Covalent immobilization of benzoylformate decarboxylase from Pseudomonas putida on magnetic epoxy support and its carboligation reactivity

被引:24
作者
Tural, Bilsen [1 ]
Tarhan, Tuba [2 ]
Tural, Servet [1 ]
机构
[1] Dicle Univ, Dept Chem, Fac Educ, TR-21280 Diyarbakir, Turkey
[2] Mardin Artuklu Univ, Vocat High Sch Hlth Serv, TR-47100 Mardin, Turkey
关键词
Benzoylformate decarboxylase; Covalent immobilization; Magnetic epoxy support; Carboligation reactivity; SALT-INDUCED IMMOBILIZATION; BENZALDEHYDE LYASE; AFFINITY LIGANDS; BETA-GALACTOSIDASE; ENZYMES; PROTEINS; NANOPARTICLES; SELECTIVITY; STABILITY; DENSITY;
D O I
10.1016/j.molcatb.2014.02.016
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Epoxy attached magnetic nanoparticles were prepared and used as solid support for covalent immobilization and stabilization of benzoylformate decarboxylase (BFD, E.C. 4.1.1.7) from Pseudomonas putida. A three-step immobilization/stabilization procedure is applied. The enzyme is firstly covalently immobilized under mild experimental conditions (e.g. pH 7.0, no added MgSO4 and 20 degrees C). Secondly, the enzyme is immobilized under more drastic conditions (higher pH values, higher ionic strengths, etc.) to facilitate an increase in effective concentration of the enzyme on the support near the epoxide reactive sites. Thirdly, the remaining epoxy groups are blocked to stop any additional interaction between the enzyme and the support. With more drastic conditions, the loading of enzyme can be increased from 1.25 to 6.70 mg enzyme per gram of support. The covalently bounded enzyme was characterized in terms of its activity and stability for the formation of (S)-2-hydroxypropiophenone (2-HPP). The activity of the immobilized BED was determined to be 53.0% related to the activity of the free enzyme. The immobilized biocatalyst retained 95% of its original activity after five reaction cycles. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:188 / 194
页数:7
相关论文
共 43 条
  • [1] Salt-induced immobilization of small affinity ligands on an epoxide-activated affinity support
    Bauer-Arnaz, K
    Napolitano, EW
    Roberts, DN
    Montali, JA
    Hughes, BR
    Schmidt, DE
    [J]. JOURNAL OF CHROMATOGRAPHY A, 1998, 803 (1-2) : 73 - 82
  • [2] EUPERGIT oxirane acrylic beads: How to make enzymes fit for biocatalysis
    Boller, T
    Meier, C
    Menzler, S
    [J]. ORGANIC PROCESS RESEARCH & DEVELOPMENT, 2002, 6 (04) : 509 - 519
  • [3] BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3
  • [4] Advances in enzyme immobilisation
    Brady, Dean
    Jordaan, Justin
    [J]. BIOTECHNOLOGY LETTERS, 2009, 31 (11) : 1639 - 1650
  • [5] Covalently cross-linked perfluorosulfonated membranes with polysiloxane framework
    Chen, Wei-Fu
    Kuo, Ping-Lin
    [J]. MACROMOLECULES, 2007, 40 (06) : 1987 - 1994
  • [6] Enhancing the functional properties of thermophilic enzymes by chemical modification and immobilization
    Cowan, Don A.
    Fernandez-Lafuente, Roberto
    [J]. ENZYME AND MICROBIAL TECHNOLOGY, 2011, 49 (04) : 326 - 346
  • [7] Enzyme immobilization: an overview on techniques and support materials
    Datta, Sumitra
    Christena, L. Rene
    Rajaram, Yamuna Rani Sriramulu
    [J]. 3 BIOTECH, 2013, 3 (01) : 1 - 9
  • [8] Demir AS, 2002, ADV SYNTH CATAL, V344, P96, DOI 10.1002/1615-4169(200201)344:1<96::AID-ADSC96>3.0.CO
  • [9] 2-Z
  • [10] Chemoenzymatic synthesis of (1S,2R)-1-amino-2-indanol, a key intermediate of HIV protease inhibitor, indinavir
    Demir, AS
    Hamamci, H
    Doganel, F
    Ozgul, E
    [J]. JOURNAL OF MOLECULAR CATALYSIS B-ENZYMATIC, 2000, 9 (4-6) : 157 - 161