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Enhancement of Peroxidase Stability Against Oxidative Self-Inactivation by Co-immobilization with a Redox-Active Protein in Mesoporous Silicon and Silica Microparticles

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Publisher Springer
Specialty Biotechnology
Date 2016 Sep 22
PMID 27650291
Citations 7
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Abstract

The study of the stability enhancement of a peroxidase immobilized onto mesoporous silicon/silica microparticles is presented. Peroxidases tend to get inactivated in the presence of hydrogen peroxide, their essential co-substrate, following an auto-inactivation mechanism. In order to minimize this inactivation, a second protein was co-immobilized to act as an electron acceptor and thus increase the stability against self-oxidation of peroxidase. Two heme proteins were immobilized into the microparticles: a fungal commercial peroxidase and cytochrome c from equine heart. Two types of biocatalysts were prepared: one with only covalently immobilized peroxidase (one-protein system) and another based on covalent co-immobilization of peroxidase and cytochrome c (two-protein system), both immobilized by using carbodiimide chemistry. The amount of immobilized protein was estimated spectrophotometrically, and the characterization of the biocatalyst support matrix was performed using Brunauer-Emmett-Teller (BET), scanning electron microscopy with energy-dispersive X-ray spectroscopy (SEM-EDX), and Fourier transform infrared (FTIR) analyses. Stability studies show that co-immobilization with the two-protein system enhances the oxidative stability of peroxidase almost four times with respect to the one-protein system. Thermal stability analysis shows that the immobilization of peroxidase in derivatized porous silicon microparticles does not protect the protein from thermal denaturation, whereas biogenic silica microparticles confer significant thermal stabilization.

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References
1.
Singh A, Flounders A, Volponi J, Ashley C, Wally K, Schoeniger J . Development of sensors for direct detection of organophosphates. Part I: Immobilization, characterization and stabilization of acetylcholinesterase and organophosphate hydrolase on silica supports. Biosens Bioelectron. 2000; 14(8-9):703-13. DOI: 10.1016/s0956-5663(99)00044-5. View

2.
Valderrama B, Ayala M, Vazquez-Duhalt R . Suicide inactivation of peroxidases and the challenge of engineering more robust enzymes. Chem Biol. 2002; 9(5):555-65. DOI: 10.1016/s1074-5521(02)00149-7. View

3.
Lins U, Barros C, Da Cunha M, Miguens F . Structure, morphology, and composition of silicon biocomposites in the palm tree Syagrus coronata (Mart.) Becc. Protoplasma. 2002; 220(1-2):89-96. DOI: 10.1007/s00709-002-0036-5. View

4.
Abian O, Grazu V, Hermoso J, Gonzalez R, Garcia J, Fernandez-Lafuente R . Stabilization of penicillin G acylase from Escherichia coli: site-directed mutagenesis of the protein surface to increase multipoint covalent attachment. Appl Environ Microbiol. 2004; 70(2):1249-51. PMC: 348938. DOI: 10.1128/AEM.70.2.1249-1251.2004. View

5.
Currie H, Perry C . Silica in plants: biological, biochemical and chemical studies. Ann Bot. 2007; 100(7):1383-9. PMC: 2759229. DOI: 10.1093/aob/mcm247. View