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Uptake of New Lipid-coated Nanoparticles Containing Falcarindiol by Human Mesenchymal Stem Cells
Published on: February 9, 2019
Glimpse into the Cellular Internalization and Intracellular Trafficking of Lipid- Based Nanoparticles in Cancer Cells
Elham Kamal Kazemi1,2, Fereydoon Abedi-Gaballu1,3, Tala Farid Mohammad Hosseini1
1Department of Biology, Faculty of Natural Sciences, University of Tabriz, Tabriz, Iran.
Abstract:
Lipid-based nanoparticles, as drug delivery carriers, are commonly used for the delivery of anti-cancer therapeutic agents. Due to their smaller particle size and similarity to cell membranes, Lipid-based nanoparticles are readily internalized into cancer cells. Cancer cells also overexpress receptors for specific ligands, including folic acid, hyaluronic acid, and transferrin, on their surface, thus, allowing the use of their ligands for surface modification of the lipid-based nanoparticles for their specific recognition by receptors on cancer cells. This would also allow the gradual intracellular accumulation of the targeted functionalized nanoplatforms. These ligand-receptor interactions eventually enhance the internalization of desired drugs by increasing the nanoplatforms cellular uptake. The cellular internalization of the nanoplatforms varies and depends on their physicochemical properties, including particle size, zeta potential, and shape. The cellular uptake is also influenced by the types of ligand internalization pathways utilized by cells, such as phagocytosis, macropinocytosis, and multiple endocytosis pathways. This review classifies and discusses lipidbased nanoparticles engineered to carry specific ligands, their recognition by receptors on cancer cells, and their cellular internalization pathways. Moreover, the intracellular fate of nanoparticles decorated with specific ligands and their best internalization pathway (caveolae-mediated endocytosis) for safe cargo delivery are also discussed.
Insights
Targeted lipid-based nanoparticles enhance anti-cancer drug delivery by utilizing cancer cell receptors for improved uptake. Ligand functionalization and understanding cellular pathways optimize nanoplatforms for effective intracellular accumulation and drug release.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapeutics
Background:
- Lipid-based nanoparticles (LBPs) are crucial drug carriers for anti-cancer agents.
- LBPs exhibit excellent cellular internalization due to their size and membrane mimicry.
- Cancer cells overexpress specific surface receptors, enabling targeted delivery strategies.
Purpose of the Study:
- To review ligand-functionalized LBPs for targeted cancer therapy.
- To discuss receptor-ligand interactions and cellular uptake mechanisms.
- To explore the intracellular fate and optimal endocytosis pathways for LBPs.
Main Methods:
- Classification of ligand-engineered LBPs.
- Analysis of receptor-ligand binding dynamics.
- Evaluation of cellular internalization pathways (e.g., phagocytosis, macropinocytosis, endocytosis).
Main Results:
- Ligand modification enhances specific recognition and uptake by cancer cells.
- Physicochemical properties (size, zeta potential, shape) influence cellular internalization.
- Caveolae-mediated endocytosis is identified as an optimal pathway for safe cargo delivery.
Conclusions:
- Ligand-targeted LBPs offer a promising strategy for enhanced cancer drug delivery.
- Understanding cellular uptake mechanisms is key to optimizing nanoplatform design.
- Functionalized nanoplatforms facilitate targeted drug accumulation and release within cancer cells.
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