Revista nº 817

Ingeniería tisular en cirugía pediátrica | Botía Martínez C, et al. 164 Actual Med.2023;108(817):157-164 38. Rouch JD, Scott A, Jabaji ZB, Chiang E, Wu BM, Lee SL, et al. Basic fibroblast growth factor eluting microsphe- res enhance distraction enterogenesis. J Pediatr Surg. 2016;51(6):960–5. 39. Workman MJ, Mahe MM, Trisno S, Poling HM, Watson CL, Sundaram N, et al. Engineered human pluripotent-stem-ce- ll-derived intestinal tissues with a functional enteric ner- vous system. Nat Med. 2017;23(1):49–59. 40. Jahanbin A, Rashed R, Alamdari DH, Koohestanian N, Ez- zati A, Kazemian M, et al. Success of Maxillary Alveolar De- fect Repair in Rats Using Osteoblast-Differentiated Human Deciduous Dental Pulp Stem Cells. J Oral Maxillofac Surg. 2016;74(4):829.e1-829.e9. https://linkinghub.elsevier.com/ retrieve/pii/S0278239115016560 41. Mossaad A, El Badry T, Abdelrahman M, Abd Elazeem A, Ghanem W, Hassan S, et al. Alveolar Cleft Reconstruction Using Different Grafting Techniques. Maced J Med Sci. 2019;7(8):1369–73. https://spiroski.migration.publick- nowledgeproject.org/index.php/mjms/article/view/oam- jms.2019.236 42. Panetta NJ, Gupta DM, Slater BJ, Kwan MD, Liu KJ, Lon- gaker MT. Tissue Engineering in Cleft Palate and Other Con- genital Malformations. Pediatr Res. 2008 May;63(5):545– 51. http://www.nature.com/doifinder/10.1203/PDR. 0b013e31816a743e 43. Sahai S, Wilkerson M, Xue H, Moreno N, Carrillo L, Flores R, et al. Wharton’s Jelly for Augmented Cleft Palate Repair in a Rat Critical-Size Alveolar Bone Defect Model. Tissue Eng Part A. 2020;26(11–12):591–601. https://www.liebertpub. com/doi/10.1089/ten.tea.2019.0254 44. Martín-del-Campo M, Rosales-Ibañez R, Rojo L. Bioma- terials for Cleft Lip and Palate Regeneration. Int J Mol Sci. 2019;20(9):2176. https://www.mdpi.com/1422- 0067/20/9/2176 45. Wang MM, Flores RL, Witek L, Torroni A, Ibrahim A, Wang Z, et al. Dipyridamole-loaded 3D-printed bioceramic scaffolds stimulate pediatric bone regeneration in vivo without dis- ruption of craniofacial growth through facial maturity. Sci Rep. 2019;9(1) 46. Brett E, Tevlin R, McArdle A, Seo EY, Chan CKF, Wan DC, et al. Human Adipose‐Derived Stromal Cell Isolation Methods and Use in Osteogenic and Adipogenic In Vivo Applications. Curr Protoc Stem Cell Biol. 2017;43(1):2H.1.1-2H.1.15. https:// onlinelibrary.wiley.com/doi/abs/10.1002/cpsc.41 47. Liceras-Liceras E, Garzón I, España-López A, Oliveira ACX, García-Gómez M, Martín-Piedra MÁ, et al. Generation of a bioengineered autologous bone substitute for palate repair: an in vivo study in laboratory animals. J Tissue Eng Regen Med. 2017;11(6):1907–14. 48. Ophof R, Maltha JC, Kuijpers-Jagtman AM, Von Den Hoff JW. Evaluation of a collagen-glycosaminoglycan dermal substi- tute in the dog palate. Tissue Eng. 2007;13(11):2689–98. 49. Martín-Piedra MA, Alaminos · M, Fernández-Valadés-Gá- mez · R, España-López · A, Liceras-Liceras · E, Sán- chez-Montesinos · I, et al. Development of a multilayered palate substitute in rabbits: a histochemical ex vivo and in vivo analysis. Histochem Cell Biol. 2017;147:377–88. Si desea citar nuestro artículo: Botía Martínez C, Fernández Valadés R, Alaminos Mingorance M. Aplicación de la ingeniería tisular en cirugía pediátrica. Actual Med.2023;108(817):157-164. DOI:10.15568/am.2023.817. rev01

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