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Immobilization of enzymes onto carbon nanotubes

Imobilizacija enzima na ugljenične nanocevi

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2011
0367-598X1104423P.pdf (645.7Kb)
Authors
Prlainović, Nevena
Bezbradica, Dejan
Knežević-Jugović, Zorica
Marinković, Aleksandar
Uskoković, Petar
Mijin, Dušan
Article (Published version)
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Abstract
The discovery of carbon nanotubes (CNTs) has opened a new door in nanotechnology. With their high surface area, unique electronic, thermal and mechanical properties, CNTs have been widely used as carriers for protein immobilization. In fact, carbon nanotubes present an ideal support system without diffusional limitations, and also have the possibility of surface covalent functionalization. It is usually the oxidation process that introduces carboxylic acid groups. Enzymes and other proteins could be adsorbed or covalently attached onto carbon nanotubes. Adsorption of enzyme is a very simple and inexpensive immobilization method and there are no chemical changes of the protein. It has also been found that this technique does not alter structure and unique properties of nanotubes. However, a major problem in process designing is the relatively low stability of immobilized protein and desorption from the carrier. On the other hand, while covalent immobilization provides durable attachment..., the oxidation process can reduce mechanical and electronic properties of carbon nanotubes. It can also affect the active site of enzyme and cause the loss of enzyme activity. Bioimmobilization studies have showed that there are strong interactions between carbon nanotubes surface and protein. The retention of enzyme structure and activity is critical for their application and it is of fundamental interest to understand the nature of these interactions. Atomic force microscopy (AFM), transmission electron microscopy (TEM), scanning electron microscopy (SEM) and circular dichroism (CD) spectroscopy provide an insight into the structural changes that occur during the immobilization. The aim of this paper is to summarize progress of protein immobilization onto carbon nanotubes.

Nanocevi poseduju veliki potencijal primene u raznim oblastima nauke i inženjerstva. Velika mehanička čvrstoća, odlična termička i električna provodljivost, veliki odnos površine prema zapremini i minimalna difuziona ograničenja čine ih idealnim nosačima za imobilizaciju biomolekula kao što su proteini, antigeni, antitela, vitamini, hormoni, antibiotici i dr. U ovom radu opisane su tehnika adsorpcije i kovalentnog vezivanja enzima na nemodifikovane, oksidovane i amino funkcionalizovane ugljenične nanocevi. Takođe je opisan uticaj površine ugljeničnih nanocevi na strukturne promene enzima, kao i na promene u pogledu aktivnosti i stabilnosti.
Keywords:
carbon nanotubes / enzymeimmobilization / adsorption / covalent attachment / ugljenične nanocevi / imobilizacija enzima / adsorpcija / kovalentno vezivanje
Source:
Hemijska industrija, 2011, 65, 4, 423-430
Publisher:
  • Association of Chemical Engineers of Serbia
Funding / projects:
  • Study of the Synthesis, Structure and Activity of Natural and Synthetic Organic Compounds (RS-172013)
  • Novel encapsulation and enzyme technologies for designing of new biocatalysts and biologically active compounds targeting enhancement of food quality, safety and competitiveness (RS-46010)
  • Synthesis, processing and applications of nanostructured multifunctional materials with defined properties (RS-45019)

DOI: 10.2298/HEMIND110330028P

ISSN: 0367-598X

WoS: 000297887000010

Scopus: 2-s2.0-80052627832
[ Google Scholar ]
3
1
URI
http://TechnoRep.tmf.bg.ac.rs/handle/123456789/1811
Collections
  • Radovi istraživača / Researchers’ publications (TMF)
Institution/Community
Tehnološko-metalurški fakultet
TY  - JOUR
AU  - Prlainović, Nevena
AU  - Bezbradica, Dejan
AU  - Knežević-Jugović, Zorica
AU  - Marinković, Aleksandar
AU  - Uskoković, Petar
AU  - Mijin, Dušan
PY  - 2011
UR  - http://TechnoRep.tmf.bg.ac.rs/handle/123456789/1811
AB  - The discovery of carbon nanotubes (CNTs) has opened a new door in nanotechnology. With their high surface area, unique electronic, thermal and mechanical properties, CNTs have been widely used as carriers for protein immobilization. In fact, carbon nanotubes present an ideal support system without diffusional limitations, and also have the possibility of surface covalent functionalization. It is usually the oxidation process that introduces carboxylic acid groups. Enzymes and other proteins could be adsorbed or covalently attached onto carbon nanotubes. Adsorption of enzyme is a very simple and inexpensive immobilization method and there are no chemical changes of the protein. It has also been found that this technique does not alter structure and unique properties of nanotubes. However, a major problem in process designing is the relatively low stability of immobilized protein and desorption from the carrier. On the other hand, while covalent immobilization provides durable attachment, the oxidation process can reduce mechanical and electronic properties of carbon nanotubes. It can also affect the active site of enzyme and cause the loss of enzyme activity. Bioimmobilization studies have showed that there are strong interactions between carbon nanotubes surface and protein. The retention of enzyme structure and activity is critical for their application and it is of fundamental interest to understand the nature of these interactions. Atomic force microscopy (AFM), transmission electron microscopy (TEM), scanning electron microscopy (SEM) and circular dichroism (CD) spectroscopy provide an insight into the structural changes that occur during the immobilization. The aim of this paper is to summarize progress of protein immobilization onto carbon nanotubes.
AB  - Nanocevi poseduju veliki potencijal primene u raznim oblastima nauke i inženjerstva. Velika mehanička čvrstoća, odlična termička i električna provodljivost, veliki odnos površine prema zapremini i minimalna difuziona ograničenja čine ih idealnim nosačima za imobilizaciju biomolekula kao što su proteini, antigeni, antitela, vitamini, hormoni, antibiotici i dr. U ovom radu opisane su tehnika adsorpcije i kovalentnog vezivanja enzima na nemodifikovane, oksidovane i amino funkcionalizovane ugljenične nanocevi. Takođe je opisan uticaj površine ugljeničnih nanocevi na strukturne promene enzima, kao i na promene u pogledu aktivnosti i stabilnosti.
PB  - Association of Chemical Engineers of Serbia
T2  - Hemijska industrija
T1  - Immobilization of enzymes onto carbon nanotubes
T1  - Imobilizacija enzima na ugljenične nanocevi
EP  - 430
IS  - 4
SP  - 423
VL  - 65
DO  - 10.2298/HEMIND110330028P
ER  - 
@article{
author = "Prlainović, Nevena and Bezbradica, Dejan and Knežević-Jugović, Zorica and Marinković, Aleksandar and Uskoković, Petar and Mijin, Dušan",
year = "2011",
abstract = "The discovery of carbon nanotubes (CNTs) has opened a new door in nanotechnology. With their high surface area, unique electronic, thermal and mechanical properties, CNTs have been widely used as carriers for protein immobilization. In fact, carbon nanotubes present an ideal support system without diffusional limitations, and also have the possibility of surface covalent functionalization. It is usually the oxidation process that introduces carboxylic acid groups. Enzymes and other proteins could be adsorbed or covalently attached onto carbon nanotubes. Adsorption of enzyme is a very simple and inexpensive immobilization method and there are no chemical changes of the protein. It has also been found that this technique does not alter structure and unique properties of nanotubes. However, a major problem in process designing is the relatively low stability of immobilized protein and desorption from the carrier. On the other hand, while covalent immobilization provides durable attachment, the oxidation process can reduce mechanical and electronic properties of carbon nanotubes. It can also affect the active site of enzyme and cause the loss of enzyme activity. Bioimmobilization studies have showed that there are strong interactions between carbon nanotubes surface and protein. The retention of enzyme structure and activity is critical for their application and it is of fundamental interest to understand the nature of these interactions. Atomic force microscopy (AFM), transmission electron microscopy (TEM), scanning electron microscopy (SEM) and circular dichroism (CD) spectroscopy provide an insight into the structural changes that occur during the immobilization. The aim of this paper is to summarize progress of protein immobilization onto carbon nanotubes., Nanocevi poseduju veliki potencijal primene u raznim oblastima nauke i inženjerstva. Velika mehanička čvrstoća, odlična termička i električna provodljivost, veliki odnos površine prema zapremini i minimalna difuziona ograničenja čine ih idealnim nosačima za imobilizaciju biomolekula kao što su proteini, antigeni, antitela, vitamini, hormoni, antibiotici i dr. U ovom radu opisane su tehnika adsorpcije i kovalentnog vezivanja enzima na nemodifikovane, oksidovane i amino funkcionalizovane ugljenične nanocevi. Takođe je opisan uticaj površine ugljeničnih nanocevi na strukturne promene enzima, kao i na promene u pogledu aktivnosti i stabilnosti.",
publisher = "Association of Chemical Engineers of Serbia",
journal = "Hemijska industrija",
title = "Immobilization of enzymes onto carbon nanotubes, Imobilizacija enzima na ugljenične nanocevi",
pages = "430-423",
number = "4",
volume = "65",
doi = "10.2298/HEMIND110330028P"
}
Prlainović, N., Bezbradica, D., Knežević-Jugović, Z., Marinković, A., Uskoković, P.,& Mijin, D.. (2011). Immobilization of enzymes onto carbon nanotubes. in Hemijska industrija
Association of Chemical Engineers of Serbia., 65(4), 423-430.
https://doi.org/10.2298/HEMIND110330028P
Prlainović N, Bezbradica D, Knežević-Jugović Z, Marinković A, Uskoković P, Mijin D. Immobilization of enzymes onto carbon nanotubes. in Hemijska industrija. 2011;65(4):423-430.
doi:10.2298/HEMIND110330028P .
Prlainović, Nevena, Bezbradica, Dejan, Knežević-Jugović, Zorica, Marinković, Aleksandar, Uskoković, Petar, Mijin, Dušan, "Immobilization of enzymes onto carbon nanotubes" in Hemijska industrija, 65, no. 4 (2011):423-430,
https://doi.org/10.2298/HEMIND110330028P . .

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