Biomedical grafts for tracheal tissue repairing and regeneration "Tracheal tissue engineering: an overview".


Journal

Journal of tissue engineering and regenerative medicine
ISSN: 1932-7005
Titre abrégé: J Tissue Eng Regen Med
Pays: England
ID NLM: 101308490

Informations de publication

Date de publication:
05 2020
Historique:
received: 13 11 2019
revised: 28 01 2020
accepted: 30 01 2020
pubmed: 18 2 2020
medline: 9 7 2021
entrez: 18 2 2020
Statut: ppublish

Résumé

Airway system is a vital part of the living being body. Trachea is the upper respiratory portion that connects nostril and lungs and has multiple functions such as breathing and entrapment of dust/pathogen particles. Tracheal reconstruction by artificial prosthesis, stents, and grafts are performed clinically for the repairing of damaged tissue. Although these (above-mentioned) methods repair the damaged parts, they have limited applicability like small area wounds and lack of functional tissue regeneration. Tissue engineering helps to overcome the above-mentioned problems by modifying the traditional used stents and grafts, not only repair but also regenerate the damaged area to functional tissue. Bioengineered tracheal replacements are biocompatible, nontoxic, porous, and having 3D biomimetic ultrastructure with good mechanical strength, which results in faster and better tissue regeneration. Till date, the bioengineered tracheal replacements studies have been going on preclinical and clinical levels. Besides that, still many researchers are working at advance level to make extracellular matrix-based acellular, 3D printed, cell-seeded grafts including living cells to overcome the demand of tissue or organ and making the ready to use tracheal reconstructs for clinical application. Thus, in this review, we summarized the tracheal tissue engineering aspects and their outcomes.

Identifiants

pubmed: 32064791
doi: 10.1002/term.3019
doi:

Types de publication

Journal Article Review

Langues

eng

Sous-ensembles de citation

IM

Pagination

653-672

Informations de copyright

© 2020 John Wiley & Sons, Ltd.

Références

Ahn, H. J., Khalmuratova, R., Park, S. A., Chung, E. J., Shin, H. W., & Kwon, S. K. (2017). Serial analysis of tracheal restenosis after 3D-printed scaffold implantation: Recruited inflammatory cells and associated tissue changes. Tissue engineering and regenerative medicine, 14(5), 631-639. https://doi.org/10.1007/s13770-017-0057-y
Ajalloueian, F., Lim, M. L., Lemon, G., Haag, J. C., Gustafsson, Y., Sjöqvist, S., … Jungebluth, P. (2014). Biomechanical and biocompatibility characteristics of electrospun polymeric tracheal scaffolds. Biomaterials, 35(20), 5307-5315. https://doi.org/10.1016/j.biomaterials.2014.03.015
Al Belushi, H. K., Zani, L., Liu, Y., Silberschmidt, V., Lowdell, M., & Li, S. (2017). Evaluation of the chemical and biomechanical viscoelastic properties of decellularised tracheal scaffolds. Cytotherapy, 19(5), S26. Abstract No. 46. https://doi.org/10.1016/j.jcyt.2017.02.050
Ansari, T., Lange, P., Southgate, A., Greco, K., Carvalho, C., Partington, L., … Birchall, M. A. (2017). Stem cell-based tissue-engineered laryngeal replacement. Stem Cells Translational Medicine, 6(2), 677-687. https://doi.org/10.5966/sctm.2016-0130
Arnason, G. (2019). Regulating clinical innovation: Trachea transplants and tissue engineering. The American Journal of Bioethics, 19(6), 32-34. https://doi.org/10.1080/15265161.2019.1602179
Bae, S. W., Lee, K. W., Park, J. H., Lee, J., Jung, C. R., Yu, J., … Kim, D. H. (2018). 3D bioprinted artificial trachea with epithelial cells and chondrogenic-differentiated bone marrow-derived mesenchymal stem cells. International Journal of Molecular Sciences, 19(6), 1-14, 1624. https://doi.org/10.3390/ijms19061624
Baiguera, S., Birchall, M. A., & Macchiarini, P. (2010). Tissue-engineered tracheal transplantation. Transplantation, 89(5), 485-491. https://doi.org/10.1097/TP.0b013e3181cd4ad3
Batioglu-Karaaltin, A., Karaaltin, M. V., Ovali, E., Yigit, O., Kongur, M., Inan, O., … Cansiz, H. (2015). In vivo tissue-engineered allogenic trachea transplantation in rabbits: A preliminary report. Stem Cell Reviews and Reports, 11(2), 347-356. https://doi.org/10.1007/s12015-014-9570-8
Best, C. A., Pepper, V. K., Ohst, D., Bodnyk, K., Heuer, E., Onwuka, E. A., … Johnson, J. (2018). Designing a tissue-engineered tracheal scaffold for preclinical evaluation. International Journal of Pediatric Otorhinolaryngology, 104, 155-160. https://doi.org/10.1016/j.ijporl.2017.10.036
Brand-Saberi, B. E., & Schäfer, T. (2014). Trachea: Anatomy and physiology. Thoracic Surgery Clinics, 24(1), 1-5. https://doi.org/10.1016/j.thorsurg.2013.09.004
Butler, C. R. (2018). Strategies to improve epithelialisation of tissue engineered airway constructs (Doctoral dissertation, UCL (University College London)).
Butler, C. R., Hynds, R. E., Crowley, C., Gowers, K. H., Partington, L., Hamilton, N. J., … Urbani, L. (2017). Vacuum-assisted decellularization: An accelerated protocol to generate tissue-engineered human tracheal scaffolds. Biomaterials, 124, 95-105. https://doi.org/10.1016/j.biomaterials.2017.02.001
Cavadas, P. C. (1998). Tracheal reconstruction using a free jejunal flap with cartilage skeleton: Experimental study. Plastic and Reconstructive Surgery, 101(4), 937-942. https://doi.org/10.1097/00006534-199804040-00008
Chen, G., Sato, T., Ushida, T., Hirochika, R., Shirasaki, Y., Ochiai, N., & Tateishi, T. (2003). The use of a novel PLGA fiber/collagen composite web as a scaffold for engineering of articular cartilage tissue with adjustable thickness. Journal of Biomedical Materials Research Part A: An Official Journal of the Society for Biomaterials, The Japanese Society for Biomaterials, and The Australian Society for Biomaterials and the Korean Society for Biomaterials, 67(4), 1170-1180.
Chen, G., Sato, T., Ushida, T., Ochiai, N., & Tateishi, T. (2004). Tissue engineering of cartilage using a hybrid scaffold of synthetic polymer and collagen. Tissue Engineering, 10(3-4), 323-330. https://doi.org/10.1089/107632704323061681
Chen, L. J., & Kaji, H. (2017). Modeling angiogenesis with micro- and nanotechnology. Lab on a Chip, 17(24), 4186-4219. https://doi.org/10.1039/C7LC00774D
Chistiakov, D. A. (2010). Endogenous and exogenous stem cells: A role in lung repair and use in airway tissue engineering and transplantation. Journal of Biomedical Science, 17(1), 1-9, 92. https://doi.org/10.1186/1423-0127-17-92
Clark, E. S., Best, C., Onwuka, E., Sugiura, T., Mahler, N., Bolon, B., … Johnson, J. (2016). Effect of cell seeding on neotissue formation in a tissue engineered trachea. Journal of Pediatric Surgery, 51(1), 49-55. https://doi.org/10.1016/j.jpedsurg.2015.10.008
Cooper, J. D. (2018). Tracheal injuries complicating prolonged intubation and tracheostomy. Thoracic Surgery Clinics, 28(2), 139-144. https://doi.org/10.1016/j.thorsurg.2018.01.001
Delaere, P., Vranckx, J., Verleden, G., De Leyn, P., & Van Raemdonck, D. (2010). Tracheal allotransplantation after withdrawal of immunosuppressive therapy. New England Journal of Medicine, 362(2), 138-145. https://doi.org/10.1056/NEJMoa0810653
Dikina, A. D., Strobel, H. A., Lai, B. P., Rolle, M. W., & Alsberg, E. (2015). Engineered cartilaginous tubes for tracheal tissue replacement via self-assembly and fusion of human mesenchymal stem cell constructs. Biomaterials, 52, 452-462. https://doi.org/10.1016/j.biomaterials.2015.01.073
Doolin, E. J., Strande, L. F., Sheng, X., & Hewitt, C. W. (2002). Engineering a composite neotrachea with surgical adhesives. Journal of Pediatric Surgery, 37(7), 1034-1037. https://doi.org/10.1053/jpsu.2002.33837
Elliott, M., Hartley, B. E., Wallis, C., & Roebuck, D. (2008). Slide tracheoplasty. Current Opinion in Otolaryngology & Head and Neck Surgery, 16(1), 75-82. https://doi.org/10.1097/MOO.0b013e3282f45ab7
Elliott, M. J., Butler, C. R., Varanou-Jenkins, A., Partington, L., Carvalho, C., Samuel, E., … Ansari, T. (2017). Tracheal replacement therapy with a stem cell-seeded graft: Lessons from compassionate use application of a GMP-compliant tissue-engineered medicine. Stem Cells Translational Medicine, 6(6), 1458-1464. https://doi.org/10.1002/sctm.16-0443
Elliott, M. J., De Coppi, P., Speggiorin, S., Roebuck, D., Butler, C. R., Samuel, E., … Cochrane, L. (2012). Stem-cell-based, tissue engineered tracheal replacement in a child: A 2-year follow-up study. The Lancet, 380(9846), 994-1000. https://doi.org/10.1016/S0140-6736(12)60737-5
Etienne, H., Fabre, D., Caro, A. G., Kolb, F., Mussot, S., Mercier, O., … Dartevelle, P. (2018). Tracheal replacement. European Respiratory Journal, 51(2), 1-9, 1702211. https://doi.org/10.1183/13993003.02211-2017
Fauza, D. (2004). Amniotic fluid and placental stem cells. Best Practice & Research. Clinical Obstetrics & Gynaecology, 18(6), 877-891. https://doi.org/10.1016/j.bpobgyn.2004.07.001
Firth, A. L., Menon, T., Parker, G. S., Qualls, S. J., Lewis, B. M., Ke, E., … Verma, I. M. (2015). Functional gene correction for cystic fibrosis in lung epithelial cells generated from patient iPSCs. Cell Reports, 12(9), 1385-1390. https://doi.org/10.1016/j.celrep.2015.07.062
Fishman, J. M., Wiles, K., Lowdell, M. W., De Coppi, P., Elliott, M. J., Atala, A., & Birchall, M. A. (2014). Airway tissue engineering: An update. Expert Opinion on Biological Therapy, 14(10), 1477-1491. https://doi.org/10.1517/14712598.2014.938631
Fuchs, J. R., Terada, S., Ochoa, E. R., Vacanti, J. P., & Fauza, D. O. (2002). Fetal tissue engineering: In utero tracheal augmentation in an ovine model. Journal of Pediatric Surgery, 37(7), 1000-1006. https://doi.org/10.1053/jpsu.2002.33829
Fulcher, M. L., & Randell, S. H. (2012). Human nasal and tracheo-bronchial respiratory epithelial cell culture. In Epithelial cell culture protocols (pp. 109-121). Totowa, NJ: Humana Press.
Gao, M., Zhang, H., Dong, W., Bai, J., Gao, B., Xia, D., … Xu, Z. (2017). Tissue-engineered trachea from a 3D-printed scaffold enhances whole-segment tracheal repair. Scientific Reports, 7(1), 1-12, 5246. https://doi.org/10.1038/s41598-017-05518-3
Ghanavi, J., Farnia, P., Bahrami, A., Jabbari, H. R., & Velayati, A. A. (2017). Development of tracheal reconstruction methods from scaffold engineering to injectable matrix. Biomedical and Biotechnology Research Journal (BBRJ), 1(1), 19-24. https://doi.org/10.4103/bbrj.bbrj_55_17
Ghorbani, F., Moradi, L., Shadmehr, M. B., Bonakdar, S., Droodinia, A., & Safshekan, F. (2017). In-vivo characterization of a 3D hybrid scaffold based on PCL/decellularized aorta for tracheal tissue engineering. Materials Science and Engineering: C, 81, 74-83. https://doi.org/10.1016/j.msec.2017.04.150
Go, T., Jungebluth, P., Baiguero, S., Asnaghi, A., Martorell, J., Ostertag, H., … Macchiarini, P. (2010). Both epithelial cells and mesenchymal stem cell-derived chondrocytes contribute to the survival of tissue-engineered airway transplants in pigs. The Journal of Thoracic and Cardiovascular Surgery, 139(2), 437-443. https://doi.org/10.1016/j.jtcvs.2009.10.002
Gomperts, B. N. (2014). Induction of multiciliated cells from induced pluripotent stem cells. Proceedings of the National Academy of Sciences, 111(17), 6120-6121. https://doi.org/10.1073/pnas.1404414111
Gray, H. (1918). XI. Splanchnology, The trachea and bronchi anatomy of the human body (20th ed.). Philadelphia, NY: Lea & Febiger, 1918; Bartleby.com, 2000: Classic 1918 publication.
Graziano, J. L., Spinazzola, A., & Neville, W. E. (1967). Prosthetic replacement of the tracheal carina. The Annals of Thoracic Surgery, 4(1), 1-11. https://doi.org/10.1016/S0003-4975(10)66472-7
Green, M. D., Huang, S. X., & Snoeck, H. W. (2013). Stem cells of the respiratory system: From identification to differentiation into functional epithelium. Bioessays, 35(3), 261-270. https://doi.org/10.1002/bies.201200090
Grimmer, J. F., Gunnlaugsson, C. B., Alsberg, E., Murphy, H. S., Kong, H. J., Mooney, D. J., & Weatherly, R. A. (2004). Tracheal reconstruction using tissue-engineered cartilage. Archives of Otolaryngology - Head & Neck Surgery, 130(10), 1191-1196. https://doi.org/10.1001/archotol.130.10.1191
Heikal, M. M., Aminuddin, B. S., Jeevanan, J., Chen, H. C., Sharifah, S. H., & Ruszymah, B. H. I. (2010). Autologous implantation of bilayered tissue-engineered respiratory epithelium for tracheal mucosal regenesis in a sheep model. Cells, Tissues, Organs, 192(5), 292-302. https://doi.org/10.1159/000318675
Herberhold, C. (2001). Tracheal reconstruction with a preserved homograft. Laryngo-Rhino-Otologie, 80(8), OP57-OP60.
Herbert, R. A., Janardhan, K. S., Pandiri, A. R., Cesta, M. F., & Miller, R. A. (2018). Nose, larynx, and trachea. In Boorman's Pathology of the Rat (pp. 391-435). Chantilly, VA, USA: Academic Press.
Hillman, N. H., & Lam, H. S. (2019). Respiratory Disorders in the Newborn. In Kendig's Disorders of the Respiratory Tract in Children (pp. 338-366). Content Repository Only. USA: Elsevier. https://doi.org/10.1016/C2015-0-01292-8
Hong, P., Bezuhly, M., Graham, M. E., & Gratzer, P. F. (2018). Efficient decellularization of rabbit trachea to generate a tissue engineering scaffold biomatrix. International Journal of Pediatric Otorhinolaryngology, 112, 67-74. https://doi.org/10.1016/j.ijporl.2018.06.032
Hsieh, C. T., Liao, C. Y., Dai, N. T., Tseng, C. S., Yen, B. L., & Hsu, S. H. (2018). 3D printing of tubular scaffolds with elasticity and complex structure from multiple waterborne polyurethanes for tracheal tissue engineering. Applied Materials Today, 12, 330-341. https://doi.org/10.1016/j.apmt.2018.06.004
Huang, Y., Liang, P., Liu, D., Huang, J., & Songyang, Z. (2014). Telomere regulation in pluripotent stem cells. Protein & Cell, 5(3), 194-202. https://doi.org/10.1007/s13238-014-0028-1
Hutmacher, D. W. (2001). Scaffold design and fabrication technologies for engineering tissues-State of the art and future perspectives. Journal of Biomaterials Science, Polymer Edition, 12(1), 107-124. https://doi.org/10.1163/156856201744489
Jang, Y. S., Jang, C. H., Cho, Y. B., Kim, M., & Kim, G. H. (2014). Tracheal regeneration using polycaprolactone/collagen-nanofiber coated with umbilical cord serum after partial resection. International Journal of Pediatric Otorhinolaryngology, 78(12), 2237-2243. https://doi.org/10.1016/j.ijporl.2014.10.022
Janke, H. P., Bohlin, J., Lomme, R. M. L. M., Mihaila, S. M., Hilborn, J., Feitz, W. F. J., & Oosterwijk, E. (2017). Bioinspired coupled helical coils for soft tissue engineering of tubular structures-Improved mechanical behavior of tubular collagen type I templates. Acta Biomaterialia, 59, 234-242. https://doi.org/10.1016/j.actbio.2017.06.038
Jungebluth, P., Alici, E., Baiguera, S., Blomberg, P., Bozóky, B., Crowley, C., … Hermanson, O. (2011). RETRACTED: Tracheobronchial transplantation with a stem-cell-seeded bioartificial nanocomposite: A proof-of-concept study.
Kanzaki, M., Yamato, M., Hatakeyama, H., Kohno, C., Yang, J., Umemoto, T., … Onuki, T. (2006). Tissue engineered epithelial cell sheets for the creation of a bioartificial trachea. Tissue Engineering, 12(5), 1275-1283. https://doi.org/10.1089/ten.2006.12.1275
Klagsbrun, M. (1979). [50] Large-scale preparation of chondrocytes. In Methods in enzymology (Vol. 58) (pp. 560-564). Academic Press. https://doi.org/10.1016/S0076-6879(79)58171-3
Knaneh-Monem, H., Thornton, M. E., Grubbs, B. H., Warburton, D., Grikscheit, T. C., & Hochstim, C. (2019). Differential epithelial growth in tissue-engineered larynx and trachea generated from postnatal and fetal progenitor cells. Biochemical and Biophysical Research Communications, 510(2), 205-210. https://doi.org/10.1016/j.bbrc.2019.01.060
Kobayashi, K., Nomoto, Y., Suzuki, T., Tada, Y., Miyake, M., Hazama, A., … Omori, K. (2006). Effect of fibroblasts on tracheal epithelial regeneration in vitro. Tissue Engineering, 12(9), 2619-2628. https://doi.org/10.1089/ten.2006.12.2619
Kobayashi, K., Suzuki, T., Nomoto, Y., Tada, Y., Miyake, M., Hazama, A., … Omori, K. (2010). A tissue-engineered trachea derived from a framed collagen scaffold, gingival fibroblasts and adipose-derived stem cells. Biomaterials, 31(18), 4855-4863. https://doi.org/10.1016/j.biomaterials.2010.02.027
Koempel, J. A., Gibson, S. E., O'Grady, K., & Toriumi, D. M. (1998). The effect of platelet-derived growth factor on tracheal wound healing. International Journal of Pediatric Otorhinolaryngology, 46(1-2), 1-8. https://doi.org/10.1016/S0165-5876(98)00084-6
Kojima, K., Bonassar, L. J., Ignotz, R. A., Syed, K., Cortiella, J., & Vacanti, C. A. (2003). Comparison of tracheal and nasal chondrocytes for tissue engineering of the trachea. The Annals of Thoracic Surgery, 76(6), 1884-1888. https://doi.org/10.1016/S0003-4975(03)01193-7
Kojima, K., Bonassar, L. J., Roy, A. K., Mizuno, H., Cortiella, J., & Vacanti, C. A. (2003). A composite tissue-engineered trachea using sheep nasal chondrocyte and epithelial cells. The FASEB Journal, 17(8), 823-828. https://doi.org/10.1096/fj.02-0462com
Kojima, K., Bonassar, L. J., Roy, A. K., Vacanti, C. A., & Cortiella, J. (2002). Autologous tissue-engineered trachea with sheep nasal chondrocytes. The Journal of Thoracic and Cardiovascular Surgery, 123(6), 1177-1184. https://doi.org/10.1067/mtc.2002.121161
Kojima, K., & Vacanti, C. A. (2014). Tissue engineering in the trachea. The Anatomical Record, 297(1), 44-50. https://doi.org/10.1002/ar.22799
Komura, M., Komura, H., Satake, R., Suzuki, K., Yonekawa, H., Ikebukuro, K., … Nakayama, Y. (2019). Fabrication of an anatomy-mimicking BIO-AIR-TUBE with engineered cartilage. Regenerative Therapy, 11, 176-181. https://doi.org/10.1016/j.reth.2019.07.004
Kunisaki, S. M., Armant, M., Kao, G. S., Stevenson, K., Kim, H., & Fauza, D. O. (2007). Tissue engineering from human mesenchymal amniocytes: A prelude to clinical trials. Journal of Pediatric Surgery, 42(6), 974-980. https://doi.org/10.1016/j.jpedsurg.2007.01.031
Kushibe, K., Tojo, T., Sakaguchi, H., Takahama, M., Nishizaki, K., Nezu, K., & Taniguchi, S. (2000). Effects of warm ischemia and cryopreservation on cartilage viability of tracheal allografts. The Annals of Thoracic Surgery, 70(6), 1876-1879. https://doi.org/10.1016/S0003-4975(00)01854-3
Law, J. X., Liau, L. L., Aminuddin, B. S., & Ruszymah, B. H. (2016). Tissue-engineered trachea: A review. International Journal of Pediatric Otorhinolaryngology, 91, 55-63. https://doi.org/10.1016/j.ijporl.2016.10.012
Lee, C. J., Moon, K. D., & Choi, H. (2002). Tissue engineered tracheal prosthesis with accelerated cultured homologous chondrocytes as an alternative of tracheal reconstruction. Journal of Cardiovascular Surgery, 43(2), 275-279.
Lee, D. Y., Lee, J. H., Ahn, H. J., Oh, S. H., Kim, T. H., Kim, H. B., … Kwon, S. K. (2015). Synergistic effect of laminin and mesenchymal stem cells on tracheal mucosal regeneration. Biomaterials, 44, 134-142. https://doi.org/10.1016/j.biomaterials.2014.12.029
Lee, M. H., Arcidiacono, J. A., Bilek, A. M., Wille, J. J., Hamill, C. A., Wonnacott, K. M., … Oh, S. S. (2009). Considerations for tissue-engineered and regenerative medicine product development prior to clinical trials in the United States. Tissue Engineering Part B: Reviews, 16(1), 41-54.
Lee, M. K., Yoo, J. W., Lin, H., Kim, Y. S., Kim, D. D., Choi, Y. M., … Roh, H. J. (2005). Air-liquid interface culture of serially passaged human nasal epithelial cell monolayer for in vitro drug transport studies. Drug Delivery, 12(5), 305-311. https://doi.org/10.1080/10717540500177009
Letang, E., Sanchez-Lloret, J., Gimferrer, J. M., Ramirez, J., & Vicens, A. (1990). Experimental reconstruction of the canine trachea with a free revascularized small bowel graft. The Annals of Thoracic Surgery, 49(6), 955-958. https://doi.org/10.1016/0003-4975(90)90875-7
Li, P., Li, S., Tang, Q., He, X., Yin, D., Wang, S., & Yang, X. (2017). Reconstruction of human oncological tracheal defects with xenogenic acellular dermal matrix. Auris Nasus Larynx, 44(2), 237-240. https://doi.org/10.1016/j.anl.2016.04.008
Lin, C. H., Hsu, S. H., Huang, C. E., Cheng, W. T., & Su, J. M. (2009). A scaffold-bioreactor system for a tissue-engineered trachea. Biomaterials, 30(25), 4117-4126. https://doi.org/10.1016/j.biomaterials.2009.04.028
Lin, C. H., Su, J. M., & Hsu, S. H. (2008). Evaluation of type II collagen scaffolds reinforced by poly (ε-caprolactone) as tissue-engineered trachea. Tissue Engineering Part C: Methods, 14(1), 69-77. https://doi.org/10.1089/tec.2007.0336
Liu, J., Li, S., Shen, J., Dong, Q., Liang, L., Pan, H., & He, J. (2016). Non-intubated resection and reconstruction of trachea for the treatment of a mass in the upper trachea. Journal of Thoracic Disease, 8(3), 594-599. https://doi.org/10.21037/jtd.2016.01.56
Liu, Y., Zhou, G., & Cao, Y. (2017). Recent progress in cartilage tissue engineering-Our experience and future directions. Engineering, 3(1), 28-35. https://doi.org/10.1016/J.ENG.2017.01.010
Luo, X., Liu, Y., Zhang, Z., Tao, R., Liu, Y., He, A., … Cao, Y. (2013). Long-term functional reconstruction of segmental tracheal defect by pedicled tissue-engineered trachea in rabbits. Biomaterials, 34(13), 3336-3344. https://doi.org/10.1016/j.biomaterials.2013.01.060
Macchiarini, P., Jungebluth, P., Go, T., Asnaghi, M. A., Rees, L. E., Cogan, T. A., … Dickinson, S. C. (2008). Clinical transplantation of a tissue-engineered airway. The Lancet, 372(9655), 2023-2030. https://doi.org/10.1016/S0140-6736(08)61598-6
Machino, R., Matsumoto, K., Taniguchi, D., Tsuchiya, T., Takeoka, Y., Taura, Y., … Miyazaki, T. (2019). Replacement of rat tracheas by layered, trachea-like, scaffold-free structures of human cells using a bio-3d printing system. Advanced Healthcare Materials, 8(7), 1-13, 1800983. https://doi.org/10.1002/adhm.201800983
Martinod, E., Chouahnia, K., Radu, D. M., Joudiou, P., Uzunhan, Y., Bensidhoum, M., … Solis, A. (2018). Feasibility of bioengineered tracheal and bronchial reconstruction using stented aortic matrices. JAMA, 319(21), 2212-2222. https://doi.org/10.1001/jama.2018.4653
Messineo, A., Filler, R. M., Joseph, T., Bahoric, A., & Smith, C. R. (1994). Tracheoplasty without stent, using preshaped cryopreserved cartilage allografts in neonatal pigs. Journal of Pediatric Surgery, 29(5), 697-700. https://doi.org/10.1016/0022-3468(94)90744-7
Minnich, D. J., & Mathisen, D. J. (2007). Anatomy of the trachea, carina, and bronchi. Thoracic Surgery Clinics, 17(4), 571-585. https://doi.org/10.1016/j.thorsurg.2006.12.006
Nakamura, R., Katsuno, T., Kitamura, M., Yamashita, M., Tsuji, T., Suzuki, R., … Omori, K. (2019). Collagen sponge scaffolds containing growth factors for the functional regeneration of tracheal epithelium. Journal of Tissue Engineering and Regenerative Medicine, 13(5), 835-845. https://doi.org/10.1002/term.2835
Nakamura, T., Sato, T., Araki, M., Ichihara, S., Nakada, A., Yoshitani, M., … Hori, Y. (2009). In situ tissue engineering for tracheal reconstruction using a luminar remodeling type of artificial trachea. The Journal of Thoracic and Cardiovascular Surgery, 138(4), 811-819. https://doi.org/10.1016/j.jtcvs.2008.07.072
Naranda, J., Gradišnik, L., Gorenjak, M., Vogrin, M., & Maver, U. (2017). Isolation and characterization of human articular chondrocytes from surgical waste after total knee arthroplasty (TKA). PeerJ, 5, 1-20, e3079. https://doi.org/10.7717/peerj.3079
Ni, Y., Zhao, X., Zhou, L., Shao, Z., Yan, W., Chen, X., … Jiang, J. J. (2008). Radiologic and histologic characterization of silk fibroin as scaffold coating for rabbit tracheal defect repair. Otolaryngology - Head and Neck Surgery, 139(2), 256-261. https://doi.org/10.1016/j.otohns.2008.03.028
Nomoto, Y., Kobayashi, K., Tada, Y., Wada, I., Nakamura, T., & Omori, K. (2008). Effect of fibroblasts on epithelial regeneration on the surface of a bioengineered trachea. Annals of Otology, Rhinology and Laryngology, 117(1), 59-64. https://doi.org/10.1177/000348940811700112
Nomoto, Y., Suzuki, T., Tada, Y., Kobayashi, K., Miyake, M., Hazama, A., … Omori, K. (2006). Tissue engineering for regeneration of the tracheal epithelium. Annals of Otology, Rhinology and Laryngology, 115(7), 501-506. https://doi.org/10.1177/000348940611500704
Okamoto, T., Yamamoto, Y., Gotoh, M., Liu, D., Kihara, M., Kameyama, K., … Yokomise, H. (2003). Cartilage regeneration using slow release of bone morphogenetic protein-2 from a gelatin sponge to treat experimental canine tracheomalacia: A preliminary report. ASAIO Journal, 49(1), 63-69. https://doi.org/10.1097/00002480-200301000-00010
Okano, W., Nomoto, Y., Wada, I., Kobayashi, K., Miyake, M., Nakamura, T., & Omori, K. (2009). Bioengineered trachea with fibroblasts in a rabbit model. Annals of Otology, Rhinology and Laryngology, 118(11), 796-804. https://doi.org/10.1177/000348940911801109
Okumura, N., Nakamura, T. A. T. S. U. O., Shimizu, Y. A. S. U. H. I. K. O., Natsume, T. O. H. R. U., & Ikada, Y. O. S. H. I. T. O. (1991). Experimental study of a new tracheal prosthesis made from collagen-grafted mesh. ASAIO Transactions, 37(3), 317-319, PMID: 1721513.
Okumuş, A., Çizmeci, O., Kabakas, F., Kuvat, S. V., Bilir, A., & Aydin, A. (2005). Circumferential trachea reconstruction with a prefabricated axial bio-synthetic flap: Experimental study. International Journal of Pediatric Otorhinolaryngology, 69(3), 335-344. https://doi.org/10.1016/j.ijporl.2004.10.005
Omori, K., Nakamura, T., Kanemaru, S., Asato, R., Yamashita, M., Tanaka, S., … Shimizu, Y. (2005). Regenerative medicine of the trachea: The first human case. Annals of Otology, Rhinology and Laryngology, 114(6), 429-433. https://doi.org/10.1177/000348940511400603
Osada, H., & Kojima, K. (2000). Experimental tracheal reconstruction with a rotated right stem bronchus. The Annals of Thoracic Surgery, 70(6), 1886-1890. https://doi.org/10.1016/S0003-4975(00)01847-6
Ott, L. M., Weatherly, R. A., & Detamore, M. S. (2011). Overview of tracheal tissue engineering: Clinical need drives the laboratory approach. Annals of Biomedical Engineering, 39(8), 2091-2113. https://doi.org/10.1007/s10439-011-0318-1
Özpolat, B., Gürpınar, Ö. A., Ayva, E. Ş., Gazyağcı, S., & Niyaz, M. (2013). The effect of basic fibroblast growth factor and adipose tissue-derived mesenchymal stem cells on wound healing, epithelization and angiogenesis in a tracheal resection and end-to-end anastomosis rat model. Turkish Journal of Thoracic and Cardiovascular Surgery, 21(4), 1010-1019. https://doi.org/10.5606/tgkdc.dergisi.2013.7719
Park, J. H., Hong, J. M., Ju, Y. M., Jung, J. W., Kang, H. W., Lee, S. J., … Cho, D. W. (2015). A novel tissue-engineered trachea with a mechanical behavior similar to native trachea. Biomaterials, 62, 106-115. https://doi.org/10.1016/j.biomaterials.2015.05.008
Park, H. S., Park, H. J., Lee, J., Kim, P., Lee, J. S., Lee, Y. J., … Park, C. H. (2018). A 4-axis technique for three-dimensional printing of an artificial trachea. Tissue Engineering and Regenerative Medicine, 15(4), 415-425. https://doi.org/10.1007/s13770-018-0136-8
Park, J. H., Park, J. Y., Nam, I. C., Ahn, M., Lee, J. Y., Choi, S. H., … Cho, D. W. (2018). A rational tissue engineering strategy based on three-dimensional (3D) printing for extensive circumferential tracheal reconstruction. Biomaterials, 185, 276-283. https://doi.org/10.1016/j.biomaterials.2018.09.031
Poon, J. (2018). Tissue engineering architectural cues for in vitro models of respiratory epithelium, (Doctoral dissertation).
Prange, T. (2019). Trachea. In Equine surgery (pp. 797-804). USA: WB Saunders.
Raja, T. I., Mozafari, M., Milan, P. B., Samadikuchaksaraei, A., & Sefat, F. (2019). Nanoengineered biomaterials for tracheal replacement. In Nanoengineered biomaterials for regenerative medicine (pp. 285-303). Tufts University, USA: Elsevier.
Roberts, C. R., Rains, J. K., Paré, P. D., Walker, D. C., Wiggs, B., & Bert, J. L. (1997). Ultrastructure and tensile properties of human tracheal cartilage. Journal of Biomechanics, 31(1), 81-86. https://doi.org/10.1016/S0021-9290(97)00112-7
Ruszymah, B. H. I., Chua, K., Latif, M. A., Hussein, F. N., & Saim, A. B. (2005). Formation of in vivo tissue engineered human hyaline cartilage in the shape of a trachea with internal support. International Journal of Pediatric Otorhinolaryngology, 69(11), 1489-1495. https://doi.org/10.1016/j.ijporl.2005.04.026
Sakata, J., Vacanti, C. A., Schloo, B., Healy, G. B., Langer, R., & Vacanti, J. P. (1994). Tracheal composites tissue engineered from chondrocytes, tracheal epithelial cells, and synthetic degradable scaffolding. Transplantation Proceedings, 26(6), 3309-3310.
Sanzenbacher, R., Dwenger, A., Schuessler-Lenz, M., Cichutek, K., & Flory, E. (2007). European regulation tackles tissue engineering. Nature Biotechnology, 25(10), 1089-1091. https://doi.org/10.1038/nbt1007-1089
Satake, R., Komura, M., Komura, H., Kodaka, T., Terawaki, K., Ikebukuro, K., … Nakayama, Y. (2016). Patch tracheoplasty in body tissue engineering using collagenous connective tissue membranes (biosheets). Journal of Pediatric Surgery, 51(2), 244-248. https://doi.org/10.1016/j.jpedsurg.2015.10.068
Schwartz, C. M., Dorn, B. A., Habtemariam, S., Hill, C. L., Chiang, T., & Reynolds, S. D. (2018). The wound healing capacity of undifferentiated and differentiated airway epithelial cells in vitro. International Journal of Pediatric Otorhinolaryngology, 112, 163-168. https://doi.org/10.1016/j.ijporl.2018.07.006
Shin, Y. S., Lee, B. H., Choi, J. W., Min, B. H., Chang, J. W., Yang, S. S., & Kim, C. H. (2014). Tissue-engineered tracheal reconstruction using chondrocyte seeded on a porcine cartilage-derived substance scaffold. International Journal of Pediatric Otorhinolaryngology, 78(1), 32-38. https://doi.org/10.1016/j.ijporl.2013.10.014
Subia, B., Kundu, J., & Kundu, S. C. (2010). Biomaterial scaffold fabrication techniques for potential tissue engineering applications. Tissue Engineering, 14, 1-158. https://doi.org/10.5772/8581
Tada, Y., Suzuki, T., Takezawa, T., Nomoto, Y., Kobayashi, K., Nakamura, T., & Omori, K. (2008). Regeneration of tracheal epithelium utilizing a novel bipotential collagen scaffold. Annals of Otology, Rhinology and Laryngology, 117(5), 359-365. https://doi.org/10.1177/000348940811700506
Taniguchi, D., Matsumoto, K., Tsuchiya, T., Machino, R., Takeoka, Y., Elgalad, A., … Matsuo, N. (2018). Scaffold-free trachea regeneration by tissue engineering with bio-3D printing. Interactive Cardiovascular and Thoracic Surgery, 26(5), 745-752. https://doi.org/10.1093/icvts/ivx444
Tata, P. R., Mou, H., Pardo-Saganta, A., Zhao, R., Prabhu, M., Law, B. M., … Medoff, B. D. (2013). Dedifferentiation of committed epithelial cells into stem cells in vivo. Nature, 503(7475), 218-223. https://doi.org/10.1038/nature12777
Tatekawa, Y., Kawazoe, N., Chen, G., Shirasaki, Y., Komuro, H., & Kaneko, M. (2010). Tracheal defect repair using a PLGA-collagen hybrid scaffold reinforced by a copolymer stent with bFGF-impregnated gelatin hydrogel. Pediatric Surgery International, 26(6), 575-580. https://doi.org/10.1007/s00383-010-2609-2
Tortora, G. J., & Derrickson, B. (2006). Principles of anatomy and physiology. United States: John Wiley & Sons. Inc.
Tsang, V. L., & Bhatia, S. N. (2005). Fabrication of three-dimensional tissues. In K. Lee & D. Kaplan (Eds.), Tissue engineering II. Advances in Biochemical Engineering/Biotechnology, (Vol. 103, pp. 190-204). Berlin,Heidelberg: Springer. https://doi.org/10.1007/10_010
Tsao, C. K., Ko, C. Y., Yang, S. R., Yang, C. Y., Brey, E. M., Huang, S., … Cheng, M. H. (2014). An ectopic approach for engineering a vascularized tracheal substitute. Biomaterials, 35(4), 1163-1175. https://doi.org/10.1016/j.biomaterials.2013.10.055
Turakhia, A., Little, B. P., & Henry, T. S. (2019). Tracheal narrowing and tracheomalacia. Chest Imaging, p.313.
Turner, C. G., Pennington, E. C., Gray, F. L., Ahmed, A., Teng, Y. D., & Fauza, D. O. (2013). Intra-amniotic delivery of amniotic-derived neural stem cells in a syngeneic model of spina bifida. Fetal Diagnosis and Therapy, 34(1), 38-43. https://doi.org/10.1159/000350267
Udelsman, B., Mathisen, D. J., & Ott, H. C. (2018). A reassessment of tracheal substitutes-A systematic review. Annals of Cardiothoracic Surgery, 7(2), 175-182. https://doi.org/10.21037/acs.2018.01.17
Vacanti, C. A., Paige, K. T., Kim, W. S., Sakata, J., Upton, J., & Vacanti, J. P. (1994). Experimental tracheal replacement using tissue-engineered cartilage. Journal of Pediatric Surgery, 29(2), 201-205. https://doi.org/10.1016/0022-3468(94)90318-2
Varma, R., Aoki, F. G., Soon, K., Karoubi, G., & Waddell, T. K. (2018). Optimal biomaterials for tracheal epithelial grafts: An in vitro systematic comparative analysis. Acta Biomaterialia, 81, 146-157. https://doi.org/10.1016/j.actbio.2018.09.048
Vonk, L. A., van Dooremalen, S. F., Liv, N., Klumperman, J., Coffer, P. J., Saris, D. B., & Lorenowicz, M. J. (2018). Mesenchymal stromal/stem cell-derived extracellular vesicles promote human cartilage regeneration in vitro. Theranostics, 8(4), 906-920. https://doi.org/10.7150/thno.20746
Walles, T. (2004). Bioartificial tracheal grafts: Can tissue engineering keep its promise? Expert Review of Medical Devices, 1(2), 241-250. https://doi.org/10.1586/17434440.1.2.241
Walles, T., Giere, B., Macchiarini, P., & Mertsching, H. (2004). Expansion of chondrocytes in a three-dimensional matrix for tracheal tissue engineering. The Annals of Thoracic Surgery, 78(2), 444-448. https://doi.org/10.1016/j.athoracsur.2004.02.122
Wang, J., Sun, B., Tian, L., He, X., Gao, Q., Wu, T., … Mo, X. (2017). Evaluation of the potential of rhTGF-β3 encapsulated P (LLA-CL)/collagen nanofibers for tracheal cartilage regeneration using mesenchymal stems cells derived from Wharton's jelly of human umbilical cord. Materials Science and Engineering: C, 70, 637-645. https://doi.org/10.1016/j.msec.2016.09.044
Weidenbecher, M., Henderson, J. H., Tucker, H. M., Baskin, J. Z., Awadallah, A., & Dennis, J. E. (2007). Hyaluronan-based scaffolds to tissue-engineer cartilage implants for laryngotracheal reconstruction. The Laryngoscope, 117(10), 1745-1749. https://doi.org/10.1097/MLG.0b013e31811434ae
Wu, T., Zhang, J., Wang, Y., Li, D., Sun, B., El-Hamshary, H., … Mo, X. (2018). Fabrication and preliminary study of a biomimetic tri-layer tubular graft based on fibers and fiber yarns for vascular tissue engineering. Materials Science and Engineering: C, 82, 121-129. https://doi.org/10.1016/j.msec.2017.08.072
Wu, T., Zheng, H., Chen, J., Wang, Y., Sun, B., Morsi, Y., … Mo, X. (2017). Application of a bilayer tubular scaffold based on electrospun poly (L-lactide-co-caprolactone)/collagen fibers and yarns for tracheal tissue engineering. Journal of Materials Chemistry B, 5(1), 139-150. https://doi.org/10.1039/C6TB02484J
Xia, D., Jin, D., Wang, Q., Gao, M., Zhang, J., Zhang, H., … Zhong, Y. (2019). Tissue-engineered trachea from a 3D-printed scaffold enhances whole-segment tracheal repair in a goat model. Journal of Tissue Engineering and Regenerative Medicine, 13(4), 694-703. https://doi.org/10.1002/term.2828
Xu, Y., Li, D., Yin, Z., He, A., Lin, M., Jiang, G., … Wang, X. (2017). Tissue-engineered trachea regeneration using decellularized trachea matrix treated with laser micropore technique. Acta Biomaterialia, 58, 113-121. https://doi.org/10.1016/j.actbio.2017.05.010
Yamamoto, Y., Okamoto, T., Goto, M., Yokomise, H., Yamamoto, M., & Tabata, Y. (2003). Experimental study of bone morphogenetic proteins-2 slow release from an artificial trachea made of biodegradable materials: Evaluation of stenting time. ASAIO Journal, 49(5), 533-536. https://doi.org/10.1097/01.MAT.0000084175.69249.51
Yoon, J. H., Moon, H. J., Seong, J. K., Kim, C. H., Lee, J. J., Choi, Y. J., … Kim, S. H. (2002). Mucociliary differentiation according to time in human nasal epithelial cell culture. Differentiation, 70, 77-83. https://doi.org/10.1046/j.1432-0436.2002.700202.x
Zhang, Y., Xu, Y., Liu, Y., Li, D., Yin, Z., Huo, Y., … Lu, F. (2019). Porous decellularized trachea scaffold prepared by a laser micropore technique. Journal of the Mechanical Behavior of Biomedical Materials, 90, 96-103. https://doi.org/10.1016/j.jmbbm.2018.10.006

Auteurs

Archna Dhasmana (A)

Department of Biotechnology, School of Applied and Life Sciences, Uttaranchal University, Dehradun, India.

Atul Singh (A)

Department of Biotechnology, School of Applied and Life Sciences, Uttaranchal University, Dehradun, India.

Sagar Rawal (S)

Department of Biotechnology, School of Applied and Life Sciences, Uttaranchal University, Dehradun, India.

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