Decellularized Rat Lung Extracellular Matrix as an In Vitro Platform for Canine Yolk Sac–Derived Endothelial Precursor Cells for Pulmonary Endothelium Reconstruction Studies
Abstract
1. Introduction
2. Materials and Methods
2.1. Lung Samples Acquisition
2.2. Whole-Lungs Decellularization
2.3. Histological Analysis
2.4. 4,6-Diamidino-2-fenilindole (DAPI) Staining
2.5. Genomic DNA Quantification
2.6. Scanning Electronic Microscopy (SEM)
2.7. Immunohistochemistry Analysis
2.8. Scaffolds Sterilization
2.9. Microbiological Evaluation
2.10. Cytotoxicity Assay
2.11. Cytocompatibility Assay
2.12. Recellularization of the Whole-Lungs Scaffolds
2.13. Statistical Analysis
3. Results
3.1. Whole-Lung Perfusion Decellularization
3.2. Morphological and Ultrastructural Characterization
3.3. Microbiological Evaluation
3.4. Cytotoxicity Evaluation
3.5. Cytocompatibility Evaluation
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Step | Solution | Concentration | Perfusion Route | Duration | Flow Rate (Trachea and Artery) | Pressure |
|---|---|---|---|---|---|---|
| Initial washing | dH2O | — | Trachea + artery | 1 h | 2 mL/min via tracheal and 4 mL/min via arterial | 10 cmH2O via tracheal and 20 cmH2O via arterial |
| PBS wash | PBS | 1× | Trachea + artery | 1 h | 2 mL/min via tracheal and 4 mL/min via arterial | 10 cmH2O via tracheal and 20 cmH2O via arterial |
| Decellularization | SDS + Triton X-100 | SDS 0.5% + Triton X-100 0.5% | Trachea + artery | 5 h | 2 mL/min via tracheal and 4 mL/min via arterial | 10 cmH2O via tracheal and 20 cmH2O via arterial |
| Final washing | dH2O | — | Trachea + artery | 6 h | 2 mL/min via tracheal and 4 mL/min via arterial | 10 cmH2O via tracheal and 20 cmH2O via arterial |
| Final wash | PBS | 1× | Trachea + artery | 6 h | 2 mL/min via tracheal and 4 mL/min via arterial | 10 cmH2O via tracheal and 20 cmH2O via arterial |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Silva-Júnior, L.N.d.; Miglino, M.A.; Horvath-Pereira, B.d.O.; Fireman, J.V.B.T.; Siqueira, G.M.d.; Pereira, M.L.d.R.F.; Bezerra, L.d.S.; Oliveira, L.V.F.d.; Morais, S.d.S.; Bellini, M.Z.; et al. Decellularized Rat Lung Extracellular Matrix as an In Vitro Platform for Canine Yolk Sac–Derived Endothelial Precursor Cells for Pulmonary Endothelium Reconstruction Studies. Bioengineering 2026, 13, 484. https://doi.org/10.3390/bioengineering13050484
Silva-Júnior LNd, Miglino MA, Horvath-Pereira BdO, Fireman JVBT, Siqueira GMd, Pereira MLdRF, Bezerra LdS, Oliveira LVFd, Morais SdS, Bellini MZ, et al. Decellularized Rat Lung Extracellular Matrix as an In Vitro Platform for Canine Yolk Sac–Derived Endothelial Precursor Cells for Pulmonary Endothelium Reconstruction Studies. Bioengineering. 2026; 13(5):484. https://doi.org/10.3390/bioengineering13050484
Chicago/Turabian StyleSilva-Júnior, Leandro Norberto da, Maria Angelica Miglino, Bianca de Oliveira Horvath-Pereira, João Victor Barbosa Tenório Fireman, Giovanna Macedo da Siqueira, Maria Laura dos Reis Ferre Pereira, Letícia dos Santos Bezerra, Luís Vicente Franco de Oliveira, Samuel de Sousa Morais, Márcia Zilioli Bellini, and et al. 2026. "Decellularized Rat Lung Extracellular Matrix as an In Vitro Platform for Canine Yolk Sac–Derived Endothelial Precursor Cells for Pulmonary Endothelium Reconstruction Studies" Bioengineering 13, no. 5: 484. https://doi.org/10.3390/bioengineering13050484
APA StyleSilva-Júnior, L. N. d., Miglino, M. A., Horvath-Pereira, B. d. O., Fireman, J. V. B. T., Siqueira, G. M. d., Pereira, M. L. d. R. F., Bezerra, L. d. S., Oliveira, L. V. F. d., Morais, S. d. S., Bellini, M. Z., Reis, C. H. B., Buchaim, R. L., & Buchaim, D. V. (2026). Decellularized Rat Lung Extracellular Matrix as an In Vitro Platform for Canine Yolk Sac–Derived Endothelial Precursor Cells for Pulmonary Endothelium Reconstruction Studies. Bioengineering, 13(5), 484. https://doi.org/10.3390/bioengineering13050484

