Surface Hydrophilicity of Poly(l-Lactide) Acid Polymer Film Changes the Human Adult Adipose Stem Cell Architecture
Abstract
1. Introduction
2. Materials and Methods
2.1. Preparation and Caracterization of PLLA Polymer Films
2.1.1. Processing of PLLA Films
2.1.2. PLLA Oxygen-Plasma Treatment Films
2.1.3. PLLA and PLLA+O2 Film Characterization
2.1.4. Protein Adsorption
2.2. Isolation and Culture of Human Adult Stem Cells
2.2.1. Adipose Stem Cells
2.2.2. Bone Marrow-Mesenchymal Stem Cells
2.2.3. Umbilical Blood Matrix Stem Cells
2.3. Culture of Human Adipose Stem Cells on PLLA and PLLA+O2 Films
2.4. Culture of Human BM-MSCs and Human UCMSCs on PLLA and PLLA+O2 Films
2.5. Cells Viability Assay
2.6. Immunofluorescences
2.7. Image Analysis
2.8. Field Emission Scanning Electron Microscopy (FESEM)
2.9. Statistical Analysis
3. Results
3.1. PLLA and PLLA+O2 Film Characterization
3.1.1. Surface Morphology Characterization of PLLA and PLLA+O2
3.1.2. Wettability Measurements
3.1.3. Protein Adsorption
3.2. Culture of hASCs on PLLA and PLLA+O2
3.3. Morphology of hASCs on PLLA and PLLA+O2
3.4. Adhesion of hASCs on PLLA and on PLLA+O2 Surfaces
3.5. hASCs Spheroids Formation on PLLA
3.6. Effect of PLLA Oxygen-Plasma Treatment on hBM-MSCs and hUCMSCs Cultures
4. Discussion
Author Contributions
Conflicts of Interest
References
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Argentati, C.; Morena, F.; Montanucci, P.; Rallini, M.; Basta, G.; Calabrese, N.; Calafiore, R.; Cordellini, M.; Emiliani, C.; Armentano, I.; et al. Surface Hydrophilicity of Poly(l-Lactide) Acid Polymer Film Changes the Human Adult Adipose Stem Cell Architecture. Polymers 2018, 10, 140. https://doi.org/10.3390/polym10020140
Argentati C, Morena F, Montanucci P, Rallini M, Basta G, Calabrese N, Calafiore R, Cordellini M, Emiliani C, Armentano I, et al. Surface Hydrophilicity of Poly(l-Lactide) Acid Polymer Film Changes the Human Adult Adipose Stem Cell Architecture. Polymers. 2018; 10(2):140. https://doi.org/10.3390/polym10020140
Chicago/Turabian StyleArgentati, Chiara, Francesco Morena, Pia Montanucci, Marco Rallini, Giuseppe Basta, Nicolino Calabrese, Riccardo Calafiore, Marino Cordellini, Carla Emiliani, Ilaria Armentano, and et al. 2018. "Surface Hydrophilicity of Poly(l-Lactide) Acid Polymer Film Changes the Human Adult Adipose Stem Cell Architecture" Polymers 10, no. 2: 140. https://doi.org/10.3390/polym10020140
APA StyleArgentati, C., Morena, F., Montanucci, P., Rallini, M., Basta, G., Calabrese, N., Calafiore, R., Cordellini, M., Emiliani, C., Armentano, I., & Martino, S. (2018). Surface Hydrophilicity of Poly(l-Lactide) Acid Polymer Film Changes the Human Adult Adipose Stem Cell Architecture. Polymers, 10(2), 140. https://doi.org/10.3390/polym10020140

