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An approach for the improved immobilization of penicillin G acylase onto macroporous poly(glycidyl methacrylate-co-ethylene glycol dimethacrylate) as a potential industrial biocatalyst

Authorized Users Only
2016
Authors
Knežević-Jugović, Zorica
Žuža, Milena
Jakovetić, Sonja
Stefanović, Andrea
Džunuzović, Enis
Jeremić, Katarina B.
Jovanović, Slobodan M.
Article (Published version)
Metadata
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Abstract
The use of penicillin G acylase (PGA) covalently linked to insoluble carrier is expected to produce major advances in pharmaceutical processing industry and the enzyme stability enhancement is still a significant challenge. The objective of this study was to improve catalytic performance of the covalently immobilized PGA on a potential industrial carrier, macroporous poly(glycidyl methacrylate-co-ethylene glycol dimethacrylate) [poly(GMA-co-EGDMA)], by optimizing the copolymerization process and the enzyme attachment procedure. This synthetic copolymer could be a very promising alternative for the development of low-cost, easy-to-prepare, and stable biocatalyst compared to expensive commercially available epoxy carriers such as Eupergit or Sepabeads. The PGA immobilized on poly(GMA-co-EGDMA) in the shape of microbeads obtained by suspension copolymerization appeared to have higher activity yield compared to copolymerization in a cast. Optimal conditions for the immobilization of PGA on... poly(GMA-co-EGDMA) microbeads were 1mg/mL of PGA in 0.75mol/L phosphate buffer pH 6.0 at 25 degrees C for 24h, leading to the active biocatalyst with the specific activity of 252.7U/g dry beads. Chemical amination of the immobilized PGA could contribute to the enhanced stability of the biocatalyst by inducing secondary interactions between the enzyme and the carrier, ensuring multipoint attachment. The best balance between the activity yield (51.5%), enzyme loading (25.6mg/g), and stability (stabilization factor 22.2) was achieved for the partially modified PGA.

Keywords:
penicillin G acylase / immobilization / poly(glycidyl methacrylate-co-ethylene glycol dimethacrylate) / suspension copolymerization / chemical amination / Eupergit C
Source:
Biotechnology Progress, 2016, 32, 1, 43-53
Publisher:
  • Wiley, Hoboken
Funding / projects:
  • Novel encapsulation and enzyme technologies for designing of new biocatalysts and biologically active compounds targeting enhancement of food quality, safety and competitiveness (RS-46010)
  • EUREKA E!6750

DOI: 10.1002/btpr.2181

ISSN: 8756-7938

PubMed: 26439442

WoS: 000371680600006

Scopus: 2-s2.0-84951727521
[ Google Scholar ]
16
14
URI
http://TechnoRep.tmf.bg.ac.rs/handle/123456789/3457
Collections
  • Radovi istraživača / Researchers’ publications (TMF)
Institution/Community
Tehnološko-metalurški fakultet
TY  - JOUR
AU  - Knežević-Jugović, Zorica
AU  - Žuža, Milena
AU  - Jakovetić, Sonja
AU  - Stefanović, Andrea
AU  - Džunuzović, Enis
AU  - Jeremić, Katarina B.
AU  - Jovanović, Slobodan M.
PY  - 2016
UR  - http://TechnoRep.tmf.bg.ac.rs/handle/123456789/3457
AB  - The use of penicillin G acylase (PGA) covalently linked to insoluble carrier is expected to produce major advances in pharmaceutical processing industry and the enzyme stability enhancement is still a significant challenge. The objective of this study was to improve catalytic performance of the covalently immobilized PGA on a potential industrial carrier, macroporous poly(glycidyl methacrylate-co-ethylene glycol dimethacrylate) [poly(GMA-co-EGDMA)], by optimizing the copolymerization process and the enzyme attachment procedure. This synthetic copolymer could be a very promising alternative for the development of low-cost, easy-to-prepare, and stable biocatalyst compared to expensive commercially available epoxy carriers such as Eupergit or Sepabeads. The PGA immobilized on poly(GMA-co-EGDMA) in the shape of microbeads obtained by suspension copolymerization appeared to have higher activity yield compared to copolymerization in a cast. Optimal conditions for the immobilization of PGA on poly(GMA-co-EGDMA) microbeads were 1mg/mL of PGA in 0.75mol/L phosphate buffer pH 6.0 at 25 degrees C for 24h, leading to the active biocatalyst with the specific activity of 252.7U/g dry beads. Chemical amination of the immobilized PGA could contribute to the enhanced stability of the biocatalyst by inducing secondary interactions between the enzyme and the carrier, ensuring multipoint attachment. The best balance between the activity yield (51.5%), enzyme loading (25.6mg/g), and stability (stabilization factor 22.2) was achieved for the partially modified PGA.
PB  - Wiley, Hoboken
T2  - Biotechnology Progress
T1  - An approach for the improved immobilization of penicillin G acylase onto macroporous poly(glycidyl methacrylate-co-ethylene glycol dimethacrylate) as a potential industrial biocatalyst
EP  - 53
IS  - 1
SP  - 43
VL  - 32
DO  - 10.1002/btpr.2181
ER  - 
@article{
author = "Knežević-Jugović, Zorica and Žuža, Milena and Jakovetić, Sonja and Stefanović, Andrea and Džunuzović, Enis and Jeremić, Katarina B. and Jovanović, Slobodan M.",
year = "2016",
abstract = "The use of penicillin G acylase (PGA) covalently linked to insoluble carrier is expected to produce major advances in pharmaceutical processing industry and the enzyme stability enhancement is still a significant challenge. The objective of this study was to improve catalytic performance of the covalently immobilized PGA on a potential industrial carrier, macroporous poly(glycidyl methacrylate-co-ethylene glycol dimethacrylate) [poly(GMA-co-EGDMA)], by optimizing the copolymerization process and the enzyme attachment procedure. This synthetic copolymer could be a very promising alternative for the development of low-cost, easy-to-prepare, and stable biocatalyst compared to expensive commercially available epoxy carriers such as Eupergit or Sepabeads. The PGA immobilized on poly(GMA-co-EGDMA) in the shape of microbeads obtained by suspension copolymerization appeared to have higher activity yield compared to copolymerization in a cast. Optimal conditions for the immobilization of PGA on poly(GMA-co-EGDMA) microbeads were 1mg/mL of PGA in 0.75mol/L phosphate buffer pH 6.0 at 25 degrees C for 24h, leading to the active biocatalyst with the specific activity of 252.7U/g dry beads. Chemical amination of the immobilized PGA could contribute to the enhanced stability of the biocatalyst by inducing secondary interactions between the enzyme and the carrier, ensuring multipoint attachment. The best balance between the activity yield (51.5%), enzyme loading (25.6mg/g), and stability (stabilization factor 22.2) was achieved for the partially modified PGA.",
publisher = "Wiley, Hoboken",
journal = "Biotechnology Progress",
title = "An approach for the improved immobilization of penicillin G acylase onto macroporous poly(glycidyl methacrylate-co-ethylene glycol dimethacrylate) as a potential industrial biocatalyst",
pages = "53-43",
number = "1",
volume = "32",
doi = "10.1002/btpr.2181"
}
Knežević-Jugović, Z., Žuža, M., Jakovetić, S., Stefanović, A., Džunuzović, E., Jeremić, K. B.,& Jovanović, S. M.. (2016). An approach for the improved immobilization of penicillin G acylase onto macroporous poly(glycidyl methacrylate-co-ethylene glycol dimethacrylate) as a potential industrial biocatalyst. in Biotechnology Progress
Wiley, Hoboken., 32(1), 43-53.
https://doi.org/10.1002/btpr.2181
Knežević-Jugović Z, Žuža M, Jakovetić S, Stefanović A, Džunuzović E, Jeremić KB, Jovanović SM. An approach for the improved immobilization of penicillin G acylase onto macroporous poly(glycidyl methacrylate-co-ethylene glycol dimethacrylate) as a potential industrial biocatalyst. in Biotechnology Progress. 2016;32(1):43-53.
doi:10.1002/btpr.2181 .
Knežević-Jugović, Zorica, Žuža, Milena, Jakovetić, Sonja, Stefanović, Andrea, Džunuzović, Enis, Jeremić, Katarina B., Jovanović, Slobodan M., "An approach for the improved immobilization of penicillin G acylase onto macroporous poly(glycidyl methacrylate-co-ethylene glycol dimethacrylate) as a potential industrial biocatalyst" in Biotechnology Progress, 32, no. 1 (2016):43-53,
https://doi.org/10.1002/btpr.2181 . .

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