Production of Biogenic Nanoparticles for the Reduction of 4-Nitrophenol and Oxidative Laccase-Like Reactions

被引:38
作者
Capeness, Michael J. [1 ,2 ]
Echavarri-Bravo, Virginia [1 ,2 ]
Horsfall, Louise E. [1 ,2 ]
机构
[1] Univ Edinburgh, Sch Biol Sci, Inst Quantitat Biol Biochem & Biotechnol, Edinburgh, Midlothian, Scotland
[2] Univ Edinburgh, Ctr Sci Extreme Condit, Sch Biol Sci, Edinburgh, Midlothian, Scotland
基金
英国工程与自然科学研究理事会;
关键词
biogenic nanoparticles; Desulfovibrio; Morganella; platinum; palladium; silver; laccase; IRON-OXIDE NANOPARTICLES; SILVER NANOPARTICLES; GREEN SYNTHESIS; PLATINUM; PALLADIUM; PEROXIDASE; GOLD; PH; RECOVERY; AGGREGATION;
D O I
10.3389/fmicb.2019.00997
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Biogenic nanoparticles present a wide range of possibilities for use in industrial applications, their production is greener, they can be manufactured using impure feedstocks, and often have different catalytic abilities compared to their chemically made analogs. Nanoparticles of Ag, Pd, Pt, and the bi-elemental PdPt were produced by Morganella psychrotolerans and Desulfovibrio alaskensis and were shown to be able to reduce 4-nitrophenol, an industrial and toxic pollutant. Nanoparticles were recovered post-reaction and then reused, thus demonstrating continued activity. Biogenic PdNPs were shown to have enhanced specificity in a wide pH activity range in the oxidation of the three common substrates used 2,2'-azino-bis(3-ethylbenzothiazoline-6-sulphonic acid) (ABTS), 2,6-Dimethoxyphenol and (2,6-DMP) and 3,3',5,5'-Tetramethylbenzidine (TMB) to determine oxidase-like activity. Overall Pd in a nanoparticle form exhibited higher oxidation activity than its ionic counterpart, highlighting the potential of biogenic nanoparticles over the use of ions or chemically made elemental forms.
引用
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页数:9
相关论文
共 44 条
[1]   Comprehensive Study of Plasmonic Materials in the Visible and Near Infrared: Linear, Refractory, and Nonlinear Optical Properties [J].
Albrecht, Gelon ;
Ubl, Monika ;
Kaiser, Stefan ;
Giessen, Harald ;
Hentschel, Mario .
ACS PHOTONICS, 2018, 5 (03) :1058-1067
[2]   Oxidase-Like Activity of Polymer-Coated Cerium Oxide Nanoparticles [J].
Asati, Atul ;
Santra, Santimukul ;
Kaittanis, Charalambos ;
Nath, Sudip ;
Perez, J. Manuel .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2009, 48 (13) :2308-2312
[3]   Aggregation and disaggregation of iron oxide nanoparticles: Influence of particle concentration, pH and natural organic matter [J].
Baalousha, Mohammed .
SCIENCE OF THE TOTAL ENVIRONMENT, 2009, 407 (06) :2093-2101
[4]  
Capeness M., 2019, BIORXIV, DOI [10.1101/565036, DOI 10.1101/565036]
[5]   Nickel and platinum group metal nanoparticle production by Desulfovibrio alaskensis G20 [J].
Capeness, M. J. ;
Edmundson, M. C. ;
Horsfall, L. E. .
NEW BIOTECHNOLOGY, 2015, 32 (06) :727-731
[6]   Application of Light Scattering Techniques to Nanoparticle Characterization and Development [J].
Carvalho, Patricia M. ;
Felicio, Mario R. ;
Santos, Nuno C. ;
Goncalves, Sonia ;
Domingues, Marco M. .
FRONTIERS IN CHEMISTRY, 2018, 6
[7]   Bioremediation of chromate: thermodynamic analysis of the effects of Cr(VI) on sulfate-reducing bacteria [J].
Chardin, B ;
Dolla, A ;
Chaspoul, F ;
Fardeau, ML ;
Gallice, P ;
Bruschi, M .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2002, 60 (03) :352-360
[8]   Rationally Modulate the Oxidase-like Activity of Nanoceria for Self Regulated Bioassays [J].
Cheng, Hanjun ;
Lin, Shichao ;
Muhammad, Faheem ;
Lin, Ying-Wu ;
Wei, Hui .
ACS SENSORS, 2016, 1 (11) :1336-1343
[9]   Palladium and gold removal and recovery from precious metal solutions and electronic scrap leachates by Desulfovibrio desulfuricans [J].
Creamer, Neil J. ;
Baxter-Plant, Victoria S. ;
Henderson, John ;
Potter, M. ;
Macaskie, Lynne E. .
BIOTECHNOLOGY LETTERS, 2006, 28 (18) :1475-1484
[10]   Metallic oxide nanoparticles: state of the art in biogenic syntheses and their mechanisms [J].
Duran, Nelson ;
Seabra, Amedea B. .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2012, 95 (02) :275-288