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Updated: May 29, 2026

Preparation and Characterization of Lipophilic Doxorubicin Pro-drug Micelles
Published on: August 2, 2016
Phospholipase A(2)-susceptible liposomes of anticancer double lipid-prodrugs
Ahmad Arouri1, Ole G Mouritsen
1MEMPHYS(1)-Center for Biomembrane Physics, Department of Physics and Chemistry, University of Southern Denmark, Odense, Denmark. arouri@memphys.sdu.dk
Abstract:
A novel approach to anticancer drug delivery is presented based on lipid-like liposome-forming anticancer prodrugs that are susceptible to secretory phospholipase A(2) (sPLA(2)) that is overexpressed in several cancer types. The approach provides a selective unloading of anticancer drugs at the target tissues, as well as circumvents the necessity for "conventional" drug loading. In our attempts to improve the performance of the liposomes in vivo, several PEGylated and non-PEGylated liposomal formulations composed of a retinoid prodrug premixed with the sPLA(2)-hydrolyzable DPPC (1,2-dipalmitoyl-sn-glycero-3-phosphocholine) were prepared. Besides favorably modifying the physicochemical properties of the liposomes, the incorporation of DPPC and PEG-lipids in the liposomes should substantially enhance the enzymatic activity, as concluded from literature. In addition, one can reap benefits from the presumed permeability enhancing effect of the liberated fatty acids and lysolipids. The size distribution of the prepared liposomes as well as their phase behavior, enzymatic hydrolysis, and cytotoxicity, in the presence and absence of sPLA(2), were determined. The liposomes were around 100nm in diameter and in the gel/fluid coexistence region at 37°C. The enzymatic hydrolysis of the prodrug was pronouncedly accelerated upon the premixing with DPPC, and the hydrolysis was further enhanced by PEGylation. Interestingly, the faster hydrolysis of the prodrug and the released fatty acids and lysolipids from DPPC did not improve the cytotoxicity of the mixture; the effect of combining the prodrug with DPPC was additive and not synergistic. The data presented here question the significance of the permeability enhancing effects claimed for fatty acids and lysolipids at the target cell membrane, and whether these effects can be achieved using physiologically achievable concentrations of fatty acids and lysolipids.
Insights
Novel liposome-forming anticancer prodrugs are designed for targeted drug delivery. These prodrugs are activated by secretory phospholipase A(2) (sPLA(2)) overexpressed in cancers, offering selective drug release.
Area of Science:
- Biochemistry
- Materials Science
- Oncology
Background:
- Anticancer drug delivery faces challenges with conventional methods.
- Secretory phospholipase A(2) (sPLA(2)) is overexpressed in many cancer types, presenting a potential therapeutic target.
- Lipid-like prodrugs offer a novel approach for targeted drug release.
Purpose of the Study:
- To develop and characterize novel liposome-forming anticancer prodrugs.
- To investigate the role of 1,2-dipalmitoyl-sn-glycero-3-phosphocholine (DPPC) and PEGylation in sPLA(2)-mediated drug release.
- To evaluate the in vitro cytotoxicity and permeability-enhancing effects of these formulations.
Main Methods:
- Preparation of PEGylated and non-PEGylated liposomal formulations containing a retinoid prodrug and DPPC.
- Characterization of liposome size, phase behavior, and enzymatic hydrolysis by sPLA(2).
- Assessment of cytotoxicity in the presence and absence of sPLA(2).
Main Results:
- Liposomes were approximately 100nm in diameter and exhibited a gel/fluid coexistence phase behavior at 37°C.
- DPPC significantly accelerated prodrug hydrolysis, with further enhancement by PEGylation.
- Faster hydrolysis did not lead to synergistic cytotoxicity; effects were additive.
- The study questions the significance of permeability enhancement by liberated fatty acids and lysolipids at physiological concentrations.
Conclusions:
- Liposome-based anticancer prodrugs susceptible to sPLA(2) offer a promising strategy for targeted drug delivery.
- DPPC incorporation enhances enzymatic hydrolysis, but not necessarily synergistic therapeutic effects.
- The presumed permeability-enhancing role of fatty acids and lysolipids at target cell membranes requires further investigation at physiologically relevant concentrations.
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