Characterizing Extracellular Vesicles Generated from the Integra CELLine Culture System and Their Endocytic Pathways for Intracellular Drug Delivery
Abstract
:1. Introduction
2. Materials and Methods
2.1. Reagents
2.2. Cell Culture and EVs Isolation
2.2.1. Cell Culture Using the Integra CELLine Culture System
2.2.2. Cell Culture Using Conventional Flasks
2.2.3. Methods for EVs Isolation
2.3. Characterization of EVs
2.3.1. Evaluation of the EVs Yield
2.3.2. Nanoparticle Tracking Analysis (NTA)
2.3.3. Dynamic Light Scattering (DLS)
2.3.4. Cryogenic Transmission Electron Microscopy (Cryo-TEM)
2.3.5. Total Protein Content by Bicinchoninic Acid (BCA) Assay
2.4. Evaluation of the Cellular Uptake of EVs
2.4.1. The Kinetics of Cellular Uptake of EVs
2.4.2. Quantification of Cellular Uptake of EVs
2.5. Investigation of EVs Endocytic Pathways
2.5.1. Optimization of Inhibitor Pre-Treatment Concentration
2.5.2. Determination of Endocytic Pathways of sEVs and lEVs
2.6. Data Analysis
3. Results and Discussion
3.1. Evaluation of EVs Yield
3.1.1. EVs Yield by Measuring EVs Number
3.1.2. EVs Yield by Measuring EVs Protein Content
3.2. Characterization of EVs from the Integra CELLine Culture System
3.2.1. Size Distribution of EVs by NTA
3.2.2. Size Distribution and Zeta Potential of EVs by DLS
3.2.3. Morphology of EVs by Cryo-TEM
3.3. Evaluation of EVs Cellular Uptake
3.3.1. The Kinetics of Cellular Uptake of sEVs and lEVs
3.3.2. Quantification of Cellular Uptake of sEVs and lEVs
3.4. Comparison of Endocytic Pathways of sEVs and lEVs
3.4.1. Optimization of Endocytic Inhibitors Concentration
3.4.2. Different Endocytic Pathways of sEVs and lEVs
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Inhibitor/Structure | Pathway | Mechanism of Activity | Concentrations |
---|---|---|---|
Genistein | Caveolin-mediated endocytosis | A tyrosine kinase inhibitor, blocks the phosphorylation of caveolin-1 | 50 μg/mL [56] 75 nM [57] |
Chlorpromazine (CPZ) | Clathrin-mediated endocytosis | A cationic amphiphilic drug, inhibits clathrin-coated pit formation by relocating clathrin and its adapter proteins from the plasma membrane to the endosomes | 10 μg/mL [58,59] 1 μg/mL [60] 1 μM [61] |
Cytochalasin D (CytoD) | Actin-dependent endocytosis, i.e., phagocytosis and macropinocytosis | Block the actin polymerisation by occupying a faster-growing “barbed” end of actin filaments | 10 μg/mL [36] 1 μg/mL [62] 20 μM [63] |
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Geng, T.; Tian, L.; Paek, S.Y.; Leung, E.; Chamley, L.W.; Wu, Z. Characterizing Extracellular Vesicles Generated from the Integra CELLine Culture System and Their Endocytic Pathways for Intracellular Drug Delivery. Pharmaceutics 2024, 16, 1206. https://doi.org/10.3390/pharmaceutics16091206
Geng T, Tian L, Paek SY, Leung E, Chamley LW, Wu Z. Characterizing Extracellular Vesicles Generated from the Integra CELLine Culture System and Their Endocytic Pathways for Intracellular Drug Delivery. Pharmaceutics. 2024; 16(9):1206. https://doi.org/10.3390/pharmaceutics16091206
Chicago/Turabian StyleGeng, Tianjiao, Lei Tian, Song Yee Paek, Euphemia Leung, Lawrence W. Chamley, and Zimei Wu. 2024. "Characterizing Extracellular Vesicles Generated from the Integra CELLine Culture System and Their Endocytic Pathways for Intracellular Drug Delivery" Pharmaceutics 16, no. 9: 1206. https://doi.org/10.3390/pharmaceutics16091206
APA StyleGeng, T., Tian, L., Paek, S. Y., Leung, E., Chamley, L. W., & Wu, Z. (2024). Characterizing Extracellular Vesicles Generated from the Integra CELLine Culture System and Their Endocytic Pathways for Intracellular Drug Delivery. Pharmaceutics, 16(9), 1206. https://doi.org/10.3390/pharmaceutics16091206