Cellular transport and lipid interactions of miltefosine

Gillian Barratt1, Michĕle Saint-Pierre-Chazalet, Philippe Marie Loiseau

  • 1CNRS UMR 8612, 5 rue J.B. Clément, 92296 CHATENAY-MALABRY, France. gillian.barratt@u-psud.fr

Insights

Miltefosine (HePC) is an anticancer drug that effectively treats Leishmania parasites orally. Its mechanism involves interacting with cell membrane lipids, influencing cellular processes, and potentially being delivered via liposomes to reduce toxicity.

Area of Science:

  • Pharmacology
  • Biochemistry
  • Parasitology

Background:

  • Miltefosine (hexadecylphosphocholine, HePC) was initially developed as an anticancer agent.
  • HePC exhibits significant oral activity against Leishmania parasites, marketed as Impavido(R).

Purpose of the Study:

  • To elucidate the mechanism of action of HePC, focusing on its interaction with membrane lipids.
  • To explore HePC uptake mechanisms in cancer cells and Leishmania parasites.
  • To review the use of liposomes for HePC delivery.

Main Methods:

  • Investigated HePC interactions with model membrane lipids, including phospholipids and sterols.
  • Examined HePC effects on enzymes involved in phospholipid metabolism and apoptosis induction in cancer cells.
  • Proposed a mechanism for HePC uptake in Leishmania parasites involving aminophospholipid translocase.
  • Utilized Caco-2 cell models to study oral absorption processes.

Main Results:

  • HePC shows affinity for cholesterol-rich lipid rafts.
  • HePC interferes with key enzymes in phospholipid metabolism and induces apoptosis in cancer cells.
  • A specific drug uptake mechanism involving LdMT-LdRos3 was proposed for Leishmania.
  • Evidence suggests similar absorption mechanisms in the Caco-2 intestinal cell model.

Conclusions:

  • HePC's mechanism of action is linked to its interaction with membrane lipids and lipid rafts.
  • Understanding HePC uptake is crucial for both anticancer and antiparasitic applications.
  • Liposomal delivery systems offer a promising approach to mitigate HePC's toxic side effects.

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