Regeneration of tracheal neotissue in partially decellularized scaffolds
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C. Breuer | S. Reynolds | Z. Tan | Sayali Dharmadhikari | Lumei Liu | K. Shontz | Tendy Chiang | Jane Yu | Jacob T Stack
[1] S. Reynolds,et al. Partial decellularization eliminates immunogenicity in tracheal allografts , 2023, Bioengineering & Translational Medicine.
[2] Mitchel R. Stacy,et al. A Multimodal Approach to Quantify Chondrocyte Viability for Airway Tissue Engineering , 2022, The Laryngoscope.
[3] Charles A. Elmaraghy,et al. Dynamic Volumetric Computed Tomography Angiography is an Effective Method to Evaluate Tracheomalacia in Children , 2022, The Laryngoscope.
[4] Q. Tan,et al. Reconstruction of the trachea and carina: Surgical reconstruction, autologous tissue transplantation, allograft transplantation, and bioengineering , 2022, Thoracic cancer.
[5] C. Breuer,et al. Tissue-engineered composite tracheal grafts create mechanically stable and biocompatible airway replacements , 2022, Journal of tissue engineering.
[6] G. Karoubi,et al. Bioreactor-Based De-epithelialization of Long-Segment Tracheal Grafts. , 2021, Methods in molecular biology.
[7] C. Breuer,et al. Tracheal Macrophages During Regeneration and Repair of Long‐Segment Airway Defects , 2021, The Laryngoscope.
[8] B. Stripp,et al. Repeated injury promotes tracheobronchial tissue stem cell attrition , 2021, bioRxiv.
[9] C. Breuer,et al. Regeneration of partially decellularized tracheal scaffolds in a mouse model of orthotopic tracheal replacement , 2021, Journal of tissue engineering.
[10] Yuchao Jiang,et al. Single-Cell RNA Sequencing Reveals Endothelial Cell Transcriptome Heterogeneity Under Homeostatic Laminar Flow , 2020, bioRxiv.
[11] S. Reynolds,et al. Airway epithelial stem cell chimerism in cystic fibrosis lung transplant recipients , 2020, Journal of cystic fibrosis : official journal of the European Cystic Fibrosis Society.
[12] L. Niklason,et al. The History of Engineered Tracheal Replacements: Interpreting the Past and Guiding the Future , 2020, Tissue engineering. Part B, Reviews.
[13] Pengfei Liu,et al. De-Epithelialized Heterotopic Tracheal Allografts without Immunosuppressants in Dogs: Long-Term Results for Cartilage Viability and Structural Integrity , 2020, The Annals of otology, rhinology, and laryngology.
[14] J. Sucre,et al. Distinct Spatiotemporally Dynamic Wnt-Secreting Niches Regulate Proximal Airway Regeneration and Aging. , 2020, Cell stem cell.
[15] C. Breuer,et al. Spatial and Temporal Analysis of Host Cells in Tracheal Graft Implantation , 2020, The Laryngoscope.
[16] Matthew G. Wiet,et al. Deconstructing Tissue Engineered Trachea: Assessing the Role of Synthetic Scaffolds, Segmental Replacement and Cell Seeding on Graft Performance , 2019, Acta biomaterialia.
[17] Irving L. Weissman,et al. A molecular cell atlas of the human lung from single cell RNA sequencing , 2019, Nature.
[18] H. T. Moriya,et al. De-epithelialization of porcine tracheal allografts as an approach for tracheal tissue engineering , 2019, Scientific Reports.
[19] Andrew J. Hill,et al. The single cell transcriptional landscape of mammalian organogenesis , 2019, Nature.
[20] R. De Caro,et al. Tissue-Engineered Grafts from Human Decellularized Extracellular Matrices: A Systematic Review and Future Perspectives , 2018, International journal of molecular sciences.
[21] V. Thannickal,et al. Fgf10 Signaling in Lung Development, Homeostasis, Disease, and Repair After Injury , 2018, Front. Genet..
[22] M. Bezuhly,et al. Efficient decellularization of rabbit trachea to generate a tissue engineering scaffold biomatrix. , 2018, International journal of pediatric otorhinolaryngology.
[23] Allon M. Klein,et al. A single cell atlas of the tracheal epithelium reveals the CFTR-rich pulmonary ionocyte , 2018, Nature.
[24] Yong Yang,et al. Decellularization Strategies for Regenerative Medicine: From Processing Techniques to Applications , 2017, BioMed research international.
[25] A. Iwasaki,et al. Early local immune defences in the respiratory tract , 2016, Nature Reviews Immunology.
[26] C. Breuer,et al. Clinical Translation of Tissue Engineered Trachea Grafts , 2016, The Annals of otology, rhinology, and laryngology.
[27] Berthold Göttgens,et al. Clonal Dynamics Reveal Two Distinct Populations of Basal Cells in Slow-Turnover Airway Epithelium , 2015, Cell reports.
[28] Borja Saez,et al. Parent stem cells can serve as niches for their own daughter cells , 2015, Nature.
[29] Elizabeth A. Calle,et al. Repair and regeneration of the respiratory system: complexity, plasticity, and mechanisms of lung stem cell function. , 2014, Cell stem cell.
[30] S. D. De Langhe,et al. Lung epithelial stem cells and their niches: Fgf10 takes center stage , 2014, Fibrogenesis & tissue repair.
[31] Benjamin D. Medoff,et al. Dedifferentiation of committed epithelial cells into stem cells in vivo , 2013, Nature.
[32] Hongmei Shen,et al. A single cell functions as a tissue-specific stem cell and the in vitro niche-forming cell. , 2011, American journal of respiratory cell and molecular biology.
[33] P. Reynolds,et al. Tracheal Basal cells: a facultative progenitor cell pool. , 2010, The American journal of pathology.
[34] Christopher M Waters,et al. Epithelial repair mechanisms in the lung. , 2010, American journal of physiology. Lung cellular and molecular physiology.
[35] Scott H. Randell,et al. Basal cells as stem cells of the mouse trachea and human airway epithelium , 2009, Proceedings of the National Academy of Sciences.
[36] P. Birembaut,et al. Epithelial cell-extracellular matrix interactions and stem cells in airway epithelial regeneration. , 2008, Proceedings of the American Thoracic Society.
[37] B. Stripp,et al. Maintenance and Repair of the Bronchiolar Epithelium , 2022 .
[38] M. Zamora,et al. Microvascular destruction identifies murine allografts that cannot be rescued from airway fibrosis. , 2007, The Journal of clinical investigation.
[39] K. Pinkerton,et al. Asthma/Allergic Airways Disease: Does Postnatal Exposure to Environmental Toxicants Promote Airway Pathobiology? , 2007, Toxicologic pathology.
[40] J. Zahm,et al. Airway epithelial repair, regeneration, and remodeling after injury in chronic obstructive pulmonary disease. , 2006, Proceedings of the American Thoracic Society.
[41] Yuzhi Zhang,et al. Integration of flow-dependent endothelial phenotypes by Kruppel-like factor 2. , 2005, The Journal of clinical investigation.
[42] E. Genden,et al. Reepithelialization of Orthotopic Tracheal Allografts Prevents Rejection after Withdrawal of Immunosuppression , 2005, The Annals of otology, rhinology, and laryngology.
[43] Simon C Watkins,et al. Basal cells are a multipotent progenitor capable of renewing the bronchial epithelium. , 2004, The American journal of pathology.
[44] E. Genden,et al. Orthotopic tracheal transplantation in the murine model. , 2002, Transplantation.
[45] B. Stripp,et al. Clara cell secretory protein-expressing cells of the airway neuroepithelial body microenvironment include a label-retaining subset and are critical for epithelial renewal after progenitor cell depletion. , 2001, American journal of respiratory cell and molecular biology.
[46] S. Kitamura,et al. Epithelial regeneration and preservation of tracheal cartilage after tracheal replacement with cryopreserved allograft in the rat. , 1998, The Journal of thoracic and cardiovascular surgery.