4.6 Article

Molecular and cellular dissection of the oxysterol-binding protein cycle through a fluorescent inhibitor

Journal

JOURNAL OF BIOLOGICAL CHEMISTRY
Volume 295, Issue 13, Pages 4277-4288

Publisher

AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.RA119.012012

Keywords

lipid transport; cholesterol; phosphoinositide; Golgi; protein drug interaction; lipid-transfer protein; ORPphilin; OSBP; schweinfurthin

Funding

  1. CNRS
  2. Inserm
  3. Agence Nationale de la Recherche [ANR-15-CE11-0027-02, ANR-1 1-LABX-0028-01]
  4. SATT ParisSaclay (Project Glioved)
  5. CNRS (IC SN, France)
  6. VAST (Institute of Marine Biochemistry, Vietnam)
  7. Fondation pour la Recherche Medicale Convention [DEQ20180339156 Equipes FRM 2018]
  8. Universite Cote d'Azur
  9. Agence Nationale de la Recherche (ANR) [ANR-15-CE11-0027] Funding Source: Agence Nationale de la Recherche (ANR)

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ORPphilins are bioactive natural products that strongly and selectively inhibit the growth of some cancer cell lines and are proposed to target intracellular lipid-transfer proteins of the oxysterol-binding protein (OSBP) family. These conserved proteins exchange key lipids, such as cholesterol and phosphatidylinositol 4-phosphate (PI(4)P), between organelle membranes. Among ORPphilins, molecules of the schweinfurthin family interfere with intracellular lipid distribution and metabolism, but their functioning at the molecular level is poorly understood. We report here that cell line sensitivity to schweinfurthin G (SWG) is inversely proportional to cellular OSBP levels. By taking advantage of the intrinsic fluorescence of SWG, we followed its fate in cell cultures and show that its incorporation at the trans-Golgi network depends on cellular abundance of OSBP. Using in vitro membrane reconstitution systems and cellular imaging approaches, we also report that SWG inhibits specifically the lipid transfer activity of OSBP. As a consequence, post-Golgi trafficking, membrane cholesterol levels, and PI(4)P turnover were affected. Finally, using intermolecular FRET analysis, we demonstrate that SWG directly binds to the lipid-binding cavity of OSBP. Collectively these results describe SWG as a specific and intrinsically fluorescent pharmacological tool for dissecting OSBP properties at the cellular and molecular levels. Our findings indicate that SWG binds OSBP with nanomolar affinity, that this binding is sensitive to the membrane environment, and that SWG inhibits the OSBP-catalyzed lipid exchange cycle.

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