Rapamycin-Loaded Lipid Nanocapsules Induce Selective Inhibition of the mTORC1-Signaling Pathway in Glioblastoma Cells

Delphine Séhédic1, Loris Roncali1, Amel Djoudi1

  • 1Univ Angers, Université de Nantes, Inserm, CRCINA, SFR ICAT, Angers, France.

Insights

Researchers developed safe rapamycin nanocarriers (LNC-rapa) for cancer treatment. These nanocarriers selectively inhibit the mTORC1 pathway in glioblastoma cells, showing potential despite not synergizing with radiation.

Area of Science:

  • Biotechnology
  • Nanomedicine
  • Oncology

Background:

  • The PI3K/Akt/mTOR pathway is crucial in cancer, including glioblastoma.
  • Rapamycin inhibits mTOR but faces delivery challenges.
  • Novel formulations are needed for rapamycin's clinical development.

Purpose of the Study:

  • To develop a safe and effective rapamycin nanocarrier system.
  • To investigate the formulation of lipid nanocapsules (LNCs) for rapamycin delivery.
  • To evaluate the efficacy of rapamycin-loaded LNCs (LNC-rapa) in glioblastoma models.

Main Methods:

  • Phase inversion process to create rapamycin-loaded LNCs (LNC-rapa).
  • Characterization of LNC-rapa size, polydispersity, zeta potential, and encapsulation efficiency.
  • In vitro evaluation using U87MG glioblastoma cells, Western blot analysis, and varying oxygen conditions.

Main Results:

  • LNC-rapa are ~110 nm with good encapsulation efficiency (~69%).
  • LNC-rapa selectively inhibited mTORC1 phosphorylation (Ser2448) at 1 μM.
  • Normoxia enhanced sensitivity to mTOR inhibition compared to hypoxia.
  • mTOR inhibition induced negative feedback via Akt phosphorylation, especially in hypoxia.

Conclusions:

  • Lipid nanocapsules provide a promising formulation for rapamycin delivery.
  • LNC-rapa selectively inhibit the mTORC1 pathway in glioblastoma cells.
  • Oxygen levels influence cellular response to mTOR inhibition, suggesting context-dependent therapeutic strategies.