Artigo Acesso aberto Revisado por pares

Tubular and Spherical SiO2 Obtained by Sol Gel Method for Lipase Immobilization and Enzymatic Activity

2018; Multidisciplinary Digital Publishing Institute; Volume: 23; Issue: 6 Linguagem: Inglês

10.3390/molecules23061362

ISSN

1433-1373

Autores

Crina Anastasescu, Silviu Preda, Adriana Rusu, Daniela C. Culiță, Gabriel Plăvan, Ștefan-Adrian Strungaru, José Maria Calderón-Moreno, Cornel Munteanu, Ioana Cătălina Gȋfu, Mirela Enache, Radu Socoteanu, Daniel G. Angelescu, Mihai Anastasescu, M. Gärtner, Ioan Balint, Maria Zaharescu,

Tópico(s)

Analytical Chemistry and Chromatography

Resumo

A wide range of hybrid biomaterials has been designed in order to sustain bioremediation processes by associating sol-gel SiO₂ matrices with various biologically active compounds (enzymes, antibodies). SiO₂ is a widespread, chemically stable and non-toxic material; thus, the immobilization of enzymes on silica may lead to improving the efficiency of biocatalysts in terms of endurance and economic costs. Our present work explores the potential of different hybrid morphologies, based on hollow tubes and solid spheres of amorphous SiO₂, for enzyme immobilization and the development of competitive biocatalysts. The synthesis protocol and structural characterization of spherical and tubular SiO₂ obtained by the sol gel method were fully investigated in connection with the subsequent immobilization of lipase from Rhizopus orizae. The immobilization is conducted at pH 6, lower than the isoelectric point of lipase and higher than the isoelectric point of silica, which is meant to sustain the physical interactions of the enzyme with the SiO₂ matrix. The morphological, textural and surface properties of spherical and tubular SiO₂ were investigated by SEM, nitrogen sorption, and electrokinetic potential measurements, while the formation and characterization of hybrid organic-inorganic complexes were studied by UV-VIS, FTIR-ATR and fluorescence spectroscopy. The highest degree of enzyme immobilization (as depicted from total organic carbon) was achieved for tubular morphology and the hydrolysis of p-nitrophenyl acetate was used as an enzymatic model reaction conducted in the presence of hybrid lipase⁻SiO₂ complex.

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