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Liposomal Co-Delivery of Acteoside, CBD, and Naringenin: A Synergistic Strategy Against Gliomas
Jagoda Szkudlarek1,2, Ludwika Piwowarczyk1, Violetta Krajka-Kuźniak3
1Department of Pharmaceutical Chemistry, Poznan University of Medical Sciences, 3 Rokietnicka, 60-806 Poznań, Poland.
Abstract:
Background/Objectives: Adult-type diffuse gliomas, including astrocytoma and glioblastoma multiforme (GBM), are brain tumors with a very poor prognosis. While current treatment options for glioma patients are not providing satisfactory outcomes, research indicates that natural compounds could serve as alternative treatments. However, their low bioavailability requires nanotechnology solutions, such as liposomes. Methods: In this study, we propose the co-encapsulation of acteoside (ACT) with other natural compounds, cannabidiol (CBD) or naringenin (NG), in a cationic liposomal nanoformulation consisting of DOTAP and POPC lipids, which were prepared using the dry lipid film method. The liposomes were characterized by their physicochemical properties, including particle size, zeta potential, and polydispersity index (PDI), with additional analyses performed using 1H Nuclear Magnetic Resonance (NMR). Furthermore, biological experiments were performed with U-87 MG astrocytoma and U-138 MG GBM cell lines and non-cancerous MRC-5 lung fibroblasts using the MTT assay and evaluating the expression of Bax and Bcl-xL to evaluate their potential as anticancer agents. Conclusions: The IC50 values for the nanoformulations in U-138 MG cells at 48 h were 6 µM for ACT + CBD and 5 µM for ACT + NG. ACT and CBD or NG demonstrated a potential synergistic effect against GBM in a liposomal formulation. Notably, treatment with ACT + CBD (5 µM) and ACT + NG (5 µM) liposomal formulations significantly upregulated Bax protein level in U-138 cells at both 24 and 48 h. In parallel, ACT + CBD (5 µM) also modulated Bcl-xL protein level in both U-138 MG and U-87 MG cell lines at the same time points. The obtained nanoformulations were homogeneous and stable for 21 days, evidenced by a narrow particle size distribution, a low polydispersity index (PDI) < 0.3, and a positive zeta potential.
Insights
Natural compounds like acteoside (ACT) with cannabidiol (CBD) or naringenin (NG) show promise for treating brain tumors. Liposomal nanoformulations enhance their effectiveness against astrocytoma and glioblastoma multiforme (GBM).
Area of Science:
- Nanotechnology
- Pharmacology
- Oncology
Background:
- Adult-type diffuse gliomas, including astrocytoma and glioblastoma multiforme (GBM), have a poor prognosis.
- Current glioma treatments are insufficient, prompting research into natural compounds.
- Low bioavailability of natural compounds necessitates nanotechnology, such as liposomes, for effective delivery.
Purpose of the Study:
- To develop cationic liposomal nanoformulations co-encapsulating acteoside (ACT) with either cannabidiol (CBD) or naringenin (NG).
- To evaluate the physicochemical properties and anticancer potential of these nanoformulations against glioma cell lines.
Main Methods:
- Preparation of cationic liposomes using DOTAP and POPC lipids via the dry lipid film method.
- Characterization of liposomes (particle size, zeta potential, PDI) and co-encapsulated compounds (1H NMR).
- In vitro evaluation of cytotoxicity (MTT assay) and apoptosis-related protein expression (Bax, Bcl-xL) in U-87 MG, U-138 MG, and MRC-5 cell lines.
Main Results:
- Liposomal nanoformulations containing ACT + CBD and ACT + NG showed low IC50 values against U-138 MG GBM cells (6 µM and 5 µM at 48 h, respectively).
- Synergistic anticancer effects were observed for ACT combined with CBD or NG within liposomes against GBM.
- Significant upregulation of Bax and modulation of Bcl-xL protein levels were noted in glioma cells treated with the nanoformulations.
Conclusions:
- Co-encapsulation of ACT with CBD or NG in cationic liposomes presents a promising strategy for GBM treatment.
- The nanoformulations demonstrated stability and favorable physicochemical properties.
- The observed modulation of apoptosis-related proteins suggests a mechanism for the enhanced anticancer activity.

