Hydrolytic Activity of Free and Immobilized Cellulase
- 5 January 2009
- journal article
- research article
- Published by American Chemical Society (ACS) in Langmuir
- Vol. 25 (3), 1582-1587
- https://doi.org/10.1021/la802882s
Abstract
Cellulase is an enzymatic complex which synergically promotes the degradation of cellulose to glucose. The adsorption behavior of cellulase from Trichoderma reesei onto Si wafers or amino-terminated surfaces was investigated by means of ellipsometry and atomic force microscopy (AFM) as a function of temperature. Upon increasing temperature from (24 +/- 1) to (60 +/- 1) degrees C, adsorption of cellulase became faster and more pronounced and the mean roughness of cellulase adsorbed layers increased. In the case of cellulase adsorbed onto Si wafers, Arrhenius's plot allowed us to estimate the adsorption energy as 24.2 kJ mol(-1). The hydrolytic activity of free cellulase and cellulase immobilized onto Si wafers was tested using cellulose dispersions as substrates. The incubation temperature ranged from (37 +/- 1) to (60 +/- 1) degrees C. The highest efficiency was observed at (60 +/- 1) degrees C. The amount of glucose produced by free cellulase was similar to 20% higher than that obtained from immobilized cellulase. However, immobilizing cellulase onto Si wafers proved to be advantageous because they could be reused six times while retaining their original activity level. Such an effect was attributed to surface hydration, which prevents enzyme denaturation. The hydrolytic activity of cellulase immobilized onto amino-terminated surfaces was slightly lower than that observed for cellulase adsorbed onto Si wafers, and reuse was not possible.This publication has 28 references indexed in Scilit:
- Characterization and immobilization of liposome-bound cellulase for hydrolysis of insoluble celluloseBioresource Technology, 2007
- Ethanol fermentation from biomass resources: current state and prospectsApplied Microbiology and Biotechnology, 2005
- A novel method to prepare chitosan powder and its application in cellulase immobilizationJournal of Chemical Technology & Biotechnology, 2005
- Immobilization of cellulase in nanofibrous PVA membranes by electrospinningJournal of Membrane Science, 2004
- Co-immobilized pectinlyase and endocellulase on chitin and Nylon supportsProcess Biochemistry, 2000
- Cellulase for commodity products from cellulosic biomassCurrent Opinion in Biotechnology, 1999
- Crystalline cellulose degradation: new insight into the function of cellobiohydrolasesTrends in Biotechnology, 1997
- Trichoderma reesei has no true exo-cellulase: all intact and truncated cellulases produce new reducing end groups on celluloseBiochimica et Biophysica Acta (BBA) - General Subjects, 1993
- Characteristics of fungal cellulasesBioresource Technology, 1991
- Immobilization of cellulase using polyurethane foamApplied Biochemistry and Biotechnology, 1988