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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.
Abstract:
Inhibition of the PI3K/Akt/mTOR signaling pathway represents a potential issue for the treatment of cancer, including glioblastoma. As such, rapamycin that inhibits the mechanistic target of rapamycin (mTOR), the downstream effector of this signaling pathway, is of great interest. However, clinical development of rapamycin has floundered due to the lack of a suitable formulation of delivery systems. In the present study, a novel method for the formulation of safe rapamycin nanocarriers is investigated. A phase inversion process was adapted to prepare lipid nanocapsules (LNCs) loaded with the lipophilic and temperature sensitive rapamycin. Rapamycin-loaded LNCs (LNC-rapa) are ~110 nm in diameter with a low polydispersity index (<0.05) and the zeta potential of about -5 mV. The encapsulation efficiency, determined by spectrophotometry conjugated with filtration/exclusion, was found to be about 69%, which represents 0.6 wt% of loading capacity. Western blot analysis showed that LNC-rapa do not act synergistically with X-ray beam radiation in U87MG glioblastoma model in vitro. Nevertheless, it demonstrated the selective inhibition of the phosphorylation of mTORC1 signaling pathway on Ser2448 at a concentration of 1 μM rapamycin in serum-free medium. Interestingly, cells cultivated in normoxia (21% O2) seem to be more sensitive to mTOR inhibition by rapamycin than those cultivated in hypoxia (0.4% O2). Finally, we also established that mTOR phosphorylation inhibition by LNC-rapa induced a negative feedback through the activation of Akt phosphorylation. This phenomenon was more noticeable after stabilization of HIF-1α in hypoxia.
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.
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