
郭梅,韩昕,卢育霞,等.镉污染对黄土物理化学及力学性质的影响[J].地质科技通报,2025,44(3):353-362.
|
|
GUO M, HAN X, LU Y X, et al.. Effects of cadmium on physical-chemical and mechanical properties of loess[J]. Bull. Geol. Sci. Technol., 2025, 44(3): 353-362.
|
| [34] |
SHENG M, LIU Y, ZENG G, et al.. For aqueous/soil cadmium immobilization under acid attack, does the hydroxyapatite converted from Pseudochrobactrum sp. DL-1 induced vaterite necessarily show higher stability?[J/OL]. J. Hazard. Mater., 2024, 478: 135631[2026-05-15]. .
|
| [35] |
WANG Q, DUAN C J, XU C Y, et al.. Efficient removal of Cd(Ⅱ) by phosphate-modified biochars derived from apple tree branches: processes, mechanisms, and application[J/OL]. Sci. Total Environ., 2022, 819: 152876[2026-05-15]. .
|
| [36] |
WANG S, LI Y, ZHANG J, et al.. Transcriptome profiling analysis of phosphate-solubilizing mechanism of Pseudomonas strain W134[J/OL]. Microorganisms, 2022, 10(10): 1998[2026-05-15]. .
|
| [37] |
KOUBA V, BACHMANNOVá C, PODZIMEK T, et al.. Physiology of anammox adaptation to low temperatures and promising biomarkers: a review[J/OL]. Bioresour. Technol., 2022, 349: 126847[2026-04-11]. .
|
| [38] |
ZHANG X, LIU W, LIU J, et al.. Isolation and growth-promoting mechanisms of phosphate-solubilizing bacteria from Qinghai-Xizang Plateau in Lespedeza bicolor Turcz[J/OL]. Front. Microbiol., 2025, 16: 1669774[2026-05-15]. .
|
| [39] |
ZULUAGA M Y A, DE OLIVEIRA A L M, VALENTINUZZI F, et al.. An insight into the role of the organic acids produced by Enterobacter sp. strain 15S in solubilizing tricalcium phosphate: in situ study on cucumber[J/OL]. BMC Microbiol., 2023, 23: 184[2026-05-15]. .
|
| [40] |
HUANG H, WANG K, LI S, et al.. Different survival strategies of the phosphate-mineralizing bacterium Enterobacter sp. PMB-5 in response to cadmium stress: biomineralization, biosorption, and bioaccumulation[J/OL]. J. Hazard. Mater., 2024, 465: 133284[2026-05-15]. .
|
| [41] |
YANG X, YUE S, WU Z, et al. Identification of the Pst system of phosphate solubilizing bacteria Pseudomonas sp.wj1 and functional analysis of pstS gene[J]. J. China Agric. Univ., 2018, 23(6): 40-48.
|
| [42] |
DE LACERDA J R M, SILVA T FDA, VOLLÚ R E, et al.. Generally recognized as safe (GRAS) Lactococcus lactis strains associated with Lippia sidoides Cham. are able to solubilize/mineralize phosphate[J/OL]. SpringerPlus, 2016, 5(1): 828[2026-05-15]. .
|
| [43] |
YANG S, DENG W, LIU S, et al.. Presence of heavy metal resistance genes in Escherichia coli and Salmonella isolates and analysis of resistance gene structure in E. coli E308[J]. J. Glob. Antimicrob. Resist., 2020, 21: 420-426.
|
| [44] |
KWON E H, ADHIKARI A, IMRAN M, et al.. Novel melatonin-producing Bacillus safensis EH143 mitigates salt and cadmium stress in soybean[J/OL]. J. Pineal Res., 2024, 76(4): e12957[2026-05-15]. .
|