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Partition of parthenolide in ternary {block copolymer + biocompatible ionic liquid or natural deep eutectic solvent + water} systems

Authorized Users Only
2023
Authors
Lazarević, Dajana
Mušović, Jasmina
Trtić-Petrović, Tatjana M.
Gadžurić, Slobodan
Article (Published version)
Metadata
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Abstract
In this work, aqueous biphasic systems (ABSs) formed by copolymers, ionic liquids (ILs) and natural deep eutectic solvents (NADES) have been demonstrated to be effective separation platforms for the extraction of hydrophobic pharmaceutical ingredients such as parthenolide (PAR). This work addresses the determination of the liquid–liquid equilibrium of ABS composed of choline lactate IL or choline chloride – lactic acid NADES and two different block copolymers Pluronic (PL17R4 and PL10R5), and their influence on the ABS formation and extraction efficiency of PAR. The ability of Pluronics to form ABS is compared to widely used polypropylene glycol polymer (PPG400). Comparing the effect of the ionic liquid and NADES on the ABS formation, it is shown that both salting-our reagents successfully form ABS and do not affect the extraction efficiency of PAR. The main influence on the high parthenolide extraction efficiency (>96%) is governed by the hydrophobic interactions between Pluronic and ...investigated compound, regardless on the applied salting-out reagent. Due to a high extraction efficiency achieved in PL-rich phase and promissing medical features of PAR, obtained results showed that this phase could be used as biocompatible drug delivery system. Avoiding commercially available organic solvents, elevated temperatures and pressure, the proposed method is greener alternative for PAR extraction.

Keywords:
ABS / Ionic liquids / NADES / Parthenolide / Pluronic
Source:
Separation and Purification Technology, 2023, 314, 123653-
Funding / projects:
  • Ministry of Science, Technological Development and Innovation of the Republic of Serbia, institutional funding - 200017 (University of Belgrade, Institute of Nuclear Sciences 'Vinča', Belgrade-Vinča) (RS-MESTD-inst-2020-200017)
  • Ministry of Science, Technological Development and Innovation of the Republic of Serbia, institutional funding - 200125 (University of Novi Sad, Faculty of Science) (RS-MESTD-inst-2020-200125)

DOI: 10.1016/j.seppur.2023.123653

ISSN: 1383-5866

WoS: 000965236900001

Scopus: 2-s2.0-85150842624
[ Google Scholar ]
6
4
URI
https://vinar.vin.bg.ac.rs/handle/123456789/10772
Collections
  • 010 - Laboratorija za fiziku
  • Radovi istraživača
Institution/Community
Vinča
TY  - JOUR
AU  - Lazarević, Dajana
AU  - Mušović, Jasmina
AU  - Trtić-Petrović, Tatjana M.
AU  - Gadžurić, Slobodan
PY  - 2023
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/10772
AB  - In this work, aqueous biphasic systems (ABSs) formed by copolymers, ionic liquids (ILs) and natural deep eutectic solvents (NADES) have been demonstrated to be effective separation platforms for the extraction of hydrophobic pharmaceutical ingredients such as parthenolide (PAR). This work addresses the determination of the liquid–liquid equilibrium of ABS composed of choline lactate IL or choline chloride – lactic acid NADES and two different block copolymers Pluronic (PL17R4 and PL10R5), and their influence on the ABS formation and extraction efficiency of PAR. The ability of Pluronics to form ABS is compared to widely used polypropylene glycol polymer (PPG400). Comparing the effect of the ionic liquid and NADES on the ABS formation, it is shown that both salting-our reagents successfully form ABS and do not affect the extraction efficiency of PAR. The main influence on the high parthenolide extraction efficiency (>96%) is governed by the hydrophobic interactions between Pluronic and investigated compound, regardless on the applied salting-out reagent. Due to a high extraction efficiency achieved in PL-rich phase and promissing medical features of PAR, obtained results showed that this phase could be used as biocompatible drug delivery system. Avoiding commercially available organic solvents, elevated temperatures and pressure, the proposed method is greener alternative for PAR extraction.
T2  - Separation and Purification Technology
T1  - Partition of parthenolide in ternary {block copolymer + biocompatible ionic liquid or natural deep eutectic solvent + water} systems
VL  - 314
SP  - 123653
DO  - 10.1016/j.seppur.2023.123653
ER  - 
@article{
author = "Lazarević, Dajana and Mušović, Jasmina and Trtić-Petrović, Tatjana M. and Gadžurić, Slobodan",
year = "2023",
abstract = "In this work, aqueous biphasic systems (ABSs) formed by copolymers, ionic liquids (ILs) and natural deep eutectic solvents (NADES) have been demonstrated to be effective separation platforms for the extraction of hydrophobic pharmaceutical ingredients such as parthenolide (PAR). This work addresses the determination of the liquid–liquid equilibrium of ABS composed of choline lactate IL or choline chloride – lactic acid NADES and two different block copolymers Pluronic (PL17R4 and PL10R5), and their influence on the ABS formation and extraction efficiency of PAR. The ability of Pluronics to form ABS is compared to widely used polypropylene glycol polymer (PPG400). Comparing the effect of the ionic liquid and NADES on the ABS formation, it is shown that both salting-our reagents successfully form ABS and do not affect the extraction efficiency of PAR. The main influence on the high parthenolide extraction efficiency (>96%) is governed by the hydrophobic interactions between Pluronic and investigated compound, regardless on the applied salting-out reagent. Due to a high extraction efficiency achieved in PL-rich phase and promissing medical features of PAR, obtained results showed that this phase could be used as biocompatible drug delivery system. Avoiding commercially available organic solvents, elevated temperatures and pressure, the proposed method is greener alternative for PAR extraction.",
journal = "Separation and Purification Technology",
title = "Partition of parthenolide in ternary {block copolymer + biocompatible ionic liquid or natural deep eutectic solvent + water} systems",
volume = "314",
pages = "123653",
doi = "10.1016/j.seppur.2023.123653"
}
Lazarević, D., Mušović, J., Trtić-Petrović, T. M.,& Gadžurić, S.. (2023). Partition of parthenolide in ternary {block copolymer + biocompatible ionic liquid or natural deep eutectic solvent + water} systems. in Separation and Purification Technology, 314, 123653.
https://doi.org/10.1016/j.seppur.2023.123653
Lazarević D, Mušović J, Trtić-Petrović TM, Gadžurić S. Partition of parthenolide in ternary {block copolymer + biocompatible ionic liquid or natural deep eutectic solvent + water} systems. in Separation and Purification Technology. 2023;314:123653.
doi:10.1016/j.seppur.2023.123653 .
Lazarević, Dajana, Mušović, Jasmina, Trtić-Petrović, Tatjana M., Gadžurić, Slobodan, "Partition of parthenolide in ternary {block copolymer + biocompatible ionic liquid or natural deep eutectic solvent + water} systems" in Separation and Purification Technology, 314 (2023):123653,
https://doi.org/10.1016/j.seppur.2023.123653 . .

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