Arsenite oxidizing multiple metal resistant bacteria isolated from industrial effluent: their potential use in wastewater treatment

被引:23
作者
Naureen, Ayesha [1 ]
Rehman, Abdul [1 ]
机构
[1] Univ Punjab, Dept Microbiol & Mol Genet, New Campus, Lahore 54590, Pakistan
关键词
Arsenite; B; cereus; A; junii; Arsenite oxidase; Wastewater treatment; CORYNEBACTERIUM-GLUTAMICUM; ALCALIGENES-FAECALIS; CONTAMINATED SITES; OXIDASE; OXIDATION; GENES; BIOREMEDIATION; REDUCTION; DIVERSITY; GROWTH;
D O I
10.1007/s11274-016-2079-3
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Arsenite oxidizing bacteria, isolated from industrial wastewater, showed high resistance against arsenite (40 mM) and other heavy metals (10 mM Pb; 8 mM Cd; 6 mM Cr; 10 mM Cu and 26.6 mM As5+). Bacterial isolates were characterized, on the basis of morphological, biochemical and 16S rRNA ribotyping, as Bacillus cereus (1.1S) and Acinetobacter junii (1.3S). The optimum temperature and pH for the growth of both strains were found to be 37 degrees C and 7. Both the strains showed maximum growth after 24 h of incubation. The predominant form of arsenite oxidase was extracellular in B. cereus while in A. junii both types of activities, intracellular and extracellular, were found. The extracellular aresenite oxidase activity was found to be 730 and 750 mu M/m for B. cereus and A. junii, respectively. The arsenite oxidase from both bacterial strains showed maximum activity at 37 degrees C, pH 7 and enhanced in the presence of Zn2+. The presence of two protein bands with molecular weight of approximately 70 and 14 kDa in the presence of arsenic points out a possible role in arsenite oxidation. Arsenite oxidation potential of B. cereus and A. junii was determined up to 92 and 88 % in industrial wastewater after 6 days of incubation. The bacterial treated wastewater improved the growth of Vigna radiata as compared to the untreated wastewater. It indicates that these bacterial strains may find some potential applications in wastewater treatment systems to transform toxic arsenite into less toxic form, arsenate.
引用
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页码:133 / +
页数:9
相关论文
共 55 条
[1]   Diversity of arsenite transporter genes from arsenic-resistant soil bacteria [J].
Achour, Asma Rokbani ;
Bauda, Pascale ;
Billard, Patrick .
RESEARCH IN MICROBIOLOGY, 2007, 158 (02) :128-137
[2]  
Ali I, 2012, PAK J BOT, V44, P1593
[3]   Isolation and characterization of arsenate-reducing bacteria from arsenic-contaminated sites in New Zealand [J].
Anderson, CR ;
Cook, GM .
CURRENT MICROBIOLOGY, 2004, 48 (05) :341-347
[4]  
ANDERSON GL, 1992, J BIOL CHEM, V267, P23674
[5]   Simultaneous reduction of Cr(VI) and oxidation of As(III) by Bacillus firmus TE7 isolated from tannery effluent [J].
Bachate, Sachin P. ;
Nandre, Vinod S. ;
Ghatpande, Niraj S. ;
Kodam, Kisan M. .
CHEMOSPHERE, 2013, 90 (08) :2273-2278
[6]  
Bahara MM, 2012, J HAZARD MATER
[7]  
Brandstetter A, 2000, REMEDIATION ENGINEERING OF CONTAMINATED SOILS, P715
[8]   Isolation of arsenite-oxidizing bacteria from industrial effluents and their potential use in wastewater treatment [J].
Butt, Awais S. ;
Rehman, A. .
WORLD JOURNAL OF MICROBIOLOGY & BIOTECHNOLOGY, 2011, 27 (10) :2435-2441
[9]   Isolation of arsenite-oxidizing bacteria from a natural biofilm associated to volcanic rocks of Atacama Desert, Chile [J].
Campos, V. L. ;
Escalante, G. ;
Yanez, J. ;
Zaror, C. A. ;
Mondaca, M. A. .
JOURNAL OF BASIC MICROBIOLOGY, 2009, 49 :S93-S97
[10]  
Cappuccino JamesG., 2001, MICROBIOLOGY LAB MAN, VSixth