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Preparation and Characterization of Nanoliposomes for the Entrapment of Bioactive Hydrophilic Globular Proteins
Published on: August 31, 2019
How docetaxel entrapment, vesicle size, zeta potential and stability change with liposome composition-A formulation
Ann Mari Holsæter1, Kristina Wizgird2, Iselin Karlsen1
1Drug Transport and Delivery Research Group, Department of Pharmacy, Faculty of Health Sciences, UiT The Arctic University of Norway, Tromsø 9037, Norway.
Abstract:
Limitations of the anticancer drug product Taxotere® have encouraged researchers to entrap the active ingredient docetaxel (DTX) into nanocarriers such as liposomes. However, until now no DTX-liposome formulation has reached the clinic. Hence, in the present study, different Soy-PC based DTX-liposome formulations were screened in an attempt to identify lipid-compositions with promising DTX-entrapment (DTX-EE). Various other quality attributes, such as vesicle size and morphology, poly dispersity index (PDI), zeta potential (ZP), stability and in vitro drug release were also investigated. In an initial study, the inclusion of charged lipids within the liposome bilayer was observed to have a positive effect on DTX-EE. Thus, cationic DOTAP (1,2-Dioleoyl-3-trimethylammonium-propane) and anionic DMPG (1,2-Dimyristoyl-sn-glycero-3-phospho-(1'-rac-glycerol) lipids were selected for further investigations. With anionic DMPG, only a temporary rise in EE was gained with ≥ 20% (w/w) DMPG in Soy-PC lipid-based liposomes, whereas a concentration-dependent increase in EE was observed with cationic DOTAP. A DTX-EE > 95% was obtained with only 5% (w/w) DOTAP in Soy-PC, while neutral liposomes formed from Soy-PC alone, gave 41.5% DTX-EE. In the stability study, a DOTAP concentration > 10% (w/w) in Soy-PC was found to facilitate a stable DTX-EE > 90% after 12 weeks storage. The positive effect of cationic lipids on the EE was confirmed when replacing cholesterol (CHOL), initially shown to suppress DTX-entrapment, with cationic 3ß-[N-(N',N'-dimethylaminoethane)-carbamoyl]Cholesterol (DC-CHOL). Here, DTX-EE was improved from 29.8% to 92.0% (w/w) with 10% (w/w) CHOL and DC-CHOL in Soy-PC, respectively. Finally, PEGylation of DOTAP-liposomes with DSPE-PEG2000 and DSPE-PEG750 reduced the DTX-EE relative to DOTAP-liposome with no PEGylation. As with the DMPG-liposomes, a temporarily raised affinity between DTX and liposomes was obtained with anionic DSPE-PEGylation of Soy-PC liposomes, however, this effect was not maintained after 4 weeks storage. However, in a dialysis set-up, cationic DOTAP-liposomes released DTX to a higher extent than PEGylated liposomes. Thus, the optimal formulation with regard to storage stability and in vivo performance need to be investigated further, applying conditions that are closer to mimic the in vivo-situation. Applying the Dual Asymmetric Centrifugation (DAC) method in liposome production appears favourable due to its good reproducibility. The observed increase in DTX entrapment with cationic lipids or PEGylation appears scalable into pilot manufacturing scale.
Insights
Researchers developed novel docetaxel (DTX) liposomes using cationic lipids, achieving over 95% drug entrapment. These Soy-PC based formulations show promise for improved anticancer drug delivery, with potential for scalable manufacturing.
Area of Science:
- Nanotechnology
- Pharmaceutical Sciences
- Drug Delivery
Background:
- Limitations of Taxotere® (docetaxel) necessitate improved delivery systems.
- Liposomes are explored as nanocarriers for docetaxel (DTX), but clinical formulations are lacking.
- Soy-PC based liposomes are investigated for enhanced DTX entrapment and stability.
Purpose of the Study:
- To screen Soy-PC based liposome formulations for optimal docetaxel entrapment efficiency (DTX-EE).
- To evaluate the impact of charged lipids (DOTAP, DMPG) and cholesterol derivatives on DTX-EE.
- To assess liposome quality attributes including size, morphology, PDI, ZP, stability, and in vitro drug release.
Main Methods:
- Formulation of Soy-PC based liposomes with varying concentrations of DOTAP, DMPG, and DC-CHOL.
- Characterization of liposomes for vesicle size, morphology, PDI, and ZP.
- Determination of DTX-EE using established methods.
- Stability studies assessing DTX-EE over 12 weeks.
- In vitro drug release studies using a dialysis method.
- Evaluation of PEGylation effects (DSPE-PEG2000, DSPE-PEG750) on DTX-EE and release.
Main Results:
- Cationic DOTAP significantly increased DTX-EE in a concentration-dependent manner, reaching >95% with 5% DOTAP.
- Anionic DMPG provided only a temporary increase in DTX-EE.
- Replacing cholesterol with cationic DC-CHOL improved DTX-EE from 29.8% to 92.0%.
- PEGylation of DOTAP-liposomes reduced DTX-EE, though anionic PEGylation showed a temporary increase.
- DOTAP-liposomes demonstrated higher DTX release compared to PEGylated versions.
- Dual Asymmetric Centrifugation (DAC) method showed good reproducibility for liposome production.
Conclusions:
- Cationic lipids, particularly DOTAP, are crucial for achieving high docetaxel entrapment in Soy-PC liposomes.
- Formulations with >10% DOTAP exhibited stable DTX-EE (>90%) after 12 weeks.
- Further investigation is needed to optimize formulations for storage stability and in vivo performance.
- The DAC method is suitable for scalable liposome production.

