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Electrostatic extrusion as a dispersion technique for encapsulation of cells and bioactive compounds

Elektrostatička ekstruzija kao disperziona tehnika za inkapsulaciju ćelija i biološki aktivnih supstanci

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2012
2913.pdf (456.2Kb)
Authors
Kostić, Ivana T.
Balanč, Bojana
Đorđević, Verica
Lević, Steva
Nedović, Viktor
Bugarski, Branko
Article (Published version)
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Abstract
Significant development of cells and bioactive compound encapsulation technologies is taking place due to an exceptional possibility of their application in various scientific disciplines, including biomedicine, pharmacy, cosmetology, food and agricultural sciences, beverage production, industrial waste treatment. Despite the broad application of microencapsulation, the literature reviews on dispersion techniques for microcapsule/microbead production, their advantages, restrictions and drawbacks are scarce. The purpose of this paper is to assess the possibilities of electrostatic extrusion for encapsulation of biological material, including living cells in hydrogel microbeads. The paper presents an overview of the mechanisms of droplet formation and controlling experimental parameters for producing microbeads by means of electrostatic extrusion. Electrostatic droplet formation utilizes a special type of physical process taking advantage of electrostatic effects occurring in flowing con...ductive liquids after introduction of an electric field. When an electrostatic field is applied to the metal needle and an electric charge is induced in the liquid flowing out of the needle, the size of droplet detaching from the needle tip decreases as a function of applied electrostatic field. It has been shown that few parameters affect microbead size: applied voltage, electrode geometry, needle size, polarity arrangement and polymer concentration. The electrostatic droplet formation is one of the most precise methods, which enables one to produce spherical and uniform particles ranging from 100 up to 1000 μm. Most of the authors report that the encapsulated compounds (drugs, enzymes and living cells) remain unaltered after electrostatic extrusion. This technique seems to be particularly promising in biotechnology, pharmaceutical and cosmetics industries, where a low-temperature process, preserving heat-sensitive material is a prerequisite. Future efforts in developing of electrostatic extrusion should be directed towards adequately scaling-up for commercial purpose.

Uprkos širokom spektru moguće primene mikroinkapsulacije u medicini, farmaceutskoj, kozmetičkoj i prehrambenoj industriji, literaturni podaci o disperzionim tehnikama koje se koriste u te svrhe su vrlo oskudni. U ovom radu istaknut je značaj elektrostatičke ekstruzije za inkapsulaciju ćelija i bioaktivnih komponenti u hidrogel mikročestice. Elektrostatička ekstruzija je jednostavna, precizna, efikasna i ekonomski isplativa metoda, a optimizacijom nekoliko procesnih parametara moguće je dobiti uniformne čestice sa inkapsuliranim biološkim materijalom željenog prečnika (100-1000 μm). Budući napori u razvoju ove disperzione tehnike trebalo bi da budu usmereni ka uvećanju razmera procesa.
Keywords:
dispersion techniques / electrostatic extrusion / cell and bioactivecompound encapsulation technology / alginate / microbeads / disperzione tehnike / elektrostatička ekstruzija / imobilizacija ćelija / hidrogel mikročestice
Source:
Hemijska industrija, 2012, 66, 4, 505-517
Publisher:
  • Association of Chemical Engineers of Serbia
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)

DOI: 10.2298/HEMIND111209013K

ISSN: 0367-598X

WoS: 000311465200008

Scopus: 2-s2.0-84866520758
[ Google Scholar ]
5
5
URI
http://TechnoRep.tmf.bg.ac.rs/handle/123456789/2097
Collections
  • Radovi istraživača / Researchers’ publications (TMF)
  • Radovi istraživača (Inovacioni centar) / Researchers’ publications (Innovation Centre)
Institution/Community
Tehnološko-metalurški fakultet
TY  - JOUR
AU  - Kostić, Ivana T.
AU  - Balanč, Bojana
AU  - Đorđević, Verica
AU  - Lević, Steva
AU  - Nedović, Viktor
AU  - Bugarski, Branko
PY  - 2012
UR  - http://TechnoRep.tmf.bg.ac.rs/handle/123456789/2097
AB  - Significant development of cells and bioactive compound encapsulation technologies is taking place due to an exceptional possibility of their application in various scientific disciplines, including biomedicine, pharmacy, cosmetology, food and agricultural sciences, beverage production, industrial waste treatment. Despite the broad application of microencapsulation, the literature reviews on dispersion techniques for microcapsule/microbead production, their advantages, restrictions and drawbacks are scarce. The purpose of this paper is to assess the possibilities of electrostatic extrusion for encapsulation of biological material, including living cells in hydrogel microbeads. The paper presents an overview of the mechanisms of droplet formation and controlling experimental parameters for producing microbeads by means of electrostatic extrusion. Electrostatic droplet formation utilizes a special type of physical process taking advantage of electrostatic effects occurring in flowing conductive liquids after introduction of an electric field. When an electrostatic field is applied to the metal needle and an electric charge is induced in the liquid flowing out of the needle, the size of droplet detaching from the needle tip decreases as a function of applied electrostatic field. It has been shown that few parameters affect microbead size: applied voltage, electrode geometry, needle size, polarity arrangement and polymer concentration. The electrostatic droplet formation is one of the most precise methods, which enables one to produce spherical and uniform particles ranging from 100 up to 1000 μm. Most of the authors report that the encapsulated compounds (drugs, enzymes and living cells) remain unaltered after electrostatic extrusion. This technique seems to be particularly promising in biotechnology, pharmaceutical and cosmetics industries, where a low-temperature process, preserving heat-sensitive material is a prerequisite. Future efforts in developing of electrostatic extrusion should be directed towards adequately scaling-up for commercial purpose.
AB  - Uprkos širokom spektru moguće primene mikroinkapsulacije u medicini, farmaceutskoj, kozmetičkoj i prehrambenoj industriji, literaturni podaci o disperzionim tehnikama koje se koriste u te svrhe su vrlo oskudni. U ovom radu istaknut je značaj elektrostatičke ekstruzije za inkapsulaciju ćelija i bioaktivnih komponenti u hidrogel mikročestice. Elektrostatička ekstruzija je jednostavna, precizna, efikasna i ekonomski isplativa metoda, a optimizacijom nekoliko procesnih parametara moguće je dobiti uniformne čestice sa inkapsuliranim biološkim materijalom željenog prečnika (100-1000 μm). Budući napori u razvoju ove disperzione tehnike trebalo bi da budu usmereni ka uvećanju razmera procesa.
PB  - Association of Chemical Engineers of Serbia
T2  - Hemijska industrija
T1  - Electrostatic extrusion as a dispersion technique for encapsulation of cells and bioactive compounds
T1  - Elektrostatička ekstruzija kao disperziona tehnika za inkapsulaciju ćelija i biološki aktivnih supstanci
EP  - 517
IS  - 4
SP  - 505
VL  - 66
DO  - 10.2298/HEMIND111209013K
ER  - 
@article{
author = "Kostić, Ivana T. and Balanč, Bojana and Đorđević, Verica and Lević, Steva and Nedović, Viktor and Bugarski, Branko",
year = "2012",
abstract = "Significant development of cells and bioactive compound encapsulation technologies is taking place due to an exceptional possibility of their application in various scientific disciplines, including biomedicine, pharmacy, cosmetology, food and agricultural sciences, beverage production, industrial waste treatment. Despite the broad application of microencapsulation, the literature reviews on dispersion techniques for microcapsule/microbead production, their advantages, restrictions and drawbacks are scarce. The purpose of this paper is to assess the possibilities of electrostatic extrusion for encapsulation of biological material, including living cells in hydrogel microbeads. The paper presents an overview of the mechanisms of droplet formation and controlling experimental parameters for producing microbeads by means of electrostatic extrusion. Electrostatic droplet formation utilizes a special type of physical process taking advantage of electrostatic effects occurring in flowing conductive liquids after introduction of an electric field. When an electrostatic field is applied to the metal needle and an electric charge is induced in the liquid flowing out of the needle, the size of droplet detaching from the needle tip decreases as a function of applied electrostatic field. It has been shown that few parameters affect microbead size: applied voltage, electrode geometry, needle size, polarity arrangement and polymer concentration. The electrostatic droplet formation is one of the most precise methods, which enables one to produce spherical and uniform particles ranging from 100 up to 1000 μm. Most of the authors report that the encapsulated compounds (drugs, enzymes and living cells) remain unaltered after electrostatic extrusion. This technique seems to be particularly promising in biotechnology, pharmaceutical and cosmetics industries, where a low-temperature process, preserving heat-sensitive material is a prerequisite. Future efforts in developing of electrostatic extrusion should be directed towards adequately scaling-up for commercial purpose., Uprkos širokom spektru moguće primene mikroinkapsulacije u medicini, farmaceutskoj, kozmetičkoj i prehrambenoj industriji, literaturni podaci o disperzionim tehnikama koje se koriste u te svrhe su vrlo oskudni. U ovom radu istaknut je značaj elektrostatičke ekstruzije za inkapsulaciju ćelija i bioaktivnih komponenti u hidrogel mikročestice. Elektrostatička ekstruzija je jednostavna, precizna, efikasna i ekonomski isplativa metoda, a optimizacijom nekoliko procesnih parametara moguće je dobiti uniformne čestice sa inkapsuliranim biološkim materijalom željenog prečnika (100-1000 μm). Budući napori u razvoju ove disperzione tehnike trebalo bi da budu usmereni ka uvećanju razmera procesa.",
publisher = "Association of Chemical Engineers of Serbia",
journal = "Hemijska industrija",
title = "Electrostatic extrusion as a dispersion technique for encapsulation of cells and bioactive compounds, Elektrostatička ekstruzija kao disperziona tehnika za inkapsulaciju ćelija i biološki aktivnih supstanci",
pages = "517-505",
number = "4",
volume = "66",
doi = "10.2298/HEMIND111209013K"
}
Kostić, I. T., Balanč, B., Đorđević, V., Lević, S., Nedović, V.,& Bugarski, B.. (2012). Electrostatic extrusion as a dispersion technique for encapsulation of cells and bioactive compounds. in Hemijska industrija
Association of Chemical Engineers of Serbia., 66(4), 505-517.
https://doi.org/10.2298/HEMIND111209013K
Kostić IT, Balanč B, Đorđević V, Lević S, Nedović V, Bugarski B. Electrostatic extrusion as a dispersion technique for encapsulation of cells and bioactive compounds. in Hemijska industrija. 2012;66(4):505-517.
doi:10.2298/HEMIND111209013K .
Kostić, Ivana T., Balanč, Bojana, Đorđević, Verica, Lević, Steva, Nedović, Viktor, Bugarski, Branko, "Electrostatic extrusion as a dispersion technique for encapsulation of cells and bioactive compounds" in Hemijska industrija, 66, no. 4 (2012):505-517,
https://doi.org/10.2298/HEMIND111209013K . .

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