Chromate reduction by immobilized palladized sulfate-reducing bacteria

被引:28
|
作者
Humphries, AC [1 ]
Mikheenko, IP [1 ]
Macaskie, LE [1 ]
机构
[1] Univ Birmingham, Sch Biosci, Birmingham, W Midlands, England
关键词
bioinorganic catalyst; chromium; immobilization; packed-bed reactor;
D O I
10.1002/bit.20814
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
Resting cells of Desulfovibrio vulgaris NCIMB 8303 and Desulfovibrio desulfuricans NCIMB 8307 were used for the hydrogenase-mediated reduction of Pd(II) to Pd(0). The resulting hybrid palladium bionanocatalyst (Bio-Pd(0)) was used in the reduction of Cr(VI) to the less environmentally problematic Cr(III) species. The reduction of Cr(VI) by free and agar-immobilized Bio-Pd(0) was evaluated. Investigations using catalyst suspensions showed that Cr(VI) reduction was similar (similar to 170 nmol Cr(VI)/h/mg Bio-Pd(0)) when Bio-Pd(0) was produced using D. vulgaris or D. desulfuricans. Continuous-flow studies using D. vulgaris Bio-Pd(0) with agar as the immobilization matrix investigated the effect of Bio-Pd(0) loading, inlet Cr(VI) concentration, and flow rate on the efficiency of Cr(VI) reduction. Reduction of Cr(VI) was highest at a D. vulgaris Bio-Pd(0) loading of 7.5 mg Bio-Pd(0)/mL agar (3:1 dry cell wt: Pd(0)), an input [Cr(VI)] of 100 mu M, and a flow rate of 1.75 mL/h (approx. 3.5 column volumes/h). A mathematical interpretation predicted the activity of the immobilized Bio-Pd(0) for a given set of conditions within 5% of the value found by experiment. Considering the system as an 'artificial enzyme' analog and application of applied enzyme kinetics gave an apparent K, value (Km,pp) of 430 mu M Cr(VI) and a determined value of flow-through reactor activity which differed by 11% from that predicted mathematically. (c) 2006 Wiley Periodicals, Inc.
引用
收藏
页码:81 / 90
页数:10
相关论文
共 50 条
  • [21] Contributions of fermentative acidogenic bacteria and sulfate-reducing bacteria to lactate degradation and sulfate reduction
    Zhao, Yangguo
    Ren, Nanqi
    Wang, Aijie
    CHEMOSPHERE, 2008, 72 (02) : 233 - 242
  • [22] Bioremoval of Tl (I) by PVA-Immobilized Sulfate-Reducing Bacteria
    Zhang, Hongguo
    Li, Meng
    Pang, Bo
    Wu, Yingjuan
    Sun, Yingqiang
    Chen, Diyun
    Chen, Yongheng
    POLISH JOURNAL OF ENVIRONMENTAL STUDIES, 2017, 26 (04): : 1865 - 1873
  • [23] PHYSIOLOGY OF SULFATE-REDUCING BACTERIA
    HANSEN, TA
    MICROBIOLOGICAL SCIENCES, 1988, 5 (03): : 81 - 84
  • [24] Phylogeny of sulfate-reducing bacteria
    Castro, HF
    Williams, NH
    Ogram, A
    FEMS MICROBIOLOGY ECOLOGY, 2000, 31 (01) : 1 - 9
  • [25] BIOCHEMICAL STUDIES ON SULFATE-REDUCING BACTERIA .4. THE CYTOCHROME SYSTEM OF SULFATE-REDUCING BACTERIA
    ISHIMOTO, M
    KOYAMA, J
    NAGAI, Y
    JOURNAL OF BIOCHEMISTRY, 1954, 41 (06): : 763 - 770
  • [26] SYSTEMATICS OF SULFATE-REDUCING BACTERIA
    BATTERSBY, NS
    JOURNAL OF APPLIED BACTERIOLOGY, 1983, 55 (03): : R2 - R2
  • [27] IMMUNOFLUORESCENCE OF SULFATE-REDUCING BACTERIA
    SMITH, AD
    ARCHIVES OF MICROBIOLOGY, 1982, 133 (02) : 118 - 121
  • [28] BIOCHEMICAL STUDIES ON SULFATE-REDUCING BACTERIA .8. THE FUNCTION OF CYTOCHROME OF SULFATE-REDUCING BACTERIA IN DECOMPOSITION OF FORMATE AND REDUCTION OF SULFUR AND HYDROXYLAMINE
    ISHIMOTO, M
    YAGI, T
    SHIRAKI, M
    JOURNAL OF BIOCHEMISTRY, 1957, 44 (11): : 707 - 714
  • [29] Sulfate reduction from phosphogypsum using a mixed culture of sulfate-reducing bacteria
    Azabou, S
    Mechichi, T
    Sayadi, S
    INTERNATIONAL BIODETERIORATION & BIODEGRADATION, 2005, 56 (04) : 236 - 242
  • [30] Enzymatic reduction of chromate: comparative studies using sulfate-reducing bacteria Key role of polyheme cytochromes c and hydrogenases
    C. Michel
    M. Brugna
    C. Aubert
    A. Bernadac
    M. Bruschi
    Applied Microbiology and Biotechnology, 2001, 55 : 95 - 100