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dc.rights.licenseAtribución-NoComercial 4.0 Internacional
dc.contributor.advisorOrtiz Morales, Jorge Rolando
dc.contributor.advisorChaparro Garzón, Orlando
dc.contributor.advisorLinero Segrera, Itali Marcelly
dc.contributor.authorRamírez Yépez, Camilo Sebastián
dc.date.accessioned2022-02-09T17:27:29Z
dc.date.available2022-02-09T17:27:29Z
dc.date.issued2022
dc.identifier.urihttps://repositorio.unal.edu.co/handle/unal/80922
dc.descriptionilustraciones, fotografías, gráficas, tablas
dc.description.abstractIntroducción: Las lesiones del cartílago hialino, ya sean de tipo traumático o degenerativo dan lugar a defectos condrales u osteocondrales que no cicatrizan con cartílago hialino nuevo. Por esta razón se ha investigado en la terapia regenerativa, con especial atención al secretoma de las células madre mesenquimales (MSC). En el presente estudio se plantea evaluar la condrogénesis del plasma rico en plaquetas (PRP) suplementado con medios condicionados de las células madre mesenquimales derivadas de tejido adiposo (AD-MSC-CM) en un modelo de defecto osteocondral (DO) de rodilla en conejos. Materiales y métodos: se plantea un estudio por fases, una fase piloto en la cual se establece el modelo experimental estandarizando primero la técnica quirúrgica con seis piezas cadavéricas, luego se estandariza el método de administración del tratamiento con dos conejos Nueva Zelanda con supervivencia. El primero se trata únicamente PRP administrado de forma infiltrativa en la rodilla, el segundo se trata con PRP + AD-MSC-CM. Se practica eutanasia a los 7 días y se evalúan los desenlaces y las complicaciones perioperatorias. En las fases siguientes del trabajo se plantea un estudio con 20 conejos: un grupo sham (n=2), un grupo control (n=6), un grupo tratado con PRP (n=6) y un grupo tratado con PRP + AD-MSC-CM (n=6), se sacrifican a las 12 semanas y se evalúa la regeneración condral de forma macroscópica e histológica; y la diferenciación del tipo de cartílago mediante inmunohistoquímica. Resultados: El presente documento muestra los resultados de la fase piloto determinando el diseño del modelo esperimental. Se propone un DO en el surco troclear al lado del tendón extensor digitorium longus. A los 7 días, ambos tratamientos seguían intraarticulares, sin embargo, mientras que el conejo tratado únicamente con PRP no mostraba ningún cambio en el DO, el conejo tratado con PRP + AD-MSC-CM exhibía características de cicatrización en el defecto creado rellenando parcialmente el mismo. Durante siete días, ninguno de los conejos mostró ningún tipo de efecto adverso más que una leve cojera. Tampoco mostraron signos importantes de dolor, malestar o angustia por lo que no hubo necesidad de aplicar criterios de punto final. Discusión y conclusiones: A pesar de las diferencias entre especies, el planteamiento de un DO en conejos permite evaluar el principio del tratamiento a aplicar siendo un modelo costo efectivo, que permitirá analizar la capacidad condrogénica del PRP y los AD-MCS-CM. El PRP es una buena estrategia que sirve como andamiaje para la entrega de factores de crecimiento y además actúa de forma sinérgica con los AD-MSC-CM. Debemos aclarar que los resultados respecto a la condrogénesis deben analizarse mediante un estudio histopatológico en las siguientes fases del estudio y tras haber pasado 12 semanas. A pesar de haber realizado un implante xenogénico no observamos ningún tipo de evento adverso en el conejo tratado con AD-MSC-CM, posiblemente indica que estos son seguros en la aplicación en estudios ulteriores. (Texto tomado de la fuente).
dc.description.abstractEvaluation of adipose-derived mesenchymal stem cell conditioned media mediated chondrogenesis versus platelet-rich plasma in knee osteochondral defects: an experimental model in rabbits Introduction: Hyaline cartilage injuries, whether traumatic or degenerative, give rise to chondral or osteochondral defects that do not heal with new hyaline cartilage. For this reason, it has been investigated in regenerative therapy, with special attention to the mesenchymal stem cell (MSC) secretome. The present study aims to evaluate the chondrogenesis of platelet-rich plasma (PRP) supplemented with adipose-derived mesenchymal stem cells conditioned media (AD-MSC-CM) in a model of knee osteochondral defect (OD) in rabbits. Materials y methods: A phased study is proposed, a pilot phase in which the experimental model is established, first standardizing the surgical technique with six cadaveric pieces, then the treatment administration method is standardized with two New Zealand rabbits with survival. The first is treated only with PRP administered infiltratively in the knee, the second is treated with PRP + AD-MSC-CM. Euthanasia is performed at 7 days and perioperative outcomes and complications are evaluated. In the following phases of the work, a study with 20 rabbits is proposed: a sham group (n=2), a control group (n=6), a group treated with PRP (n=6, and a group treated with PRP + AD. -MSC-CM (n=6), sacrificed at 12 weeks and chondral regeneration is evaluated macroscopically and histologically; and differentiation of cartilage type by immunohistochemistry. Results: This document shows the results of the pilot phase determining the design of the experimental model. A DO is proposed in the trochlear groove next to the extensor digitorium longus tendon. At 7 days, both treatments were still intra-articular, however, while the rabbit treated with PRP alone did not show any change in DO, the rabbit treated with PRP + AD-MSC-CM exhibited healing characteristics in the defect created by partially filling the same. For seven days, none of the rabbits showed any adverse effects other than a slight lameness. They also did not show significant signs of pain, discomfort or distress, so there was no need to apply endpoint criteria. Discussion and conclusions: Despite the differences between species, the approach of a DO in rabbits allows evaluating the principle of the treatment to be applied, being a cost-effective model, which will allow analyzing the chondrogenic capacity of PRP and AD-MCS-CM. PRP is a good strategy that serves as a scaffold for the delivery of growth factors and also acts synergistically with AD-MSC-CM. We must clarify that the results regarding chondrogenesis must be analyzed by means of a histopathological study in the following phases of the study and after 12 weeks have passed. Despite having performed a xenogenic implant, we did not observe any type of adverse event in the rabbit treated with AD-MSC-CM, possibly indicating that these are safe in the application in further studies.
dc.format.extentxiii, 71 páginas
dc.format.mimetypeapplication/pdf
dc.language.isospa
dc.publisherUniversidad Nacional de Colombia
dc.rights.urihttp://creativecommons.org/licenses/by-nc/4.0/
dc.subject.ddc610 - Medicina y salud::611 - Anatomía humana, citología, histología
dc.titleEvaluación de la condrogénesis mediada por medios condicionados de células madre mesenquimales derivadas de tejido adiposo versus plasma rico en plaquetas en defectos osteocondrales de rodilla: un modelo experimental en conejos
dc.typeTrabajo de grado - Especialidad Médica
dc.type.driverinfo:eu-repo/semantics/masterThesis
dc.type.versioninfo:eu-repo/semantics/acceptedVersion
dc.publisher.programBogotá - Medicina - Especialidad en Ortopedia y Traumatología
dc.description.notesIncluye anexos
dc.contributor.researchgroupBiología de Células Madre
dc.description.degreelevelEspecialidades Médicas
dc.description.degreenameEspecialista en Ortopedia y Traumatología
dc.description.methodsEstudio experimental en un modelo animal
dc.description.researchareaCirugía de rodilla
dc.description.researchareaTecnología de tejidos
dc.description.researchareaCiencias básicas
dc.identifier.instnameUniversidad Nacional de Colombia
dc.identifier.reponameRepositorio Institucional Universidad Nacional de Colombia
dc.identifier.repourlhttps://repositorio.unal.edu.co/
dc.publisher.departmentDepartamento de Cirugía
dc.publisher.facultyFacultad de Medicina
dc.publisher.placeBogotá, Colombia
dc.publisher.branchUniversidad Nacional de Colombia - Sede Bogotá
dc.relation.indexedBireme
dc.relation.references1. Carballo CB, Nakagawa Y, Sekiya I, Rodeo SA. Basic Science of Articular Cartilage. Vol. 36, Clinics in Sports Medicine. W.B. Saunders; 2017. p. 413–25.
dc.relation.referencesWhitney Kaitlyn E, Bolia Ioanna, Chahla Jorge, Utsunomiya Hajime, Evans Thos A., Provencher Matthew, et al. Physiology and Homeostasis of Musculoskeletal Structures, Injury Response, Healing Process, and Regenerative Medicine Approaches. In: Gobbi Alberto, Espregueira-Mendes João, Lane John G., Karahan Mustafa, editors. Bio-orthopaedics A New Approach. Berlín; 2017. p. 71–85.
dc.relation.referencesKrishnan Y, Grodzinsky AJ. Cartilage diseases. Vols. 71–72, Matrix Biology. Elsevier B.V.; 2018. p. 51–69.
dc.relation.referencesRoseti Livia, Grigolo Brunella. Host Environment: Scaffolds and Signaling (Tissue Engineering) Articular Cartilage Regeneration: Cells, Scaffolds, and Growth Factors. In: Gobbi A, Espregueira-Mendes J, Lane JG, Karahan M, editors. Bio-orthopaedics A New Approach. Berlin, Heidelberg: Springer Berlin Heidelberg; 2017. p. 87–103.
dc.relation.referencesMaglio M, Brogini S, Pagani S, Giavaresi G, Tschon M. Current Trends in the Evaluation of Osteochondral Lesion Treatments: Histology, Histomorphometry, and Biomechanics in Preclinical Models. Vol. 2019, BioMed Research International. Hindawi Limited; 2019.
dc.relation.referencesVizoso FJ, Eiro N, Cid S, Schneider J, Perez-Fernandez R. Mesenchymal stem cell secretome: Toward cell-free therapeutic strategies in regenerative medicine. Vol. 18, International Journal of Molecular Sciences. MDPI AG; 2017.
dc.relation.referencesZylińska B, Silmanowicz P, Sobczyńska-Rak A, Jarosz Ł, Szponder T. Treatment of articular cartilage defects: Focus on tissue engineering. Vol. 32, In Vivo. International Institute of Anticancer Research; 2018. p. 1289–300.
dc.relation.referencesTobita M, Tajima S, Mizuno H. Adipose tissue-derived mesenchymal stem cells and platelet-rich plasma: Stem cell transplantation methods that enhance stemness Mesenchymal Stem/Stromal Cells-An update. Vol. 6, Stem Cell Research and Therapy. BioMed Central Ltd.; 2015.
dc.relation.referencesChahla Jorge, Cinque Mark, LaPrade Robert F., Mandelbaum Bert. Overview of Orthobiology and Biomechanics. In: Bio-orthopaedics A New Approach. Berlin, Heidelberg: Springer Berlin Heidelberg; 2017. p. 25–40.
dc.relation.referencesCross M, Smith E, Hoy D, Nolte S, Ackerman I, Fransen M, et al. The global burden of hip and knee osteoarthritis: Estimates from the Global Burden of Disease 2010 study. Annals of the Rheumatic Diseases. 2014;73(7):1323–30.
dc.relation.referencesFletscher G. Modificación experimental de la técnica de membrana inducida (Masquelet) mediante uso de medios condicionados producidos por células madre mesenquimales. [Bogotá D.C]; 2014.
dc.relation.referencesLinero I, Chaparro O. Paracrine effect of mesenchymal stem cells derived from human adipose tissue in bone regeneration. PLoS ONE. 2014 Sep 8;9(9).
dc.relation.referencesSánchez R. COMPARACIÓN DEL EFECTO DE MEDIOS CONDICIONADOS DE CULTIVOS DE 2 TIPOS DE CÉLULAS MADRE MESENQUIMALES SOBRE LA CICATRIZACIÓN DE HERIDAS EN RATONES. [Bogotá D.C]; 2011.
dc.relation.referencesKiani C, Chen L, Wu YJ, Yee AJ, Yang BB. Structure and function of aggrecan [Internet]. Vol. 12, Cell Research. 2002. Available from: http://www.cell-research.com
dc.relation.referencesCorrea D, Lietman SA. Articular cartilage repair: Current needs, methods and research directions. Vol. 62, Seminars in Cell and Developmental Biology. Academic Press; 2017. p. 67–77.
dc.relation.referencesAlvarez A, Fuentes R, Soto S, Nguyen Tuan, Garcia Y. Cartílago y gonartrosis. Archivo medico de Camaguey. 2019;23(6).
dc.relation.referencesArmiento AR, Alini M, Stoddart MJ. Articular fibrocartilage - Why does hyaline cartilage fail to repair? Vol. 146, Advanced Drug Delivery Reviews. Elsevier B.V.; 2019. p. 289–305.
dc.relation.referencesPoole A. Robin, Kojima Toshi, Yasuda Tadashi, Mwale Fackson, Kobayashi Masahiko, Laverty Sheila. Composition and Structure of Articular Cartilage: A Template for Tissue Repair. Clinical Orthopaedics & Related Research. 2001;391 Supplement:S26–33.
dc.relation.referencesLubis AMT, Lubis VK. Adult Bone Marrow Stem Cells in Cartilage Therapy.
dc.relation.referencesWu L, Cai X, Zhang S, Karperien M, Lin Y. Regeneration of articular cartilage by adipose tissue derived mesenchymal stem cells: Perspectives from stem cell biology and molecular medicine. Journal of Cellular Physiology. 2013 May;228(5):938–44.
dc.relation.referencesHouck DA, Kraeutler MJ, Belk JW, Frank RM, McCarty EC, Bravman JT. Do Focal Chondral Defects of the Knee Increase the Risk for Progression to Osteoarthritis? A Review of the Literature. Vol. 6, Orthopaedic Journal of Sports Medicine. SAGE Publications Ltd; 2018.
dc.relation.referencesCastillo Tiffany N., Huddleston James I. Total Knee Arthroplasty for the Young, Active Patient with Osteoarthritis. In: Parker D, editor. Management of Knee Osteoarthritis in the Younger, Active Patient. Berlin, Heidelberg: Springer Berlin Heidelberg; 2016. p. 133–47.
dc.relation.referencesSuri P, Morgenroth DC, Hunter DJ. Epidemiology of Osteoarthritis and Associated Comorbidities. Vol. 4, PM and R. 2012.
dc.relation.referencesLondoño J, Peláez Ballestas I, Cuervo F, Angarita I, Giraldo R, Rueda JC, et al. Prevalence of rheumatic disease in Colombia according to the Colombian Rheumatology Association (COPCORD) strategy. Prevalence study of rheumatic disease in Colombian population older than 18 years. Revista Colombiana de Reumatologia. 2018 Oct 1;25(4):245–56.
dc.relation.referencesPintat J, Silvestre A, Magalon G, Gadeau AP, Pesquer L, Perozziello A, et al. Intra-articular Injection of Mesenchymal Stem Cells and Platelet-Rich Plasma to Treat Patellofemoral Osteoarthritis: Preliminary Results of a Long-Term Pilot Study. Journal of Vascular and Interventional Radiology. 2017 Dec 1;28(12):1708–13.
dc.relation.referenceslo Monaco M, Merckx G, Ratajczak J, Gervois P, Hilkens P, Clegg P, et al. Stem Cells for Cartilage Repair: Preclinical Studies and Insights in Translational Animal Models and Outcome Measures. Vol. 2018, Stem Cells International. Hindawi Limited; 2018.
dc.relation.referencesDevitt Brian M., Bell Stuart W., Whitehead Tim S. Cartilage Preservation and Restoration Techniques: Evidence-Based Practice. In: Parker D, editor. Management of Knee Osteoarthritis in the Younger, Active Patient. Berlin, Heidelberg: Springer Berlin Heidelberg; 2016. p. 51–65.
dc.relation.referencesSouthworth TM, Naveen NB, Nwachukwu BU, Cole BJ, Frank RM. Orthobiologics for Focal Articular Cartilage Defects. Vol. 38, Clinics in Sports Medicine. W.B. Saunders; 2019. p. 109–22.
dc.relation.referencesTang Y, Wang H, Sun Y, Jiang Y, Fang S, Kan Z, et al. Using Platelet-Rich Plasma Hydrogel to Deliver Mesenchymal Stem Cells into Three-Dimensional PLGA Scaffold for Cartilage Tissue Engineering. ACS Applied Bio Materials. 2021 Dec 20;4(12):8607–14.
dc.relation.referencesChang NJ, Erdenekhuyag Y, Chou PH, Chu CJ, Lin CC, Shie MY. Therapeutic Effects of the Addition of Platelet-Rich Plasma to Bioimplants and Early Rehabilitation Exercise on Articular Cartilage Repair. American Journal of Sports Medicine. 2018 Jul 1;46(9):2232–41.
dc.relation.referencesMadry H, Orth P, Cucchiarini M. Gene therapy for cartilage repair. Vol. 2, Cartilage. 2011. p. 201–25.
dc.relation.referencesCucchiarini M, Henrionnet C, Mainard D, Pinzano A, Madry H. New trends in articular cartilage repair. Journal of Experimental Orthopaedics. 2015 Dec 1;2(1):1–8.
dc.relation.referencesXie X, Zhang C, Tuan RS. Biology of platelet-rich plasma and its clinical application in cartilage repair. Arthritis Research & Therapy. 2014;16(1):204.
dc.relation.referencesZhu Y, Yuan M, Meng HY, Wang AY, Guo QY, Wang Y, et al. Basic science and clinical application of platelet-rich plasma for cartilage defects and osteoarthritis: A review. Vol. 21, Osteoarthritis and Cartilage. 2013. p. 1627–37.
dc.relation.referencesCampbell KA, Saltzman BM, Mascarenhas R, Khair MM, Verma NN, Bach BR, et al. Does Intra-articular Platelet-Rich Plasma Injection Provide Clinically Superior Outcomes Compared With Other Therapies in the Treatment of Knee Osteoarthritis? A Systematic Review of Overlapping Meta-analyses. Arthroscopy: The Journal of Arthroscopic & Related Surgery. 2015 Nov;31(11):2213–21.
dc.relation.referencesChen Z, Wang C, You D, Zhao S, Zhu Z, Xu M. Platelet-rich plasma versus hyaluronic acid in the treatment of knee osteoarthritis: A meta-analysis. Medicine. 2020 Mar 1;99(11):e19388.
dc.relation.referencesDominici M, le Blanc K, Mueller I, Slaper-Cortenbach I, Marini FC, Krause DS, et al. Minimal criteria for defining multipotent mesenchymal stromal cells. The International Society for Cellular Therapy position statement. Cytotherapy. 2006 Aug;8(4):315–7.
dc.relation.referencesChaparro O, Linero I. Regenerative Medicine: A New Paradigm in Bone Regeneration. In: Advanced Techniques in Bone Regeneration. InTech; 2016.
dc.relation.referencesHan Y, Li X, Zhang Y, Han Y, Chang F, Ding J. Mesenchymal Stem Cells for Regenerative Medicine. Cells. 2019 Aug 13;8(8):886.
dc.relation.referencesIijima H, Isho T, Kuroki H, Takahashi M, Aoyama T. Effectiveness of mesenchymal stem cells for treating patients with knee osteoarthritis: a meta-analysis toward the establishment of effective regenerative rehabilitation. Vol. 3, npj Regenerative Medicine. Nature Publishing Group; 2018.
dc.relation.referencesMaheshwer B, Polce EM, Paul K, Williams BT, Wolfson TS, Yanke A, et al. Regenerative Potential of Mesenchymal Stem Cells for the Treatment of Knee Osteoarthritis and Chondral Defects: A Systematic Review and Meta-analysis. Vol. 37, Arthroscopy - Journal of Arthroscopic and Related Surgery. W.B. Saunders; 2021. p. 362–78.
dc.relation.referencesLalu MM, McIntyre L, Pugliese C, Fergusson D, Winston BW, Marshall JC, et al. Safety of Cell Therapy with Mesenchymal Stromal Cells (SafeCell): A Systematic Review and Meta-Analysis of Clinical Trials. Vol. 7, PLoS ONE. 2012.
dc.relation.referencesPeeters CMM, Leijs MJC, Reijman M, van Osch GJVM, Bos PK. Safety of intra-articular cell-therapy with culture-expanded stem cells in humans: A systematic literature review. Vol. 21, Osteoarthritis and Cartilage. 2013. p. 1465–73.
dc.relation.referencesRubio-Azpeitia E, Andia I. Partnership between platelet-rich plasma and mesenchymal stem cells: in vitro experience. Vol. 4, Ligaments and Tendons Journal. 2014.
dc.relation.referencesAtashi F, Jaconi MEE, Pittet-Cuénod B, Modarressi A. Autologous platelet-rich plasma: A biological supplement to enhance adipose-derived mesenchymal stem cell expansion. Tissue Engineering - Part C: Methods. 2015 Mar 1;21(3):253–62.
dc.relation.referencesLoibl M, Lang S, Brockhoff G, Gueorguiev B, Hilber F, Worlicek M, et al. The effect of leukocyte-reduced platelet-rich plasma on the proliferation of autologous adipose-tissue derived mesenchymal stem cells1. In: Clinical Hemorheology and Microcirculation. IOS Press; 2016. p. 599–614.
dc.relation.referencesJalowiec JM, D’Este M, Bara JJ, Denom J, Menzel U, Alini M, et al. An in Vitro Investigation of Platelet-Rich Plasma-Gel as a Cell and Growth Factor Delivery Vehicle for Tissue Engineering. Tissue Engineering - Part C: Methods. 2016 Jan 1;22(1):49–58.
dc.relation.referencesLee JC, Min HJ, Park HJ, Lee S, Seong SC, Lee MC. Synovial membrane-derived mesenchymal stem cells supported by platelet-rich plasma can repair osteochondral defects in a rabbit model. Arthroscopy - Journal of Arthroscopic and Related Surgery. 2013 Jun;29(6):1034–46.
dc.relation.referencesSamuel S, Ahmad RE, Ramasamy TS, Manan F, Kamarul T. Platelet rich concentrate enhances mesenchymal stem cells capacity to repair focal cartilage injury in rabbits. Injury. 2018 Apr 1;49(4):775–83.
dc.relation.referencesShi WJ, Tjoumakaris FP, Lendner M, Freedman KB. Biologic injections for osteoarthritis and articular cartilage damage: can we modify disease? The Physician and Sportsmedicine. 2017 Jul 3;45(3):203–23.
dc.relation.referencesKoh Y-G, Choi Y-J. Infrapatellar fat pad-derived mesenchymal stem cell therapy for knee osteoarthritis. The Knee. 2012 Dec;19(6):902–7.
dc.relation.referencesKoh Y-G, Kwon O-R, Kim Y-S, Choi Y-J. Comparative Outcomes of Open-Wedge High Tibial Osteotomy With Platelet-Rich Plasma Alone or in Combination With Mesenchymal Stem Cell Treatment: A Prospective Study. Arthroscopy: The Journal of Arthroscopic & Related Surgery. 2014 Nov;30(11):1453–60.
dc.relation.referencesKim YS, Kwon OR, Choi YJ, Suh DS, Heo DB, Koh YG. Comparative Matched-Pair Analysis of the Injection Versus Implantation of Mesenchymal Stem Cells for Knee Osteoarthritis. The American Journal of Sports Medicine. 2015 Nov 3;43(11):2738–46.
dc.relation.referencesLee MJ, Kim J, Kim MY, Bae YS, Ryu SH, Lee TG, et al. Proteomic analysis of tumor necrosis factor-α-induced secretome of human adipose tissue-derived mesenchymal stem cells. Journal of Proteome Research. 2010 Apr 5;9(4):1754–62.
dc.relation.referencesBousnaki M, Bakopoulou A, Kritis A, Koidis P. The Efficacy of Stem Cells Secretome Application in Osteoarthritis: A Systematic Review of In Vivo Studies. Vol. 16, Stem Cell Reviews and Reports. Springer; 2020. p. 1222–41.
dc.relation.referencesVeronesi F, Borsari V, Sartori M, Orciani M, Mattioli-Belmonte M, Fini M. The use of cell conditioned medium for musculoskeletal tissue regeneration. Vol. 233, Journal of Cellular Physiology. Wiley-Liss Inc.; 2018. p. 4423–42.
dc.relation.referencesKatagiri W, Osugi M, Kawai T, Hibi H. First-in-human study and clinical case reports of the alveolar bone regeneration with the secretome from human mesenchymal stem cells. Head & Face Medicine. 2016 Dec 15;12(1):5.
dc.relation.referencesZhou BR, Xu Y, Xu Y, Guo SL, Wang Y, Zhu F, et al. The effect of conditioned media of Adipose-derived stem cells on wound healing after ablative fractional carbon dioxide laser resurfacing. BioMed Research International. 2013;2013.
dc.relation.referencesFukuoka H, Suga H. Hair Regeneration Treatment Using Adipose-Derived Stem Cell Conditioned Medium: Follow-up With Trichograms. 2015.
dc.relation.referencesEscobar CH, Chaparro O. Xeno-Free Extraction, Culture, and Cryopreservation of Human Adipose-Derived Mesenchymal Stem Cells. Stem Cells Translational Medicine. 2016 Mar 1;5(3):358–65.
dc.relation.referencesvan den Borne MPJ, Raijmakers NJH, Vanlauwe J, Victor J, de Jong SN, Bellemans J, et al. International Cartilage Repair Society (ICRS) and Oswestry macroscopic cartilage evaluation scores validated for use in Autologous Chondrocyte Implantation (ACI) and microfracture. Osteoarthritis and Cartilage. 2007 Dec;15(12):1397–402.
dc.relation.referencesHoemann C, Kandel R, Roberts S, Saris DBF, Creemers L, Mainil-Varlet P, et al. International cartilage repair society (ICRS) recommended guidelines for histological endpoints for cartilage repair studies in animal models and clinical trials. Vol. 2, Cartilage. 2011. p. 153–72.
dc.relation.referencesMainil-Varlet P, van Damme B, Nesic D, Knutsen G, Kandel R, Roberts S. A new histology scoring system for the assessment of the quality of human cartilage repair: ICRS II. American Journal of Sports Medicine. 2010;38(5):880–90.
dc.relation.referencesCongreso de la República de Colombia. Ley 84 de 1989: Por la cual se adopta el Estatuto Nacional de Protección de los Animales y se crean unas contravenciones y se regula lo referente a su procedimiento y competencia. Diario Oficial 39120. Bogotá D.C.; 1989.
dc.relation.referencesMinisterio de salud. Resolución número 8430 de 1993. Bogotá D.C; 1993.
dc.relation.referencesMeng X, Ziadlou R, Grad S, Alini M, Wen C, Lai Y, et al. Animal Models of Osteochondral Defect for Testing Biomaterials. Vol. 2020, Biochemistry Research International. Hindawi Limited; 2020.
dc.relation.referencesMoran CJ, Ramesh A, Brama PAJ, O’Byrne JM, O’Brien FJ, Levingstone TJ. The benefits and limitations of animal models for translational research in cartilage repair. Vol. 3, Journal of Experimental Orthopaedics. Springer Berlin Heidelberg; 2016. p. 1–12.
dc.relation.referencesHiga K, Kitamura N, Goto K, Kurokawa T, Gong JP, Kanaya F, et al. Effects of osteochondral defect size on cartilage regeneration using a double-network hydrogel. BMC Musculoskeletal Disorders. 2017 May 22;18(1).
dc.relation.referencesCampos Y, Almirall A, Fuentes G, Bloem HL, Kaijzel EL, Cruz LJ. Tissue Engineering: An Alternative to Repair Cartilage. Tissue Engineering Part B: Reviews. 2019 Aug;25(4):357–73.
dc.relation.referencesYin Z, Yang X, Jiang Y, Xing L, Xu Y, Lu Y, et al. Platelet-rich plasma combined with agarose as a bioactive scaffold to enhance cartilage repair: An in vitro study. Journal of Biomaterials Applications. 2014 Mar 3;28(7):1039–50.
dc.relation.referencesZhang YT, Niu J, Wang Z, Liu S, Wu J, Yu B. Repair of osteochondral defects in a rabbit model using bilayer poly(Lactide-co-Glycolide) scaffolds loaded with autologous platelet-rich plasma. Medical Science Monitor. 2017 Oct 31;23:5189–201.
dc.relation.referencesLi Z, Zhang X, Yuan T, Zhang Y, Luo C, Zhang J, et al. Addition of Platelet-Rich Plasma to Silk Fibroin Hydrogel Bioprinting for Cartilage Regeneration. Tissue Engineering - Part A. 2020 Aug 1;26(15–16):886–95.
dc.relation.referencesSermer C, Devitt B, Chahal J, Kandel R, Theodoropoulos J. The addition of platelet-rich plasma to scaffolds used for cartilage repair: A review of human and animal studies. Vol. 31, Arthroscopy - Journal of Arthroscopic and Related Surgery. W.B. Saunders; 2015. p. 1607–25.
dc.relation.referencesBeigi M-H, Atefi A, Ghanaei H-R, Labbaf S, Ejeian F, Nasr-Esfahani M-H. Activated platelet-rich plasma improves cartilage regeneration using adipose stem cells encapsulated in a 3D alginate scaffold. Journal of Tissue Engineering and Regenerative Medicine. 2018 Jun;12(6):1327–38.
dc.relation.referencesAnitua E, Tejero R, Alkhraisat MH, Orive G. Platelet-rich plasma to improve the bio-functionality of biomaterials. Vol. 27, BioDrugs. 2013. p. 97–111.
dc.relation.referencesSlimi F, Zribi W, Trigui M, Amri R, Gouiaa N, Abid C, et al. The effectiveness of platelet-rich plasma gel on full-thickness cartilage defect repair in a rabbit model Aims The present study investigates the effectiveness of platelet-rich plasma (PRP) gel without adjunct to induce cartilage regeneration in large osteochondral defects in a rabbit model. Methods. Bone Joint Res. 2021;10(3):192–202.
dc.relation.referencesVinod E, Vinod Francis D, Manickam Amirtham S, Sathishkumar S, Boopalan PRJVC. Allogeneic platelet rich plasma serves as a scaffold for articular cartilage derived chondroprogenitors. Tissue and Cell. 2019 Feb;56:107–13.
dc.relation.referencesBerninger MT, Wexel G, Rummeny EJ, Imhoff AB, Anton M, Henning TD, et al. Treatment of osteochondral defects in the rabbit’s knee joint by implantation of allogeneic mesenchymal stem cells in fibrin clots. Journal of visualized experiments : JoVE. 2013;(75).
dc.relation.referencesKhanmohammadi M, Golshahi H, Saffarian Z, Montazeri S, Khorasani S, Kazemnejad S. Repair of Osteochondral Defects in Rabbit Knee Using Menstrual Blood Stem Cells Encapsulated in Fibrin Glue: A Good Stem Cell Candidate for the Treatment of Osteochondral Defects. Tissue Engineering and Regenerative Medicine. 2019 Jun 1;16(3):311–24.
dc.relation.referencesChona D v., Kha ST, Minetos PD, LaPrade CM, Chu CR, Abrams GD, et al. Biologic Augmentation for the Operative Treatment of Osteochondral Defects of the Knee: A Systematic Review. Vol. 9, Orthopaedic Journal of Sports Medicine. SAGE Publications Ltd; 2021.
dc.relation.referencesDai WL, Zhou AG, Zhang H, Zhang J. Efficacy of Platelet-Rich Plasma in the Treatment of Knee Osteoarthritis: A Meta-analysis of Randomized Controlled Trials. Arthroscopy - Journal of Arthroscopic and Related Surgery. 2017 Mar 1;33(3):659-670.e1.
dc.relation.referencesLe ADK, Enweze L, DeBaun MR, Dragoo JL. Current Clinical Recommendations for Use of Platelet-Rich Plasma. Vol. 11, Current Reviews in Musculoskeletal Medicine. Humana Press Inc.; 2018. p. 624–34.
dc.relation.referencesCaruana A, Savina D, Macedo JP, Soares SC. From Platelet-Rich Plasma to Advanced Platelet-Rich Fibrin: Biological Achievements and Clinical Advances in Modern Surgery. Vol. 13, European Journal of Dentistry. Georg Thieme Verlag; 2019. p. 280–6.
dc.relation.referencesBarbon S, Stocco E, Macchi V, Contran M, Grandi F, Borean A, et al. Platelet-rich fibrin scaffolds for cartilage and tendon regenerative medicine: From bench to bedside. Vol. 20, International Journal of Molecular Sciences. MDPI AG; 2019.
dc.relation.referencesWong CC, Chen CH, Chan WP, Chiu LH, Ho WP, Hsieh FJ, et al. Single-Stage Cartilage Repair Using Platelet-Rich Fibrin Scaffolds With Autologous Cartilaginous Grafts. American Journal of Sports Medicine. 2017 Nov 1;45(13):3128–42.
dc.relation.referencesMaruyama M, Satake H, Suzuki T, Honma R, Naganuma Y, Takakubo Y, et al. Comparison of the Effects of Osteochondral Autograft Transplantation With Platelet-Rich Plasma or Platelet-Rich Fibrin on Osteochondral Defects in a Rabbit Model. American Journal of Sports Medicine. 2017 Dec 1;45(14):3280–8.
dc.relation.referencesHsu YK, Sheu SY, Wang CY, Chuang MH, Chung PC, Luo YS, et al. The effect of adipose-derived mesenchymal stem cells and chondrocytes with platelet-rich fibrin releasates augmentation by intra-articular injection on acute osteochondral defects in a rabbit model. Knee. 2018 Dec 1;25(6):1181–91.
dc.relation.referencesWu C-C, Sheu S-Y, Hsu L-H, Yang K-C, Tseng C-C, Kuo T-F. Intra-articular Injection of platelet-rich fibrin releasates in combination with bone marrow-derived mesenchymal stem cells in the treatment of articular cartilage defects: An in vivo study in rabbits. Journal of Biomedical Materials Research Part B: Applied Biomaterials. 2017 Aug;105(6):1536–43.
dc.relation.referencesKazemi D, Fakhrjou A. Leukocyte and platelet rich plasma (L-PRP) versus leukocyte and platelet rich fibrin (L-PRF) for articular cartilage repair of the knee: A comparative evaluation in an animal model. Iranian Red Crescent Medical Journal. 2015 Oct 1;17(10).
dc.relation.referencesLee BH, Park JN, Lee EJ, Moon YW, Wang JH. Therapeutic Efficacy of Spherical Aggregated Human Bone Marrow–Derived Mesenchymal Stem Cells Cultured for Osteochondral Defects of Rabbit Knee Joints. American Journal of Sports Medicine. 2018 Jul 1;46(9):2242–52.
dc.relation.referencesZayed M, Newby S, Misk N, Donnell R, Dhar M. Xenogenic implantation of equine synovial fluid-derived mesenchymal stem cells leads to articular cartilage regeneration. Stem Cells International. 2018;2018.
dc.relation.referencesPei M, Yan Z, Shoukry M, Boyce BM. Failure of xenoimplantation using porcine synovium-derived stem cell-based cartilage tissue constructs for the repair of rabbit osteochondral defects. Journal of Orthopaedic Research. 2010 Aug;28(8):1064–70.
dc.rights.accessrightsinfo:eu-repo/semantics/openAccess
dc.subject.decsModelos Animales
dc.subject.decsModels, Animal
dc.subject.decsCondrogénesis
dc.subject.decsChondrogenesis
dc.subject.decsStem Cells
dc.subject.decsCélulas Madre
dc.subject.proposalCartílago
dc.subject.proposalCélulas madre mesenquimales
dc.subject.proposalMedios condicionados
dc.subject.proposalSecretoma
dc.subject.proposalCartilage
dc.subject.proposalMesenchimal stem cells
dc.subject.proposalConditioned media
dc.subject.proposalSecretome
dc.title.translatedEvaluation of adipose derived mesenchymal stem cell conditioned media mediated chondrogenesis versus platelet rich plasma in knee osteochondral defects: an experimental model in rabbits
dc.type.coarhttp://purl.org/coar/resource_type/c_bdcc
dc.type.coarversionhttp://purl.org/coar/version/c_ab4af688f83e57aa
dc.type.contentText
dc.type.redcolhttp://purl.org/redcol/resource_type/TM
oaire.accessrightshttp://purl.org/coar/access_right/c_abf2
oaire.fundernameConvocatoria para el Apoyo a Proyectos de Investigación, Creación Artística e Innovación de la Sede de Bogota de la universidad Nacional de Colombia – 2020 (HERMES)
dcterms.audience.professionaldevelopmentEstudiantes
dcterms.audience.professionaldevelopmentInvestigadores
dcterms.audience.professionaldevelopmentMaestros
dcterms.audience.professionaldevelopmentPúblico general


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