Hyaluronic acid hydrogels incorporating platelet lysate enhance human pulp cell proliferation and differentiation (original) (raw)
References
Silva CR, Gomez-Florit M, Babo PS, Reis RL, Gomes ME. 3D Functional scaffolds for dental tissue engineering. Funct. 3D Tissue Eng. Scaffolds. Elsevier; 2018. pp. 423–50.
Ferroni L, Gardin C, Sivolella S, Brunello G, Berengo M, Piattelli A, et al. A hyaluronan-based scaffold for the in vitro construction of dental pulp-like tissue. Int J Mol Sci. 2015;16:4666–81. ArticleCAS Google Scholar
Chrepa V, Austah O, Diogenes A. Evaluation of a commercially available hyaluronic acid hydrogel (restylane) as injectable scaffold for dental pulp regeneration: an in vitro evaluation. J Endod. 2017;43:257–62. Article Google Scholar
Inuyama Y, Kitamura C, Nishihara T, Morotomi T, Nagayoshi M, Tabata Y, et al. Effects of hyaluronic acid sponge as a scaffold on odontoblastic cell line and amputated dental pulp. J Biomed Mater Res Part B Appl Biomater. 2010;92B:120–8. ArticleCAS Google Scholar
Soares DG, Rosseto HL, Basso FG, Scheffel DS, Hebling J, Costa CA, de S. Chitosan-collagen biomembrane embedded with calcium-aluminate enhances dentinogenic potential of pulp cells. Braz Oral Res. 2016;30:1–10. Google Scholar
Dobie K, Smith G, Sloan AJ, Smith AJ. Effects of alginate hydrogels and TGF-β1 on human dental pulp repair in vitro. Connect Tissue Res. 2002;43:387–90. ArticleCAS Google Scholar
Kitamura C, Nishihara T,Terashita M,Tabata Y,Washio A. Local regeneration of dentin-pulp complex using controlled release of FGF-2 and naturally derived sponge-like scaffolds. Int J Dent. 2012;2012:1–8. Article Google Scholar
Ishimatsu H, Kitamura C, Morotomi T, Tabata Y, Nishihara T, Chen KK, et al. Formation of dentinal bridge on surface of regenerated dental pulp in dentin defects by controlled release of fibroblast growth factor-2 from gelatin hydrogels. J Endod. 2009;35:858–65. Article Google Scholar
Qu T, Jing J, Ren Y, Ma C, Feng JQ, Yu Q, et al. Complete pulpodentin complex regeneration by modulating the stiffness of biomimetic matrix. Acta Biomater. 2015;16:60–70. ArticleCAS Google Scholar
Piva E, Silva AF, Nör JE. Functionalized scaffolds to control dental pulp stem cell fate. J Endod. 2014;40:S33–40. Article Google Scholar
Suzuki T, Lee CH, Chen M, Zhao W, Fu SY, Qi JJ, et al. Induced migration of dental pulp stem cells for in vivo pulp regeneration. J Dent Res. 2011;90:1013–8. ArticleCAS Google Scholar
Galler KM, Cavender AC, Koeklue U, Suggs LJ, Schmalz G, D’Souza RN. Bioengineering of dental stem cells in a PEGylated fibrin gel. Regen Med. 2011;6:191–200. ArticleCAS Google Scholar
Yang JW, Zhang YF, Sun ZY, Song GT, Chen Z. Dental pulp tissue engineering with bFGF-incorporated silk fibroin scaffolds. J Biomater Appl. 2015;30:221–9. ArticleCAS Google Scholar
Jih G,Wu H,Chen M, Chen M, Chang S, Wang T. Control of three-dimensional substrate stiffness to manipulate mesenchymal stem cell fate toward neuronal or glial lineages. Acta Biomaterialia. 2013;9:5170–80. Article Google Scholar
Shibata S, Yoneda S, Yanagishita M, Yamashita Y. Isolation of proteoglycan (versican) aggregate from rat dental pulp. Arch Oral Biol. 2000;45:563–8. ArticleCAS Google Scholar
Babo PS, Reis RL, Gomes ME. Production and characterization of hyaluronic acid microparticles for the controlled delivery of growth factors using a spray/dehydration method. J Biomater Appl. 2016;31:693–707. ArticleCAS Google Scholar
Domingues RMA, Silva M, Gershovich P, Betta S, Babo P, Caridade SG, et al. Development of injectable hyaluronic acid/cellulose nanocrystals bionanocomposite hydrogels for tissue engineering applications. Bioconjug Chem. 2015;26:1571–81. ArticleCAS Google Scholar
Babo PS, Pires RL, Santos L, Franco A, Rodrigues F, Leonor I, et al. Platelet lysate-loaded photocrosslinkable hyaluronic acid hydrogels for periodontal endogenous regenerative technology. ACS Biomater Sci Eng. 2017;3:1359–69. ArticleCAS Google Scholar
Neves LS, Babo PS, Gonalves AI, Costa-Almeida R, Caridade SG, Mano JF, et al. Injectable hyaluronic acid hydrogels enriched with platelet lysate as a cryostable off-the-shelf system for cell-based therapies. Regen Eng Transl Med. 2017;3:53–69. https://doi.org/10.1007/s40883-017-0029-8. Article Google Scholar
Burdick JA, Chung C, Jia X, Randolph MA, Langer R. Controlled degradation and mechanical behavior of photopolymerized hyaluronic acid networks. Biomacromolecules. 2005;6:386–91. ArticleCAS Google Scholar
Fekete N, Gadelorge M, Fürst D, Maurer C, Dausend J, Fleury-Cappellesso S, et al. Platelet lysate from whole blood-derived pooled platelet concentrates and apheresis-derived platelet concentrates for the isolation and expansion of human bone marrow mesenchymal stromal cells: production process, content and identification of active comp. Cytotherapy. 2012;14:540–54. ArticleCAS Google Scholar
Crespo-Diaz R, Behfar A, Butler GW, Padley DJ, Sarr MG, Bartunek J, et al. Platelet lysate consisting of a natural repair proteome supports human mesenchymal stem cell proliferation and chromosomal stability. Cell Transplant. 2011;20:797–812. Article Google Scholar
Zimmermann R, Jakubietz R, Jakubietz M, Strasser E, Schlegel A, Wiltfang J, et al. Different preparation methods to obtain platelet components as a source of growth factors for local application. Transfus. 2001;41:1217–24. ArticleCAS Google Scholar
Tziafas D. Basic mechanisms of cytodifferentiation and dentinogenesis during dental pulp repair. Int J Dev Biol. 2017;39:281–90. Google Scholar
Chase LG, Lakshmipathy U, Solchaga LA, Rao MS, Vemuri MC. A novel serum-free medium for the expansion of human mesenchymal stem cells. Stem Cell Res Ther. 2010;1:8. Article Google Scholar
Costa-Almeida R, Franco AR, Pesqueira T, Oliveira MB, Babo PS, Leonor IB, Mano JF, Reis RL, Gomes ME. The effects of platelet lysate patches on the activity of tendon-derived cells. Acta Biomaterialia. 2018;68:29–40. ArticleCAS Google Scholar
Silva ED, Babo PS, Costa-Almeida R, Domingues RMA, Mendes BB, Paz E, et al. Multifunctional magnetic-responsive hydrogels to engineer tendon-to-bone interface. Nanomed Nanotechnol Biol Med. 2017.
Gronthos S, Mankani M, Brahim J, Robey PG, Shi S. Postnatal human dental pulp stem cells (DPSCs) in vitro and invivo. Proc Natl Acad Sci. 2000;97:13625–30. ArticleCAS Google Scholar
Galler KM, Buchalla W, Hiller KA, Federlin M, Eidt A, Schiefersteiner M, et al. Influence of root canal disinfectants on growth factor release from dentin. J Endod. 2015;41:363–8. Article Google Scholar
Mao JJ, Kim SG, Zhou J, Ye L, Cho S, Suzuki T, et al. Regenerative endodontics. Dent Clin North Am. 2012;56:639–49. Article Google Scholar
Woo S, Kim W, Lim H. Combination of mineral trioxide aggregate and platelet-rich fibrin promotes the odontoblastic differentiation and mineralization of human dental pulp cells via BMP/Smad signaling pathway. Journal of Endodontics. 2016;42:82–8. Article Google Scholar
Fortunato TM, Beltrami C, Emanueli C, De Bank PA, Pula G. Platelet lysate gel and e ndothelial progenitors stimulate microvascular network formation in vitro: tissue engineering implications. Sci Rep. 2016;6:25326.
Banchs F, Trope M. Revascularization of immature permanent teeth with apical periodontitis: new treatment protocol? J Endod. 2004;30:196–200. Article Google Scholar
Shivashankar VY, Johns DA, Vidyanath S, Kumar MrR, Shivashankar VY. Platelet rich fibrin in the revitalization of tooth with necrotic pulp and open apex. J Conserv Dent. 2012;15:395. ArticleCAS Google Scholar
Chen B, Sun H-H, Wang H-G, Kong H, Chen F-M, Yu Q. The effects of human platelet lysate on dental pulp stem cells derived from impacted human third molars. Biomaterials. 2012;33:5023–35. ArticleCAS Google Scholar
Apel K, Hirt H. Reactive oxygen species: metabolism, oxidative stress, and signal transduction. Annu Rev Plant Biol. 2004;55:373–99. ArticleCAS Google Scholar
Wu R, Yu Y, Yin Y, Zhang X-Y, Gao L, Chen F-M. Platelet lysate supports the in vitro expansion of human periodontal ligament stem cells for cytotherapeutic use. J Tissue Eng Regen Med. 2017;11:2261–75. ArticleCAS Google Scholar
Santo VE, Babo P, Amador M, Correia C, Cunha B, Coutinho DF, et al. Engineering enriched microenvironments with gradients of platelet lysate in hydrogel fibers. Biomacromolecules. 2016;17:1985–97. ArticleCAS Google Scholar
Altaie A. Use of platelet lysate for bone regeneration-are we ready for clinical translation? World J Stem Cells. 2016;8:47. Article Google Scholar
Copland IB, Garcia MA, Waller EK, Roback JD, Galipeau J. The effect of platelet lysate fibrinogen on the functionality of MSCs in immunotherapy. Biomaterials. 2013;34:7840–50. ArticleCAS Google Scholar
Renn T-Y, Kao Y-H, Wang C-C, Burnouf T. Anti-inflammatory effects of platelet biomaterials in a macrophage cellular model. Vox Sang. 2015;109:138–47. ArticleCAS Google Scholar
Snyder TN, Madhavan K, Intrator M, Dregalla RC, Park D. A fibrin/hyaluronic acid hydrogel for the delivery of mesenchymal stem cells and potential for articular cartilage repair. J Biol Eng. 2014;8:10. Article Google Scholar
Zhang Y, Heher P, Hilborn J, Redl H, Ossipov DA. Hyaluronic acid-fibrin interpenetrating double network hydrogel prepared in situ by orthogonal disulfide cross-linking reaction for biomedical applications. Acta Biomater. 2016;38:23–32. ArticleCAS Google Scholar
Golub EE, Boesze-Battaglia K. The role of alkaline phosphatase in mineralization. Curr Opin Orthop. 2007;18:444–8. Article Google Scholar
Gaur T, Lengner CJ, Hovhannisyan H, Bhat RA, Bodine PVN, Komm BS, et al. Canonical WNT signaling promotes osteogenesis by directly stimulating Runx2 gene expression. J Biol Chem. 2005;280:33132–40. ArticleCAS Google Scholar
Shui C, Spelsberg TC, Riggs BL, Khosla S. Changes in Runx2/Cbfa1 expression and activity during osteoblastic differentiation of human bone marrow stromal cells. J Bone Miner Res. 2003;18:213–21. ArticleCAS Google Scholar
Xiao G, Jiang D, Gopalakrishnan R, Franceschi RT. Fibroblast growth factor 2 induction of the osteocalcin gene requires MAPK activity and phosphorylation of the osteoblast transcription factor, Cbfa1/Runx2. J Biol Chem. 2002;277:36181–7. ArticleCAS Google Scholar
Kubota K, Sakikawa C, Katsumata M, Nakamura T, Wakabayashi K. Platelet-derived growth factor BB secreted from osteoclasts acts as an osteoblastogenesis inhibitory factor. J Bone Miner Res. 2002;17:257–65. ArticleCAS Google Scholar
Malhotra A, Pelletier MH, Yu Y, Walsh WR. Can platelet-rich plasma (PRP) improve bone healing? A comparison between the theory and experimental outcomes. Arch Orthop Trauma Surg. 2013;133:153–65. Article Google Scholar
Oryan A, Alidadi S, Moshiri A. Platelet-rich plasma for bone healing and regeneration. Expert Opin Biol Ther. 2016;16:213–32. ArticleCAS Google Scholar
Oliveira SM, Santo VE, Gomes ME, Reis RL, Mano JF. Layer-by-layer assembled cell instructive nanocoatings containing platelet lysate. Biomaterials. 2015;48:56–65. ArticleCAS Google Scholar
Sasaki T, Kawamata-Kido H. Providing an environment for reparative dentine induction in amputated rat molar pulp by high molecular-weight hyaluronic acid. Arch Oral Biol. 1995;40:209–19. ArticleCAS Google Scholar
Leotot J, Coquelin L, Bodivit G, Bierling P, Hernigou P, Rouard H, et al. Platelet lysate coating on scaffolds directly and indirectly enhances cell migration, improving bone and blood vessel formation. Acta Biomater. 2013;9:6630–40. ArticleCAS Google Scholar