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Updated: Jan 28, 2026

A Facile and Efficient Approach for the Production of Reversible Disulfide Cross-linked Micelles
Published on: December 23, 2016
Combined administration of PTX and S-HM-3 in TPGS/Solutol micelle system for oncotarget therapy
Weiguang Li1, Jianpeng Xue1, Hanmei Xu1
1State Key Laboratory of Natural Medicines, The Engineering Research Center of Synthetic Polypeptide Drug Discovery and Evaluation of Jiangsu Province, Department of Marine Pharmacy, China Pharmaceutical University, Nanjing 211198, PR China, 13913925346@126.com.
Background:
S-HM-3 is a tumor angiogenesis inhibitor with short half-life (25 min). In this present, TPGS/Solutol polymeric micelles was prepared to load together insoluble paclitaxel (PTX) and soluble S-HM-3, expecting to together deliver them to the tumor site with long-circulating, targeting function and combating multi-drug resistance (MDR).
Materials And Methods:
PTX and S-HM-3 loaded TPGS/Solutol micelles (PHTSm) were prepared by the method of thin-film evaporation, and characterized by dynamic light scattering, transmission electron microscope (TEM), atomic force microscopy (AFM) and releasing properties. The anticancer effect of the polymeric micelles system was evaluated and confirmed by experiments of in vitro cell uptake study, in vivo pharmacokinetics, and pharmacodynamics studies.
Results:
Micelles exhibited smooth spherical morphology with 20~30 nm and low critical micelle concentration (CMC) value of 0.000124 mg/mL. Only about 30% of PTX were slowly released from micelles at 48h, which can beneficial to the long circulation in blood. The results of in vitro cell assay proved that S-HM-3 could be easier to get into MDA-MB-231 cell, and its angiogenesis inhibition ability was also enhanced after integrating into micelles. In particular, the results of in vivo studies showed that the half-life of S-HM-3 and PTX was significantly prolonged 25.27 and 5.54 folds, and their AUC0-∞ was enhanced 129.78 and 15.65 times, respectively. Meanwhile 83.05% tumor inhibition rate of PHTSm was achieved compared with 59.99% of PTX.
Conclusions:
TPGS and Solutol micelles hold promising potential to resolve the conundrum of combined therapy of cytotoxic drug and angiogenesis inhibitor with different physicochemical property and anticancer mechanism in clinical use.
Insights
This study developed TPGS/Solutol polymeric micelles to co-deliver paclitaxel and S-HM-3, significantly extending drug half-life and enhancing tumor inhibition for improved cancer therapy.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapeutics
Background:
- S-HM-3, a tumor angiogenesis inhibitor, has a short half-life.
- Paclitaxel (PTX) is an insoluble chemotherapy drug.
- Developing effective drug delivery systems for combined therapies is challenging.
Purpose of the Study:
- To create TPGS/Solutol polymeric micelles for co-delivery of PTX and S-HM-3.
- To enhance drug circulation time, tumor targeting, and overcome multi-drug resistance (MDR).
Main Methods:
- Polymeric micelles (PHTSm) prepared using thin-film evaporation.
- Characterization via dynamic light scattering, TEM, and AFM.
- In vitro cell uptake, in vivo pharmacokinetics, and pharmacodynamics evaluated.
Main Results:
- PHTSm showed spherical morphology (20-30 nm) and low CMC.
- Slow PTX release (30% at 48h) supports prolonged circulation.
- In vivo studies showed significant half-life extension (S-HM-3: 25.27-fold, PTX: 5.54-fold) and enhanced AUC.
- Achieved 83.05% tumor inhibition rate.
Conclusions:
- TPGS/Solutol micelles effectively co-deliver PTX and S-HM-3.
- The system demonstrates potential for combined cancer therapy with improved pharmacokinetic profiles.
- This approach offers a promising strategy for clinical applications involving drugs with different properties.
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