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Stem cells for tissue engineered vascular bypass grafts

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Pages 999-1010 | Received 23 Dec 2015, Accepted 30 May 2016, Published online: 21 Jun 2016

References

  • Adebayo O, Hookway TA, Hu JZ, Billiar KL, Rolle MW. 2013. Self-assembled smooth muscle cell tissue rings exhibit greater tensile strength than cell-seeded fibrin or collagen gel rings. J Biomed Mater Res A. 101:428–437.
  • Arrigoni C, Chitto A, Mantero S, Remuzzi A. 2008. Rotating versus perfusion bioreactor for the culture of engineered vascular constructs based on hyaluronic acid. Biotechnol Bioeng. 100:988–997.
  • Baguneid M, de Mel A, Yildirimer L, Fuller BJ, Hamilton G, Seifalian AM. 2011. In vivo study of a model tissue-engineered small-diameter vascular bypass graft. Biotechnol Appl Biochem. 58:14–24.
  • Baguneid M, Murray D, Salacinski HJ, Fuller B, Hamilton G, Walker M, Seifalian AM. 2004. Shear-stress preconditioning and tissue-engineering-based paradigms for generating arterial substitutes. Biotechnol Appl Biochem. 39:151–157.
  • Bajpai VK, Mistriotis P, Loh Y-H, Daley GQ, Andreadis ST. 2012. Functional vascular smooth muscle cells derived from human induced pluripotent stem cells via mesenchymal stem cell intermediates. Cardiovasc Res. 96:391–400.
  • Bertanha M, Moroz A, Almeida R, Alves FC, Valério MJA, Moura R, et al. 2014. Tissue-engineered blood vessel substitute by reconstruction of endothelium using mesenchymal stem cells induced by platelet growth factors. J Vasc Surg. 59:1677–1685.
  • Bourget J-M, Gauvin R, Duchesneau D, Remy M, Auger FA, Germain L. 2015. Potential of newborn and adult stem cells for the production of vascular constructs using the living tissue sheet approach. Biomed Res Int. 2015:168294.
  • Bourget J-M, Laterreur V, Guillemette M, Gauvin R, Miville-Godin C, Mounier M, et al. 2013. Recent advances in the development of tissue-engineered vascular media made by self-assembly. Proc Eng. 59:201–205.
  • Caplan AI. 2008. All MSCs are pericytes? Cell Stem Cell. 3:229–230.
  • Caplan AI, Dennis JE. 2006. Mesenchymal stem cells as trophic mediators. J Cell Biochem. 98:1076–1084.
  • Chowdhury F, Na S, Li D, Poh Y-C, Tanaka TS, Wang F, Wang N. 2009. Material properties of the cell dictate stress-induced spreading and differentiation in embryonic stem cells. Nat Mater. 9:82–88.
  • Chung S, Sudo R, Vickerman V, Zervantonakis IK, Kamm RD. 2010. Microfluidic platforms for studies of angiogenesis, cell migration, and cell-cell interactions. Sixth International Bio-Fluid Mechanics Symposium and Workshop March 28-30, 2008 Pasadena, California. Ann Biomed Eng. 38:1164–1177.
  • Cleary MA, Geiger E, Grady C, Best C, Naito Y, Breuer C. 2012. Vascular tissue engineering: the next generation. Trends Mol Med. 18:394–404.
  • Covas DT, Panepucci RA, Fontes AM, Silva WA, Orellana MD, Freitas MC, et al. 2008. Multipotent mesenchymal stromal cells obtained from diverse human tissues share functional properties and gene-expression profile with CD146+ perivascular cells and fibroblasts. Exp Hematol. 36:642–654.
  • Dahl SL, Kypson AP, Lawson JH, Blum JL, Strader JT, Li Y, et al. 2011. Readily available tissue-engineered vascular grafts. Sci Transl Med. 3:68ra9.
  • Fan H, Li S. 2015. Modeling universal dynamics of cell spreading on elastic substrates. Biomech Model Mechanobiol. 14:1265–1280.
  • Fernandez CE, Achneck HE, Reichert WM, Truskey GA. 2014. Biological and engineering design considerations for vascular tissue engineered blood vessels (TEBVs). Curr Opin Chem Eng. 3:83–90.
  • Gong Z, Niklason LE. 2008. Small-diameter human vessel wall engineered from bone marrow-derived mesenchymal stem cells (hMSCs). FASEB J. 22:1635–1648.
  • Harris LJ, Abdollahi H, Zhang P, McIlhenny S, Tulenko TN, DiMuzio PJ. 2011. Differentiation of adult stem cells into smooth muscle for vascular tissue engineering. J Surg Res. 168:306–314.
  • Hasan A, Memic A, Annabi N, Hossain M, Paul A, Dokmeci MR, Dehghani F, Khademhosseini A. 2014. Electrospun scaffolds for tissue engineering of vascular grafts. Acta Biomater. 10:11–25.
  • Hashi CK, Zhu Y, Yang G-Y, Young WL, Hsiao BS, Wang K, Chu B, Li S. 2007. Antithrombogenic property of bone marrow mesenchymal stem cells in nanofibrous vascular grafts. Proc Natl Acad Sci USA. 104:11915–11920.
  • Hirai J, Matsuda T. 1996. Venous reconstruction using hybrid vascular tissue composed of vascular cells and collagen: tissue regeneration process. Cell Transplant. 5:93–105.
  • Hu J, Wang Y, Jiao J, Liu Z, Zhao C, Zhou Z, et al. 2015. Patient-specific cardiovascular progenitor cells derived from integration-free induced pluripotent stem cells for vascular tissue regeneration. Biomaterials. 73:51–59.
  • Iordache F, Constantinescu A, Andrei E, Curuţiu C, Grumezescu AM, Voicu G, Maniu H. 2014. In vitro cytocompatibility evaluation of collagen based scaffolds using human endothelial progenitor cells for vascular tissue engineering. Biomaterials. 1:10–16.
  • Kamenskiy A, Pipinos II, MacTaggart JN, Kazmi SAJ, Dzenis YA. 2011. Comparative analysis of the biaxial mechanical behavior of carotid wall tissue and biological and synthetic materials used for carotid patch angioplasty. J Biomech Eng. 133:1–10.
  • Kannan RY, Salacinski HJ, Edirisinghe MJ, Hamilton G, Seifalian AM. 2006. Polyhedral oligomeric silsequioxane-polyurethane nanocomposite microvessels for an artificial capillary bed. Biomaterials. 27:4618–4626.
  • Karamariti E, Margariti A, Winkler B, Wang X, Hong X, Baban D, et al. 2013. Smooth muscle cells differentiated from reprogrammed embryonic lung fibroblasts through DKK3 signaling are potent for tissue engineering of vascular grafts. Circ Res. 112:1433–1443.
  • Kassab GS. 2006. Biomechanics of the cardiovascular system: the aorta as an illustratory example. J R Soc Interface. 3:719–740.
  • Kim T, Hwang W, Lee H, Kamm RD. 2009. Computational analysis of viscoelastic properties of crosslinked actin networks. PLoS Comput Biol. 5:e1000439.
  • Kingham E, Oreffo ROC. 2013. Embryonic and induced pluripotent stem cells: understanding, creating, and exploiting the nano-niche for regenerative medicine. ACS Nano. 7:1867–1881.
  • Krawiec JT, Vorp DA. 2012. Adult stem cell-based tissue engineered blood vessels: a review. Biomaterials. 33:3388–3400.
  • L'Heureux N, Paquet S, Labbe R, Germain L, Auger FA. 1998. A completely biological tissue-engineered human blood vessel. FASEB J. 12:47–56.
  • Liu JY, Swartz DD, Peng HF, Gugino SF, Russell JA, Andreadis ST. 2007. Functional tissue-engineered blood vessels from bone marrow progenitor cells. Cardiovasc Res. 75:618–628.
  • Maul TM, Chew DW, Nieponice A, Vorp DA. 2011. Mechanical stimuli differentially control stem cell behavior: morphology, proliferation, and differentiation. Biomech Model Mechanobiol. 10:939–953.
  • McIlhenny S, Zhang P, Tulenko T, Comeau J, Fernandez S, Policha A, et al. 2015. eNOS transfection of adipose-derived stem cells yields bioactive nitric oxide production and improved results in vascular tissue engineering. J Tissue Eng Regen Med. 9:1277–1285.
  • Melero-Martin JM, Dudley AC. 2011. Concise review: vascular stem cells and tumor angiogenesis. Stem Cells. 29:163–168.
  • Melero-Martin JM, Khan ZA, Picard A, Wu X, Paruchuri S, Bischoff J. 2007. In vivo vasculogenic potential of human blood-derived endothelial progenitor cells. Blood. 109:4761–4768.
  • Muraglia A, Cancedda R, Quarto R. 2000. Clonal mesenchymal progenitors from human bone marrow differentiate in vitro according to a hierarchical model. J Cell Sci. 113:1161–1166.
  • Murray IR, West CC, Hardy WR, James AW, Park TS, Nguyen A, et al. 2014. Natural history of mesenchymal stem cells, from vessel walls to culture vessels. Cell Mol Life Sci. 71:1353–1374.
  • Nakayama Y, Tsujinaka T. 2014. Acceleration of robust “biotube” vascular graft fabrication by in-body tissue architecture technology using a novel eosin Y-releasing mold. J Biomed Mater Res B Appl Biomater. 102:231–238.
  • Nemeno-Guanzon JG, Lee S, Berg JR, Jo YH, Yeo JE, Nam BM, Koh Y-G, Lee JI. 2012. Trends in tissue engineering for blood vessels. Biomed Res Int. 2012:956345.
  • Nieponice A, Soletti L, Guan J, Hong Y, Gharaibeh B, Maul TM, et al. 2010. In vivo assessment of a tissue-engineered vascular graft combining a biodegradable elastomeric scaffold and muscle-derived stem cells in a rat model. Tissue Eng A. 16:1215–1223.
  • Niklason LE, Gao J, Abbott WM, Hirschi KK, Houser S, Marini R, Langer R. 1999. Functional arteries grown in vitro. Science. 284:489–493.
  • Obbink-Huizer C, Oomens CWJ, Loerakker S, Foolen J, Bouten CVC, Baaijens FPT. 2014. Computational model predicts cell orientation in response to a range of mechanical stimuli. Biomech Model Mechanobiol. 13:227–236.
  • Paredes B, Santana A, Arribas MI, Vicente‐Salar N, de Aza PN, Roche E, Such J, Reig JA. 2011. Phenotypic differences during the osteogenic differentiation of single cell‐derived clones isolated from human lipoaspirates. J Tissue Eng Regen Med. 5:589–599.
  • Pati F, Jang J, Ha D-H, Kim SW, Rhie J-W, Shim J-H, Kim D-H, Cho D-W. 2014. Printing three-dimensional tissue analogues with decellularized extracellular matrix bioink. Nat Commun. 5:3935.
  • Polacheck WJ, Li R, Uzel SG, Kamm RD. 2013. Microfluidic platforms for mechanobiology. Lab Chip. 13:2252–2267.
  • Red-Horse K, Ueno H, Weissman IL, Krasnow MA. 2010. Coronary arteries form by developmental reprogramming of venous cells. Nature. 464:549–553.
  • Rocco KA, Maxfield MW, Best CA, Dean EW, Breuer CK. 2014. In vivo applications of electrospun tissue-engineered vascular grafts: a review. Tissue Eng Part B Rev. 20:628–640.
  • Sartore S, Chiavegato A, Faggin E, Franch R, Puato M, Ausoni S, Pauletto P. 2001. Contribution of adventitial fibroblasts to neointima formation and vascular remodeling: from innocent bystander to active participant. Circ Res. 89:1111–1121.
  • Seifu DG, Purnama A, Mequanint K, Mantovani D. 2013. Small-diameter vascular tissue engineering. Nat Rev Cardiol. 10:410–421.
  • Solouk A, Cousins BG, Mirahmadi F, Mirzadeh H, Nadoushan MRJ, Shokrgozar MA, Seifalian AM. 2015. Biomimetic modified clinical-grade POSS-PCU nanocomposite polymer for bypass graft applications: a preliminary assessment of endothelial cell adhesion and haemocompatibility. Mater Sci Eng C. 46:400–408.
  • Solouk A, Cousins BG, Mirzadeh H, Solati‐Hashtjin M, Najarian S, Seifalian AM. 2011a. Surface modification of POSS‐nanocomposite biomaterials using reactive oxygen plasma treatment for cardiovascular surgical implant applications. Biotechnol Appl Biochem. 58:147–161.
  • Solouk A, Solati-Hashjin M, Najarian S, Mirzadeh H, Seifalian AM. 2011b. Optimization of acrylic acid grafting onto POSS-PCU nanocomposite using response surface methodology. Iran Polym J. 20:91–107.
  • Song JW, Gu W, Futai N, Warner KA, Nor JE, Takayama S. 2005. Computer-controlled microcirculatory support system for endothelial cell culture and shearing. Anal Chem. 77:3993–3999.
  • Sundaram S, One J, Siewert J, Teodosescu S, Zhao L, Dimitrievska S, et al. 2014. Tissue-engineered vascular grafts created from human induced pluripotent stem cells. Stem Cells. Transl Med. 3:1535.
  • Tasoglu S, Diller E, Guven S, Sitti M, Demirci U. 2014. Untethered micro-robotic coding of three-dimensional material composition. Nat Commun. 5:3124.
  • Thakrar RR, Patel VP, Hamilton G, Fuller BJ, Seifalian AM. 2006. Vitreous cryopreservation maintains the viscoelastic property of human vascular grafts. FASEB J. 20:874–881.
  • Wang Z-y, Teoh SH, Johana NB, Chong MSK, Teo EY, Hong M-h, Chan JKY, San Thian E. 2014. Enhancing mesenchymal stem cell response using uniaxially stretched poly (ɛ-caprolactone) film micropatterns for vascular tissue engineering application. J Mater Chem B. 2:5898–5909.
  • Weber B, Kehl D, Bleul U, Behr L, Sammut S, Frese L, et al. 2016. In vitro fabrication of autologous living tissue-engineered vascular grafts based on prenatally harvested ovine amniotic fluid-derived stem cells. J Tissue Eng Regen Med. 10:52–71.
  • Weinberg CB, Bell E. 1986. A blood vessel model constructed from collagen and cultured vascular cells. Science. 231:397–400.
  • WHO [Internet]. 2015. Cardiovascular diseases (CVDs), Fact Sheet N°317. Available from: http://www.who.int/mediacentre/factsheets/fs317/en/
  • Wong ST, Teo S-K, Park S, Chiam K-H, Yim EKF. 2014. Anisotropic rigidity sensing on grating topography directs human mesenchymal stem cell elongation. Biomech Model Mechanobiol. 13:27–39.
  • Wystrychowski W, McAllister TN, Zagalski K, Dusserre N, Cierpka L, L'Heureux N. 2014. First human use of an allogeneic tissue-engineered vascular graft for hemodialysis access. J Vasc Surg. 60:1353–1357.
  • Yang Y, Kulangara K, Sia J, Wang L, Leong KW. 2011. Engineering of a microfluidic cell culture platform embedded with nanoscale features. Lab Chip. 11:1638–1646.
  • Yeganeh H, Orang F, Solouk A, Rafienia M. 2008. Synthesis, characterization and preliminary investigation of blood compatibility of novel epoxy-modified polyurethane networks. J Bioact Compat Polym. 23:276–300.
  • Zahedmanesh H, Lally C. 2012. A multiscale mechanobiological modelling framework using agent-based models and finite element analysis: application to vascular tissue engineering. Biomech Model Mechanobiol. 11:363–377.
  • Zeng W, Wen C, Wu Y, Li L, Zhou Z, Mi J, et al. 2012. The use of BDNF to enhance the patency rate of small-diameter tissue-engineered blood vessels through stem cell homing mechanisms. Biomaterials. 33:473–484.
  • Zhang H, Jia X, Han F, Zhao J, Zhao Y, Fan Y, Yuan X. 2013. Dual-delivery of VEGF and PDGF by double-layered electrospun membranes for blood vessel regeneration. Biomaterials. 34:2202–2212.
  • Zhao Y, Zhang S, Zhou J, Wang J, Zhen M, Liu Y, Chen J, Qi Z. 2010. The development of a tissue-engineered artery using decellularized scaffold and autologous ovine mesenchymal stem cells. Biomaterials. 31:296–307.

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