POLYPHENOLOXIDASES IMMOBILIZED IN ORGANIC GELS - PROPERTIES AND APPLICATIONS IN THE DETOXIFICATION OF AROMATIC-COMPOUNDS

被引:78
作者
CRECCHIO, C
RUGGIERO, P
PIZZIGALLO, MDR
机构
[1] Istituto di Chimica Agraria, Università di Bari, Bari, 70126
关键词
PHENOLOXIDASES; ENZYME IMMOBILIZATION; REVERSE MICELLES; ORGANIC GELS; BIOTIC DETOXIFICATION;
D O I
10.1002/bit.260480605
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
Gelatine gels originate from water in oil microemulsions in which the ternary system consists of isooctane/sulfosuccinic acid bis [2-ethy/hexyl] ester/water; the solubilization of gelatin in the water pool of these microemulsions transforms them into viscous gels in which it is possible to cosolubilize various reactive molecules. These gels were used to immobilize two phenoloxidases, a laccase from Trametes versicolor and a tyrosinase from mushroom. The best balance between gel retention and catalytic activity was reached at a gelatine concentration of 2.5% (w/v) in the case of tyrosinase, while laccase immobilization was independent of gelatine concentration. Both enzymes kept the same optimum pH as the corresponding soluble controls, while a partial loss of activity was observed when they were immobilized. Immobilized enzymes showed an increased stability when incubated for several days at 4 degrees C with a very low release from the gels in the incubation solutions. The immobilization of tyrosinase and of laccase enhanced stability to thermal inactivation. Furthermore, gel-entrapped tyrosinase was almost completely preserved from proteolysis: more than 80% of the activity was maintained, while only 25% of the soluble control activity was detected after the same proteolytic treatments. A column packed with gel-immobilized tyrosinase was used to demonstrate that enzymes immobilized with this technique may be reused several times in the same reaction without loosing their efficiency. Finally, gel-entrapped tyrosinase and laccase were capable of removing naturally occurring and xenobiotic aromatic compounds from aqueous suspensions with different degrees of efficiency. (C) 1995 John Wiley & Sons, Inc.
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页码:585 / 591
页数:7
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