Biosorption and bioaccumulation characteristics of cadmium by plant growth-promoting rhizobacteria

被引:36
|
作者
Li, Xingjie [1 ]
Li, Dongbo [1 ]
Yan, Zhenning [1 ]
Ao, Yansong [1 ]
机构
[1] Shanghai Jiao Tong Univ, Sch Agr & Biol, Shanghai 200240, Peoples R China
关键词
AQUEOUS-SOLUTION; HEAVY-METALS; BINDING CHARACTERISTICS; SURFACE-ADSORPTION; SOIL BACTERIUM; CELL-WALL; COPPER; STRAIN; CU2+; MECHANISM;
D O I
10.1039/c8ra06270f
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Plant growth-promoting rhizobacteria (PGPR) not only promote growth and heavy metal uptake by plants but are promising biosorbents for heavy metals remediation. However, there exist arguments over whether extracellular adsorption (biosorption) or intracellular accumulation (bioaccumulation) play dominant roles in Cd(ii) adsorption. Therefore, three cadmium-resistant PGPR, Cupriavidus necator GX_5, Sphingomonas sp. GX_15, and Curtobacterium sp. GX_31 were used to study bioaccumulation and biosorption mechanisms under different initial Cd(ii) concentrations, using batch adsorption experiments, desorption experiments, scanning electron microscopy coupled with energy dispersive X-ray (SEM-EDX) spectroscopy, transmission electron microscopy (TEM), and Fourier-transform infrared (FTIR) spectroscopy. In this study, with the increase of the initial Cd(ii) concentrations, the removal efficiency of strains decreased and the adsorption capacity improved. The highest Cd(ii) removal efficiency values were 25.05%, 53.88%, and 86.06% for GX_5, GX_15, and GX_31 with 20 mg l(-1) of Cd(ii), while the maximum adsorption capacity values were 7.97, 17.13, and 26.43 mg g(-1) of GX_5, GX_15, and GX_31 with 100 mg l(-1) of Cd(ii). Meanwhile, the removal efficiency and adsorption capacity could be ordered as GX_31 > GX_15 > GX_5. The dominant adsorption mechanism for GX_5 was bioaccumulation (50.66-60.38%), while the dominant mechanisms for GX_15 and GX_31 were biosorptions (60.29-64.89% and 75.93-79.45%, respectively). The bioaccumulation and biosorption mechanisms were verified by SEM-EDX, TEM and FTIR spectroscopy. These investigations could provide a more comprehensive understanding of metal-bacteria sorption reactions as well as practical application in remediation of heavy metals.
引用
收藏
页码:30902 / 30911
页数:10
相关论文
共 50 条
  • [21] Plant growth-promoting rhizobacteria promote plant size inequality
    Alan C. Gange
    Kiran R. Gadhave
    Scientific Reports, 8
  • [22] Effect of plant growth-promoting Rhizobacteria on plant hormone homeostasis
    Tsukanova, K. A.
    Chebotar, V. K.
    Meyer, J. J. M.
    Bibikova, T. N.
    SOUTH AFRICAN JOURNAL OF BOTANY, 2017, 113 : 91 - 102
  • [23] Applications of free living plant growth-promoting rhizobacteria
    Lucy, M
    Reed, E
    Glick, BR
    ANTONIE VAN LEEUWENHOEK INTERNATIONAL JOURNAL OF GENERAL AND MOLECULAR MICROBIOLOGY, 2004, 86 (01): : 1 - 25
  • [24] Root colonization by inoculated plant growth-promoting rhizobacteria
    Benizri, E
    Baudoin, E
    Guckert, A
    BIOCONTROL SCIENCE AND TECHNOLOGY, 2001, 11 (05) : 557 - 574
  • [25] Plant growth-promoting rhizobacteria used in South Korea
    Ibal, Jerald Conrad
    Jung, Byung Kwon
    Park, Chang Eon
    Shin, Jae-Ho
    APPLIED BIOLOGICAL CHEMISTRY, 2018, 61 (06) : 709 - 716
  • [26] Applications of free living plant growth-promoting rhizobacteria
    M. Lucy
    E. Reed
    Bernard R. Glick
    Antonie van Leeuwenhoek, 2004, 86 : 1 - 25
  • [27] Endophytic colonization of spruce by plant growth-promoting rhizobacteria
    Shishido, M
    Breuil, C
    Chanway, CP
    FEMS MICROBIOLOGY ECOLOGY, 1999, 29 (02) : 191 - 196
  • [28] Plant growth-promoting rhizobacteria and root system functioning
    Vacheron, Jordan
    Desbrosses, Guilhem
    Bouffaud, Marie-Lara
    Touraine, Bruno
    Moenne-Loccoz, Yvan
    Muller, Daniel
    Legendre, Laurent
    Wisniewski-Dye, Florence
    Prigent-Combaret, Claire
    FRONTIERS IN PLANT SCIENCE, 2013, 4
  • [29] Plant growth-promoting rhizobacteria used in South Korea
    Jerald Conrad Ibal
    Byung Kwon Jung
    Chang Eon Park
    Jae-Ho Shin
    Applied Biological Chemistry, 2018, 61 : 709 - 716
  • [30] Biocontrol of tomato wilt by plant growth-promoting rhizobacteria
    Guo, JH
    Qi, HY
    Guo, YH
    Ge, HL
    Gong, LY
    Zhang, LX
    Sun, PH
    BIOLOGICAL CONTROL, 2004, 29 (01) : 66 - 72