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

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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