Cupriavidus B-7 immobilized biochar: an effective solution for Cd accumulation alleviation and growth promotion in pakchoi (Brassica Chinensis L.)

Yefang Sun, Da Ouyang, Yiming Cai, Ting Guo, Mei Li, Xinlin Zhao, Qichun Zhang, Ruihuan Chen, Fangzhen Li, Xiujuan Wen, Lu Xie, Haibo Zhang

Biochar ›› 2024, Vol. 6 ›› Issue (1) : 45. DOI: 10.1007/s42773-024-00333-2

Cupriavidus B-7 immobilized biochar: an effective solution for Cd accumulation alleviation and growth promotion in pakchoi (Brassica Chinensis L.)

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Abstract

Cd contamination, especially in farmland soil, can pose serious threats to human health as well as ecological security. Stabilization is an important strategy for agricultural soil Cd remediation. In this study, a Cd-resistant strain (Cupriavidus B-7) was isolated and loaded onto cow manure (CDB), rice straw (RSB) and pine wood biochar (PB) to investigate its effects on Cd stabilization by a 60-day pot experiment. Results indicated that the Cupriavidus B-7-loaded biochar (labelled as CDBB, PBB and RSBB) reduced the CaCl2-extractable Cd by 43.06–59.78%, which was significantly superior to individual applications of Cupriavidus B-7 and biochar. Likewise, the soil physicochemical properties, urease, catalase and phosphatase activities were improved, indicating improved soil health. Consequently, dry weights of pakchoi’s shoot and root were increased by 938.9–1230.9% and 149.1–281.2%, respectively, by applying CDBB, PBB and RSBB. Meanwhile, the Cd accumulation in pakchoi shoots decreased by 38.06–50.75%. Notably, the RSBB exhibited an optimal performance on pakchoi growth promotion and Cd accumulation alleviation. The structural equation model indicated the synergistic effect on pakchoi growth promotion and Cd accumulation decreased between biochar and Cupriavidus B-7. Our research provides some new insights into the development of strategies for green and sustainable remediation of Cd-contaminated soil.

Highlights

A Cd resistant Cupriavidus B-7 (B-7) was isolated from copper mining soil

Biochar, B-7 and their conbination were used to remediate Cd polluted soil

Biochar loaded B-7 outperformed individual treatments for Cd stabilization

Biochar loaded B-7 alleivated the Cd uptake and promoted pakchoi growth

Keywords

Biochar loaded bacteria / Bioremediation / Bioavailability / Cadmium / Uptake

Cite this article

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Yefang Sun, Da Ouyang, Yiming Cai, Ting Guo, Mei Li, Xinlin Zhao, Qichun Zhang, Ruihuan Chen, Fangzhen Li, Xiujuan Wen, Lu Xie, Haibo Zhang. Cupriavidus B-7 immobilized biochar: an effective solution for Cd accumulation alleviation and growth promotion in pakchoi (Brassica Chinensis L.). Biochar, 2024, 6(1): 45 https://doi.org/10.1007/s42773-024-00333-2

References

[1]
Ali A, Guo D, Jeyasundar PGSA, Li Y, Xiao R, Du J, et al.. Application of wood biochar in polluted soils stabilized the toxic metals and enhanced wheat (Triticum aestivum) growth and soil enzymatic activity. Ecotoxicol Environ Saf, 2019, 184,
CrossRef Google scholar
[2]
Bharti V, Vikrant K, Goswami M, Tiwari H, Sonwani RK, Lee J, et al.. Biodegradation of methylene blue dye in a batch and continuous mode using biochar as packing media. Environ Res, 2019, 171: 356-364,
CrossRef Google scholar
[3]
Chen WM, Wu CH, James EK, Chang JS. Metal biosorption capability of Cupriavidus taiwanensis and its effects on heavy metal removal by nodulated Mimosa pudica. J Hazard Mater, 2008, 151: 364-371,
CrossRef Google scholar
[4]
Chen HM, Min FF, Hu X, Ma DH, Huo ZL. Biochar assists phosphate solubilizing bacteria to resist combined Pb and Cd stress by promoting acid secretion and extracellular electron transfer. J Hazard Mater, 2023, 452,
CrossRef Google scholar
[5]
Chi Y, Huang Y, Wang J, Chen X, Chu S, Hayat K, et al.. Two plant growth promoting bacterial Bacillus strains possess different mechanisms in adsorption and resistance to cadmium. Sci Total Environ, 2020, 741,
CrossRef Google scholar
[6]
Cui L, Noerpel MR, Scheckel KG, Ippolito JA. Wheat straw biochar reduces environmental cadmium bioavailability. Environ Int, 2019, 126: 69-75,
CrossRef Google scholar
[7]
El-Naggar A, Lee SS, Rinklebe J, Farooq M, Song H, Sarmah AK, et al.. Biochar application to low fertility soils: a review of current status, and future prospects. Geoderma, 2019, 337: 536-554,
CrossRef Google scholar
[8]
Gao Y, Mao L, Miao CY, Zhou P, Cao JJ, Zhi YE, et al.. Spatial characteristics of soil enzyme activities and microbial community structure under different land uses in Chongming Island, China: geostatistical modelling and PCR-RAPD method. Sci Total Environ, 2010, 408: 3251-3260,
CrossRef Google scholar
[9]
Huang Y, Chen J, Zhang D, Fang B, YangJin T, Zou J, et al.. Enhanced vacuole compartmentalization of cadmium in root cells contributes to glutathione-induced reduction of cadmium translocation from roots to shoots in pakchoi (Brassica chinensis L.). Ecotoxicol Environ Saf, 2021, 208: 111616,
CrossRef Google scholar
[10]
Ji X, Wan J, Wang X, Peng C, Wang G, Liang W, et al.. Mixed bacteria-loaded biochar for the immobilization of arsenic, lead, and cadmium in a polluted soil system: Effects and mechanisms. Sci Total Environ, 2022, 811,
CrossRef Google scholar
[11]
Jiang C, Sun H, Sun T, Zhang Q, Zhang Y. Immobilization of cadmium in soils by UV-mutated Bacillus subtilis 38 bioaugmentation and NovoGro amendment. J Hazard Mater, 2009, 167: 1170-1177,
CrossRef Google scholar
[12]
Li X, Meng D, Li J, Yin H, Liu H, Liu X, et al.. Response of soil microbial communities and microbial interactions to long-term heavy metal contamination. Environ Pollut, 2017, 231: 908-917,
CrossRef Google scholar
[13]
Li F, Zheng Y, Tian J, Ge F, Liu X, Tang Y, et al.. Cupriavidus sp. strain Cd02-mediated pH increase favoring bioprecipitation of Cd2+ in medium and reduction of cadmium bioavailability in paddy soil. Ecotoxicol Environ Saf, 2019, 184: 109655,
CrossRef Google scholar
[14]
Li S, Chen S, Wang M, Lei X, Zheng H, Sun X, et al.. Redistribution of iron oxides in aggregates induced by pe + pH variation alters Cd availability in paddy soils. Sci Total Environ, 2021, 752,
CrossRef Google scholar
[15]
Li W, Chen Y, Wang T. Cadmium biosorption by lactic acid bacteria Weissella viridescens ZY-6. Food Control, 2021, 123,
CrossRef Google scholar
[16]
Liu B, Ai S, Zhang W, Huang D, Zhang Y. Assessment of the bioavailability, bioaccessibility and transfer of heavy metals in the soil-grain-human systems near a mining and smelting area in NW China. Sci Total Environ, 2017, 609: 822-829,
CrossRef Google scholar
[17]
Liu Y, Tie B, Li Y, Lei M, Wei X, Liu X, et al.. Inoculation of soil with cadmium-resistant bacterium Delftia sp. B9 reduces cadmium accumulation in rice (Oryza sativa L.) grains. Ecotoxicol Environ Saf, 2018, 163: 223-229,
CrossRef Google scholar
[18]
Liu Y, Tie B, Peng O, Luo H, Li D, Liu S, et al.. Inoculation of Cd-contaminated paddy soil with biochar-supported microbial cell composite: a novel approach to reducing cadmium accumulation in rice grains. Chemosphere, 2020, 247,
CrossRef Google scholar
[19]
Ma H, Wei M, Wang Z, Hou S, Li X, Xu H. Bioremediation of cadmium polluted soil using a novel cadmium immobilizing plant growth promotion strain Bacillus sp. TZ5 loaded on biochar. J Hazard Mater, 2020, 388: 122065,
CrossRef Google scholar
[20]
Ma Q, Zhao W, Guan D, Teng HH, Ji J, Ma LQ. Comparing CaCl2, EDTA and DGT methods to predict Cd and Ni accumulation in rice grains from contaminated soils. Environ Pollut, 2020, 260,
CrossRef Google scholar
[21]
Manasi RV, Santhana Krishna Kumar A, Rajesh N. Biosorption of cadmium using a novel bacterium isolated from an electronic industry effluent. Chem Eng J, 2014, 235: 176-185,
CrossRef Google scholar
[22]
Nie C, Yang X, Niazi NK, Xu X, Wen Y, Rinklebe J, et al.. Impact of sugarcane bagasse-derived biochar on heavy metal availability and microbial activity: a field study. Chemosphere, 2018, 200: 274-282,
CrossRef Google scholar
[23]
O’Connor D, Peng T, Zhang J, Tsang DCW, Alessi DS, Shen Z, et al.. Biochar application for the remediation of heavy metal polluted land: a review of in situ field trials. Sci Total Environ, 2018, 619–620: 815-826,
CrossRef Google scholar
[24]
Oh SE, Hassan SHA, Joo JH. Biosorption of heavy metals by lyophilized cells of Pseudomonas stutzeri. World J Microb Biot, 2009, 25: 1771-1778,
CrossRef Google scholar
[25]
Ouyang D, Chen Y, Yan JC, Qian LB, Han L, Chen M. Activation mechanism of peroxymonosulfate by biochar for catalytic degradation of 1,4-dioxane: important role of biochar defect structures. Chem Eng J, 2019, 370: 614-624,
CrossRef Google scholar
[26]
Ouyang D, Wu R, Xu Z, Zhu X, Cai Y, Chen R, et al.. Efficient degradation of Bisphenol A by Fe3+/Fe2+ cycle activating persulfate with the assistance of biochar-supported MoO2. Chem Eng J, 2023, 455,
CrossRef Google scholar
[27]
Qi X, Gou J, Chen X, Xiao S, Ali I, Shang R, et al.. Application of mixed bacteria-loaded biochar to enhance uranium and cadmium immobilization in a co-contaminated soil. J Hazard Mater, 2021, 401,
CrossRef Google scholar
[28]
Qi WY, Chen H, Wang Z, Xing SF, Song C, Yan Z, et al.. Biochar-immobilized Bacillus megaterium enhances Cd immobilization in soil and promotes Brassica chinensis growth. J Hazard Mater, 2023, 458,
CrossRef Google scholar
[29]
Qin C, Yuan X, Xiong T, Tan YZ, Wang H. Physicochemical properties, metal availability and bacterial community structure in heavy metal-polluted soil remediated by montmorillonite-based amendments. Chemosphere, 2020, 261,
CrossRef Google scholar
[30]
Qing X, Yutong Z, Shenggao L. Assessment of heavy metal pollution and human health risk in urban soils of steel industrial city (Anshan), Liaoning, Northeast China. Ecotoxicol Environ Saf, 2015, 120: 377-385,
CrossRef Google scholar
[31]
Qiu B, Tao X, Wang H, Li W, Ding X, Chu H. Biochar as a low-cost adsorbent for aqueous heavy metal removal: a review. J Anal Appl Pyrol, 2021, 155,
CrossRef Google scholar
[32]
Quilliam RS, Glanville HC, Wade SC, Jones DL. Life in the ‘charosphere’—does biochar in agricultural soil provide a significant habitat for microorganisms?. Soil Biol Biochem, 2013, 65: 287-293,
CrossRef Google scholar
[33]
Rady MM, Hemida KA. Modulation of cadmium toxicity and enhancing cadmium tolerance in wheat seedlings by exogenous application of polyamines. Ecotoxicol Environ Saf, 2015, 119: 178-185,
CrossRef Google scholar
[34]
Sang Q, Shan X, An Y, Shu S, Sun J, Guo S. Proteomic analysis reveals the positive effect of exogenous spermidine in tomato seedlings’ response to high-temperature stress. Front Plant Sci, 2017, 8: 120,
CrossRef Google scholar
[35]
Shen Y, Li H, Zhu W, Ho SH, Yuan W, Chen J, et al.. Microalgal-biochar immobilized complex: a novel efficient biosorbent for cadmium removal from aqueous solution. Bioresource Technol, 2017, 244: 1031-1038,
CrossRef Google scholar
[36]
Shen Z, Jin F, O’Connor D, Hou D. Solidification/Stabilization for soil remediation: an old technology with new vitality. Environ Sci Technol, 2019, 53: 11615-11617,
CrossRef Google scholar
[37]
Shi Z, Zhang Z, Yuan M, Wang S, Yang M, Yao Q, et al.. Characterization of a high cadmium accumulating soil bacterium, Cupriavidus sp. WS2. Chemosphere, 2020, 247: 125834,
CrossRef Google scholar
[38]
Siripornadulsil S, Siripornadulsil W. Cadmium-tolerant bacteria reduce the uptake of cadmium in rice: potential for microbial bioremediation. Ecotoxicol Environ Saf, 2013, 94: 94-103,
CrossRef Google scholar
[39]
Song L, Niu X, Zhou B, Xiao Y, Zou H. Application of biochar-immobilized Bacillus sp. KSB7 to enhance the phytoremediation of PAHs and heavy metals in a coking plant. Chemosphere, 2022, 307: 136084,
CrossRef Google scholar
[40]
Teng Z, Shao W, Zhang K, Yu F, Huo Y, Li M. Enhanced passivation of lead with immobilized phosphate solubilizing bacteria beads loaded with biochar/ nanoscale zero valent iron composite. J Hazard Mater, 2020, 384,
CrossRef Google scholar
[41]
Tessier A, Campbell PGC, Bisson M. Sequential extraction procedure for the speciation of particulate trace metals. Anal Chem, 1979, 51: 844-851,
CrossRef Google scholar
[42]
Tu C, Wei J, Guan F, Liu Y, Sun Y, Luo Y. Biochar and bacteria inoculated biochar enhanced Cd and Cu immobilization and enzymatic activity in a polluted soil. Environ Int, 2020, 137,
CrossRef Google scholar
[43]
Wahla AQ, Anwar S, Mueller JA, Arslan M, Iqbal S. Immobilization of metribuzin degrading bacterial consortium MB3R on biochar enhances bioremediation of potato vegetated soil and restores bacterial community structure. J Hazard Mater, 2020, 390,
CrossRef Google scholar
[44]
Wang J, Shi L, Zhai L, Zhang H, Wang S, Zou J, et al.. Analysis of the long-term effectiveness of biochar immobilization remediation on heavy metal contaminated soil and the potential environmental factors weakening the remediation effect: a review. Ecotoxicol Environ Saf, 2021, 207,
CrossRef Google scholar
[45]
Wang X, Cai D, Ji M, Chen Z, Yao L, Han H. Isolation of heavy metal-immobilizing and plant growth-promoting bacteria and their potential in reducing Cd and Pb uptake in water spinach. Sci Total Environ, 2022, 819,
CrossRef Google scholar
[46]
Wei T, Li X, Li H, Gao H, Guo J, Li Y, et al.. The potential effectiveness of mixed bacteria-loaded biochar/activated carbon to remediate Cd, Pb co-contaminated soil and improve the performance of pakchoi plants. J Hazard Mater, 2022, 435,
CrossRef Google scholar
[47]
Wu C, Zhi D, Yao B, Zhou Y, Yang Y, Zhou Y. Immobilization of microbes on biochar for water and soil remediation: a review. Environ Res, 2022, 212,
CrossRef Google scholar
[48]
Yang T, Xu Y, Huang Q, Sun Y, Liang X, Wang L, et al.. An efficient biochar synthesized by iron-zinc modified corn straw for simultaneously immobilization Cd in acidic and alkaline soils. Environ Pollut, 2021, 291,
CrossRef Google scholar
[49]
Zeng P, Guo Z, Xiao X, Peng C, Feng W, Xin L, et al.. Phytoextraction potential of Pteris vittata L. co-planted with woody species for As, Cd, Pb and Zn in contaminated soil. Sci Total Environ, 2019, 650: 594-603,
CrossRef Google scholar
[50]
Zhang C, Li J, Wu X, Long Y, An H, Pan X, et al.. Rapid degradation of dimethomorph in polluted water and soil by Bacillus cereus WL08 immobilized on bamboo charcoal-sodium alginate. J Hazard Mater, 2020, 398,
CrossRef Google scholar
[51]
Zhang T, Li T, Zhou Z, Li Z, Zhang S, Wang G, et al.. Cadmium-resistant phosphate-solubilizing bacteria immobilized on phosphoric acid-ball milling modified biochar enhances soil cadmium passivation and phosphorus bioavailability. Sci Total Environ, 2023, 877,
CrossRef Google scholar
[52]
Zheng Y, Tang J, Liu C, Liu X, Luo Z, Zou D, et al.. Alleviation of metal stress in rape seedlings (Brassica napus L.) using the antimony-resistant plant growth-promoting rhizobacteria Cupriavidus sp. S-8–2. Sci Total Environ, 2023, 858: 159955,
CrossRef Google scholar
[53]
Zhu X, Chen B, Zhu L, Xing B. Effects and mechanisms of biochar-microbe interactions in soil improvement and pollution remediation: a review. Environ Pollut, 2017, 227: 98-115,
CrossRef Google scholar
Funding
National Natural Science Foundation of China(42207012); the Special Support Program for high-level Talents of Zhejiang Province(2022R52015); Natural Science Foundation of Zhejiang Province(LZ24D010001); Key Laboratory of Environmental Pollution Control Technology Research of Zhejiang Province(2021ZEKL09)

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