Hepatic Tumor Cell Morphology Plasticity under Physical Constraints in 3D Cultures Driven by YAP–mTOR Axis
Abstract
:1. Introduction
2. Results
2.1. Characterization of Collagen Scaffolds
2.2. HepG2 and Alexander Cells Change Their Size and Shape during Growth in Collagen Scaffolds
2.3. Cytoskeleton Remodeling and Modulation of YAP Signaling in Cells Grown in Collagen Scaffolds
2.4. YAP–mTOR Signaling Interplay under Mechanical Stress in Collagen Scaffolds
3. Discussion
4. Materials and Methods
4.1. Chemicals and Antibodies
4.2. Synthesis and Characterization of Collagen Scaffolds
4.3. Cell Lines and 3D Culturing
4.4. Assessment of Cell Viability
4.5. Cell Proliferation Analysis
4.6. Cell Extracts and Immunoblot Analysis
4.7. Immunofluorescence
4.8. Confocal Microscopy
4.9. Spinning Disk Super-Resolution Microscopy
4.10. Transient Transfection with siRNA
4.11. Quantification of YAP Subcellular Localization
4.12. Statistical Analysis
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Sample Description | Diffusion Times (ms) and Fractions 1 | |
---|---|---|
Scaffold Pores | Collagen Matrix | |
Alexa 647 in collagen scaffold (sample 1) | 0.35 ± 0.06 (26 ± 9)% | 0.63 ± 0.19 (45 ± 6)% |
Alexa 647 in collagen scaffold (sample 2) | 0.32 ± 0.06 (17 ± 3)% | 0.60 ± 0.08 (38 ± 4)% |
Alexa 647 in collagen scaffold (sample 3) | 0.22 ± 0.02 (21 ± 2)% | 0.43 ± 0.15 (45 ± 5)% |
Alexa 647 in collagen scaffold (sample 4) | 0.86 ± 0.37 (14 ± 2)% | 0.91 ± 0.33 (42 ± 2)% |
Dextran 3000-Alexa 488 (sample 3) | 1.32 ± 0.78 (27 ± 17)% | 3.39 ± 1.27 (47 ± 11)% |
Dextran 3000-Alexa 488 (sample 3) | 1.49 ± 0.70 (23 ± 8)% | 44.65 ± 17.80 (8 ± 1)% |
Dextran 10,000-Alexa 488 (sample 4) | 0.57 ± 0.51 (28 ± 3)% | 2.02 ± 0.40 (25 ± 4)% |
Dextran 10,000-Alexa 488 (sample 4) | 0.81 ± 0.44 (16 ± 4)% | 3.35 ± 0.45 (37 ± 6)% |
DOPC-Bodipy in POPC liposomes (sample 1) | 9.46 ± 4.96 | 90.74 ± 56.49 |
DOPC-Bodipy in POPC liposomes (sample 2) | 1.86 ± 0.12 | 125.46 ± 99.03 |
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Frtús, A.; Smolková, B.; Uzhytchak, M.; Lunova, M.; Jirsa, M.; Hof, M.; Jurkiewicz, P.; Lozinsky, V.I.; Wolfová, L.; Petrenko, Y.; et al. Hepatic Tumor Cell Morphology Plasticity under Physical Constraints in 3D Cultures Driven by YAP–mTOR Axis. Pharmaceuticals 2020, 13, 430. https://doi.org/10.3390/ph13120430
Frtús A, Smolková B, Uzhytchak M, Lunova M, Jirsa M, Hof M, Jurkiewicz P, Lozinsky VI, Wolfová L, Petrenko Y, et al. Hepatic Tumor Cell Morphology Plasticity under Physical Constraints in 3D Cultures Driven by YAP–mTOR Axis. Pharmaceuticals. 2020; 13(12):430. https://doi.org/10.3390/ph13120430
Chicago/Turabian StyleFrtús, Adam, Barbora Smolková, Mariia Uzhytchak, Mariia Lunova, Milan Jirsa, Martin Hof, Piotr Jurkiewicz, Vladimir I. Lozinsky, Lucie Wolfová, Yuriy Petrenko, and et al. 2020. "Hepatic Tumor Cell Morphology Plasticity under Physical Constraints in 3D Cultures Driven by YAP–mTOR Axis" Pharmaceuticals 13, no. 12: 430. https://doi.org/10.3390/ph13120430
APA StyleFrtús, A., Smolková, B., Uzhytchak, M., Lunova, M., Jirsa, M., Hof, M., Jurkiewicz, P., Lozinsky, V. I., Wolfová, L., Petrenko, Y., Kubinová, Š., Dejneka, A., & Lunov, O. (2020). Hepatic Tumor Cell Morphology Plasticity under Physical Constraints in 3D Cultures Driven by YAP–mTOR Axis. Pharmaceuticals, 13(12), 430. https://doi.org/10.3390/ph13120430