Literature DB >> 18421586

Immobilization of Yarrowia lipolytica lipase--a comparison of stability of physical adsorption and covalent attachment techniques.

Aline G Cunha1, Gloria Fernández-Lorente, Juliana V Bevilaqua, Jacqueline Destain, Lúcia M C Paiva, Denise M G Freire, Roberto Fernández-Lafuente, Jose M Guisán.   

Abstract

Lipase immobilization offers unique advantages in terms of better process control, enhanced stability, predictable decay rates and improved economics. This work evaluated the immobilization of a highly active Yarrowia lipolytica lipase (YLL) by physical adsorption and covalent attachment. The enzyme was adsorbed on octyl-agarose and octadecyl-sepabeads supports by hydrophobic adsorption at low ionic strength and on MANAE-agarose support by ionic adsorption. CNBr-agarose was used as support for the covalent attachment immobilization. Immobilization yields of 71, 90 and 97% were obtained when Y. lipolytica lipase was immobilized into octyl-agarose, octadecyl-sepabeads and MANAE-agarose, respectively. However, the activity retention was lower (34% for octyl-agarose, 50% for octadecyl-sepabeads and 61% for MANAE-agarose), indicating that the immobilized lipase lost activity during immobilization procedures. Furthermore, immobilization by covalent attachment led to complete enzyme inactivation. Thermal deactivation was studied at a temperature range from 25 to 45 degrees C and pH varying from 5.0 to 9.0 and revealed that the hydrophobic adsorption on octadecyl-sepabeads produced an appreciable stabilization of the biocatalyst. The octadecyl-sepabeads biocatalyst was almost tenfold more stable than free lipase, and its thermal deactivation profile was also modified. On the other hand, the Y. lipolytica lipase immobilized on octyl-agarose and MANAE-agarose supports presented low stability, even less than the free enzyme.

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Year:  2007        PMID: 18421586     DOI: 10.1007/s12010-007-8073-3

Source DB:  PubMed          Journal:  Appl Biochem Biotechnol        ISSN: 0273-2289            Impact factor:   2.926


  5 in total

1.  Enzyme immobilization: an overview on techniques and support materials.

Authors:  Sumitra Datta; L Rene Christena; Yamuna Rani Sriramulu Rajaram
Journal:  3 Biotech       Date:  2012-06-06       Impact factor: 2.406

2.  Immobilization of a Commercial Lipase from Penicillium camembertii (Lipase G) by Different Strategies.

Authors:  Adriano A Mendes; Larissa Freitas; Ana Karine F de Carvalho; Pedro C de Oliveira; Heizir F de Castro
Journal:  Enzyme Res       Date:  2011-07-24

3.  Effects of Triton X-100 and PEG on the Catalytic Properties and Thermal Stability of Lipase from Candida Rugosa Free and Immobilized on Glyoxyl-Agarose.

Authors:  Rafael F Perna; Poliana C Tiosso; Letícia M Sgobi; Angélica M S Vieira; Marcelo F Vieira; Paulo W Tardioli; Cleide M F Soares; Gisella M Zanin
Journal:  Open Biochem J       Date:  2017-07-31

4.  Biodiesel Production via Trans-Esterification Using Pseudomonas cepacia Immobilized on Cellulosic Polyurethane.

Authors:  Li Li; Philip W Dyer; H Christopher Greenwell
Journal:  ACS Omega       Date:  2018-06-22

5.  Enzyme Entrapment in Amphiphilic Myristyl-Phenylalanine Hydrogels.

Authors:  Natashya Falcone; Tsuimy Shao; Roomina Rashid; Heinz-Bernhard Kraatz
Journal:  Molecules       Date:  2019-08-08       Impact factor: 4.411

  5 in total

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