Vascularization in Bone Tissue Engineering Constructs
暂无分享,去创建一个
Yaser Shanjani | Ángel E. Mercado-Pagán | Alexander M. Stahl | Yunzhi Yang | Y. Shanjani | Y. Yang | A. Stahl
[1] L. Yubao,et al. Development of nanohydroxyapatite/polycarbonate composite for bone repair. , 2009 .
[2] N. Plesnila,et al. The delayed addition of human mesenchymal stem cells to pre-formed endothelial cell networks results in functional vascularization of a collagen-glycosaminoglycan scaffold in vivo. , 2013, Acta biomaterialia.
[3] Ángel E. Mercado-Pagán,et al. Chapter 14 | Strategies toward Engineering Vascularized Bone Graft Substitutes , 2014 .
[4] Michael J Yaszemski,et al. Histocompatibility of photocrosslinked polyanhydrides: a novel in situ forming orthopaedic biomaterial. , 2003, Journal of biomedical materials research. Part A.
[5] S. Mardini,et al. Reconstruction of mandibular defects. , 2010, Seminars in plastic surgery.
[6] M. Woodruff,et al. Biomimetic tubular nanofiber mesh and platelet rich plasma-mediated delivery of BMP-7 for large bone defect regeneration , 2012, Cell and Tissue Research.
[7] Antonios G Mikos,et al. Dual delivery of an angiogenic and an osteogenic growth factor for bone regeneration in a critical size defect model. , 2008, Bone.
[8] C. V. van Blitterswijk,et al. The use of endothelial progenitor cells for prevascularized bone tissue engineering. , 2009, Tissue engineering. Part A.
[9] A. Masquelet,et al. The concept of induced membrane for reconstruction of long bone defects. , 2010, The Orthopedic clinics of North America.
[10] Emil H Schemitsch,et al. Growth Factors: Beyond Bone Morphogenetic Proteins , 2010, Journal of orthopaedic trauma.
[11] F A Auger,et al. A completely biological tissue‐engineered human blood vessel , 1998, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[12] Yunqing Kang,et al. Enhanced mechanical performance and biological evaluation of a PLGA coated β-TCP composite scaffold for load-bearing applications. , 2011, European polymer journal.
[13] Lucie Germain,et al. Inosculation of Tissue‐Engineered Capillaries with the Host's Vasculature in a Reconstructed Skin Transplanted on Mice , 2005, American journal of transplantation : official journal of the American Society of Transplantation and the American Society of Transplant Surgeons.
[14] J. Planell,et al. Dynamics of bone marrow-derived endothelial progenitor cell/mesenchymal stem cell interaction in co-culture and its implications in angiogenesis. , 2010, Biochemical and biophysical research communications.
[15] Robert Langer,et al. Tissue engineering: perspectives, challenges, and future directions. , 2007, Tissue engineering.
[16] J. Ruan,et al. Structural preparation and biocompatibility evaluation of highly porous Tantalum scaffolds , 2013 .
[17] Robert Langer,et al. EDITORIAL: TISSUE ENGINEERING: PERSPECTIVES, CHALLENGES, AND FUTURE DIRECTIONS , 2007 .
[18] R. Ritchie. The conflicts between strength and toughness. , 2011, Nature materials.
[19] Sue Pondrom. What’s in a name? HRSA and the FDA consider adding vascularized composite allografts to their definition of "organs". , 2010, American journal of transplantation : official journal of the American Society of Transplantation and the American Society of Transplant Surgeons.
[20] A. Leusink,et al. In vivo evaluation of highly macroporous ceramic scaffolds for bone tissue engineering. , 2009, Journal of biomedical materials research. Part A.
[21] Yadong Wang,et al. Fast degrading elastomer enables rapid remodeling of a cell-free synthetic graft into a neo-artery , 2011, Nature Medicine.
[22] Wojciech Swieszkowski,et al. Highly porous titanium scaffolds for orthopaedic applications. , 2010, Journal of biomedical materials research. Part B, Applied biomaterials.
[23] Brendon M. Baker,et al. Rapid casting of patterned vascular networks for perfusable engineered three-dimensional tissues , 2012 .
[24] T. Miclau,et al. Autologous iliac crest bone graft: should it still be the gold standard for treating nonunions? , 2007, Injury.
[25] Warren L. Grayson,et al. Engineering bone tissue from human embryonic stem cells , 2012, Proceedings of the National Academy of Sciences.
[26] Yuehuei H. An,et al. Mechanical Properties of Bone , 1999 .
[27] S. Soker,et al. Vascularization of Muscle , 2014 .
[28] Ricardo D. Solorzano,et al. Geometric control of vascular networks to enhance engineered tissue integration and function , 2013, Proceedings of the National Academy of Sciences.
[29] J. Buckwalter,et al. Bone biology. I: Structure, blood supply, cells, matrix, and mineralization. , 1996, Instructional course lectures.
[30] R. Inführ,et al. Photopolymers for rapid prototyping , 2007 .
[31] J. Gimble,et al. Human adipose-derived stem cells and three-dimensional scaffold constructs: a review of the biomaterials and models currently used for bone regeneration. , 2013, Journal of biomedical materials research. Part B, Applied biomaterials.
[32] Steven Song,et al. The role of pericytes in blood-vessel formation and maintenance. , 2005, Neuro-oncology.
[33] S. Teoh,et al. Contrasting effects of vasculogenic induction upon biaxial bioreactor stimulation of mesenchymal stem cells and endothelial progenitor cells cocultures in three-dimensional scaffolds under in vitro and in vivo paradigms for vascularized bone tissue engineering. , 2013, Tissue engineering. Part A.
[34] Pamela Habibovic,et al. Osteoinductive biomaterials—properties and relevance in bone repair , 2007, Journal of tissue engineering and regenerative medicine.
[35] Julie Glowacki,et al. Collagen scaffolds for tissue engineering. , 2008, Biopolymers.
[36] N. Annabi,et al. Engineering porous scaffolds using gas-based techniques. , 2011, Current opinion in biotechnology.
[37] Y. M. Khira,et al. Pedicled vascularized fibular graft with Ilizarov external fixator for reconstructing a large bone defect of the tibia after tumor resection , 2013, Journal of Orthopaedics and Traumatology.
[38] A. Breckenridge,et al. Expediting Patients' Access to Medicines by Improving the Predictability of Drug Development and the Regulatory Approval Process , 2010, Clinical pharmacology and therapeutics.
[39] K. Scheffler,et al. A 3D in vitro bone organ model using human progenitor cells. , 2011, European cells & materials.
[40] Sungwoo Kim,et al. Sequential delivery of BMP-2 and IGF-1 using a chitosan gel with gelatin microspheres enhances early osteoblastic differentiation. , 2012, Acta biomaterialia.
[41] Ivan Martin,et al. Angiogenesis in tissue engineering: breathing life into constructed tissue substitutes. , 2006, Tissue engineering.
[42] F. Fitoussi,et al. Treatment of posttraumatic bone defects by the induced membrane technique. , 2012, Orthopaedics & traumatology, surgery & research : OTSR.
[43] L. Black,et al. Current themes in cement research , 2010 .
[44] Yuehuei H. An,et al. Mechanical testing of bone and the bone-implant interface , 1999 .
[45] Jessica L. Nichol,et al. Investigation of Apatite Mineralization on Antioxidant Polyphosphazenes for Bone Tissue Engineering , 2012 .
[46] W. Chan,et al. Bone Marrow Mesenchymal Stem Cells in a Three-Dimensional Gelatin Sponge Scaffold Attenuate Inflammation, Promote Angiogenesis, and Reduce Cavity Formation in Experimental Spinal Cord Injury , 2011, Cell transplantation.
[47] Paula T Hammond,et al. Tissue integration of growth factor-eluting layer-by-layer polyelectrolyte multilayer coated implants. , 2011, Biomaterials.
[48] H. V. von Recum,et al. Endothelial stem cells and precursors for tissue engineering: cell source, differentiation, selection, and application. , 2008, Tissue engineering. Part B, Reviews.
[49] C. Stuelten,et al. Extracellular Matrix Proteoglycans Control the Fate of Bone Marrow Stromal Cells* , 2005, Journal of Biological Chemistry.
[50] B. Fisher. In Vivo Techniques and Strategies for Enhanced Vascularization of Engineered Bone , 2014 .
[51] N. Annabi,et al. Cross-linked open-pore elastic hydrogels based on tropoelastin, elastin and high pressure CO2. , 2010, Biomaterials.
[52] M. Pepper,et al. Transforming growth factor-beta: vasculogenesis, angiogenesis, and vessel wall integrity. , 1997, Cytokine & growth factor reviews.
[53] Susanne Jung,et al. Angiogenesis — The Key to Regeneration , 2013 .
[54] B. Zeng,et al. Free vascularised fibular grafting in the treatment of large skeletal defects due to osteomyelitis , 2010, International Orthopaedics.
[55] S. Morgan,et al. Complications associated with distraction osteogenesis for infected nonunion of the femoral shaft in the presence of a bone defect: a retrospective series. , 2010, The Journal of bone and joint surgery. British volume.
[56] M. Kurosaka,et al. Therapeutic potential of vasculogenesis and osteogenesis promoted by peripheral blood CD34-positive cells for functional bone healing. , 2006, The American journal of pathology.
[57] Yunqing Kang,et al. Engineering Vascularized Bone Grafts by Integrating a Biomimetic Periosteum and β-TCP Scaffold , 2014, ACS applied materials & interfaces.
[58] R. Betz,et al. Limitations of autograft and allograft: new synthetic solutions. , 2002, Orthopedics.
[59] Cytotoxicity of Polypropylene Fumarate Nanocomposites used in Bone Tissue Engineering , 2013, 2013 39th Annual Northeast Bioengineering Conference.
[60] C. Kirkpatrick,et al. Endothelialization of a non-woven silk fibroin net for use in tissue engineering: growth and gene regulation of human endothelial cells. , 2004, Biomaterials.
[61] G. Zimmermann,et al. Allograft bone matrix versus synthetic bone graft substitutes. , 2011, Injury.
[62] Sue Pondrom. The AJT Report: News and issues that affect organ and tissue transplantation , 2013, American journal of transplantation : official journal of the American Society of Transplantation and the American Society of Transplant Surgeons.
[63] C. V. van Blitterswijk,et al. Engineering vascularised tissues in vitro. , 2008, European cells & materials.
[64] Ali Khademhosseini,et al. Vascularized bone tissue engineering: approaches for potential improvement. , 2012, Tissue engineering. Part B, Reviews.
[65] J. Lewis,et al. Chaotic mixing in three-dimensional microvascular networks fabricated by direct-write assembly , 2003, Nature materials.
[66] R. Guldberg,et al. Vascularization Strategies for Bone Regeneration , 2014, Annals of Biomedical Engineering.
[67] M. Bhandari,et al. Distraction osteogenesis in the treatment of long bone defects of the lower limbs: effectiveness, complications and clinical results; a systematic review and meta-analysis. , 2013, The bone & joint journal.
[68] Dai Fei Elmer Ker,et al. Hemocompatibility evaluation of small elastomeric hollow fiber membranes as vascular substitutes , 2014, Journal of biomaterials applications.
[69] Hideki Yoshikawa,et al. Capillary vessel network integration by inserting a vascular pedicle enhances bone formation in tissue-engineered bone using interconnected porous hydroxyapatite ceramics. , 2004, Tissue engineering.
[70] X. Sherry Liu,et al. Engineering anatomically shaped human bone grafts , 2009, Proceedings of the National Academy of Sciences.
[71] Jennifer Patterson,et al. Hyaluronic acid hydrogels with controlled degradation properties for oriented bone regeneration. , 2010, Biomaterials.
[72] D. Phemister. CHANGES IN BONES AND JOINTS RESULTING FROM INTERRUPTION OF CIRCULATION: I. GENERAL CONSIDERATIONS AND CHANGES RESULTING FROM INJURIES , 1940 .
[73] S. Levenberg,et al. Vascularization--the conduit to viable engineered tissues. , 2009, Tissue engineering. Part B, Reviews.
[74] Jose A. Andrades,et al. Regenerative Medicine and Tissue Engineering , 2013 .
[75] Cynthia O. L. Ferreira,et al. TGF-β1 and BMP-4 carried by liposomes enhance the healing process in alveolar bone. , 2013, Archives of oral biology.
[76] Molly M Stevens,et al. Synthesis of two-component injectable polyurethanes for bone tissue engineering. , 2007, Biomaterials.
[77] B. French,et al. Induced Membrane Technique for Reconstruction To Manage Bone Loss , 2012, The Journal of the American Academy of Orthopaedic Surgeons.
[78] Shanglong Xu,et al. Prefabrication of Vascularized Porous Three-Dimensional Scaffold Induced from rhVEGF165: A Preliminary Study in Rats , 2008, Cells Tissues Organs.
[79] I. Zeiss,et al. Studies on transference of bone. I. A comparison of autologous and homologous bone implants with reference to osteocyte survival, osteogenesis and host reaction. , 1960, British journal of experimental pathology.
[80] Mi Hee Lee,et al. Effective layer by layer cell seeding into non-woven 3D electrospun scaffolds of poly-L-lactic acid microfibers for uniform tissue formation , 2012, Macromolecular Research.
[81] A. Khademhosseini,et al. Integrating Top-Down and Bottom-Up Scaffolding Tissue Engineering Approach for Bone Regeneration , 2013 .
[82] K. Lau,et al. Role of Osteocyte-derived Insulin-Like Growth Factor I in Developmental Growth, Modeling, Remodeling, and Regeneration of the Bone , 2014, Journal of bone metabolism.
[83] Ian McCarthy,et al. The physiology of bone blood flow: a review. , 2006, The Journal of bone and joint surgery. American volume.
[84] Jing Hu,et al. Angiogenesis and osteogenesis enhanced by bFGF ex vivo gene therapy for bone tissue engineering in reconstruction of calvarial defects. , 2011, Journal of biomedical materials research. Part A.
[85] H. Precheur. Bone graft materials. , 2007, Dental clinics of North America.
[86] Malcolm L Snead,et al. Co-encapsulation of anti-BMP2 monoclonal antibody and mesenchymal stem cells in alginate microspheres for bone tissue engineering. , 2013, Biomaterials.
[87] Ying Zheng,et al. In vitro microvessels for the study of angiogenesis and thrombosis , 2012, Proceedings of the National Academy of Sciences.
[88] Andreas Hess,et al. Engineering of vascularized transplantable bone tissues: induction of axial vascularization in an osteoconductive matrix using an arteriovenous loop. , 2006, Tissue engineering.
[89] S. Greenwald,et al. Improving vascular grafts: the importance of mechanical and haemodynamic properties , 2000, The Journal of pathology.
[90] G. Muschler,et al. Bone graft materials. An overview of the basic science. , 2000, Clinical orthopaedics and related research.
[91] E. Toyserkani,et al. Solid freeform fabrication of porous calcium polyphosphate structures for bone substitute applications: in vivo studies. , 2013, Journal of biomedical materials research. Part B, Applied biomaterials.
[92] Joseph C Wenke,et al. Novel osteoinductive photo-cross-linkable chitosan-lactide-fibrinogen hydrogels enhance bone regeneration in critical size segmental bone defects. , 2014, Acta biomaterialia.
[93] Guk-Rwang Won. American Society for Testing and Materials , 1987 .
[94] Dong-Woo Cho,et al. Surface modification with fibrin/hyaluronic acid hydrogel on solid-free form-based scaffolds followed by BMP-2 loading to enhance bone regeneration. , 2011, Bone.
[95] A. Khademhosseini,et al. Creation of bony microenvironment with CaP and cell-derived ECM to enhance human bone-marrow MSC behavior and delivery of BMP-2. , 2011, Biomaterials.
[96] Erhan Piskin,et al. Endothelial cell colonization and angiogenic potential of combined nano- and micro-fibrous scaffolds for bone tissue engineering. , 2008, Biomaterials.
[97] J. Folkman,et al. SELF-REGULATION OF GROWTH IN THREE DIMENSIONS , 1973, The Journal of experimental medicine.
[98] Masood A. Machingal,et al. Vascular smooth muscle enhances functionality of tissue-engineered blood vessels in vivo. , 2010, Journal of vascular surgery.
[99] S. Deb,et al. A porous scaffold for bone tissue engineering/45S5 Bioglass® derived porous scaffolds for co-culturing osteoblasts and endothelial cells , 2010, Journal of materials science. Materials in medicine.
[100] David Eglin,et al. Short-term cultivation of in situ prevascularized tissue constructs accelerates inosculation of their preformed microvascular networks after implantation into the host tissue. , 2011, Tissue engineering. Part A.
[101] E. Jabbari,et al. Effect of grafting BMP2‐derived peptide to nanoparticles on osteogenic and vasculogenic expression of stromal cells , 2014, Journal of tissue engineering and regenerative medicine.
[102] Geunhyung Kim,et al. The effect of sinusoidal AC electric stimulation of 3D PCL/CNT and PCL/β-TCP based bio-composites on cellular activities for bone tissue regeneration. , 2013, Journal of materials chemistry. B.
[103] Yufeng Zheng,et al. Fabrication of mineralized electrospun PLGA and PLGA/gelatin nanofibers and their potential in bone tissue engineering. , 2013, Materials science & engineering. C, Materials for biological applications.
[104] G A Ilizarov,et al. The tension-stress effect on the genesis and growth of tissues: Part II. The influence of the rate and frequency of distraction. , 1989, Clinical orthopaedics and related research.
[105] Yunqing Kang,et al. Bioceramics in Tissue Engineering , 2011 .
[106] Fergal J O'Brien,et al. Development of a thermoresponsive chitosan gel combined with human mesenchymal stem cells and desferrioxamine as a multimodal pro-angiogenic therapeutic for the treatment of critical limb ischaemia. , 2012, Journal of controlled release : official journal of the Controlled Release Society.
[107] C. Turkelson,et al. Bone void fillers. , 2010, The Journal of the American Academy of Orthopaedic Surgeons.
[108] D. Devine,et al. BLOOD COMPONENTS: Red blood cell hemolysis during blood bank storage: using national quality management data to answer basic scientific questions , 2009, Transfusion.
[109] C. Mauffrey,et al. Bone graft harvest site options in orthopaedic trauma: a prospective in vivo quantification study. , 2011, Injury.
[110] Alexis M Pietak,et al. Magnesium and its alloys as orthopedic biomaterials: a review. , 2006, Biomaterials.
[111] E. Brey. Vascularization: Regenerative Medicine and Tissue Engineering , 2014 .
[112] W. Fan,et al. Sequential Release of BMP-7 and VEGF from the PLGA/AK-Gelatin Composite Scaffolds , 2011 .
[113] A. Landesberg,et al. Improved vascular organization enhances functional integration of engineered skeletal muscle grafts , 2011, Proceedings of the National Academy of Sciences.
[114] W. Tawackoli,et al. BMP-6 is more efficient in bone formation than BMP-2 when overexpressed in mesenchymal stem cells , 2012, Gene Therapy.
[115] D. Mooney,et al. Hydrogels for tissue engineering: scaffold design variables and applications. , 2003, Biomaterials.
[116] G. Davis,et al. Biosynthesis, Remodeling, and Functions During Vascular Morphogenesis and Neovessel Stabilization , 2005 .
[117] Liao Jianguo,et al. Development of Nanohydroxyapatite/Polycarbonate Composite for Bone Repair , 2009, Journal of biomaterials applications.
[118] Peter Zioupos,et al. The extent of microcracking and the morphology of microcracks in damaged bone , 1994, Journal of Materials Science.
[119] F. Fitoussi,et al. [Reconstruction of the long bones by the induced membrane and spongy autograft]. , 2000, Annales de chirurgie plastique et esthetique.
[120] A. Khademhosseini,et al. Engineering a vascularized collagen-β-tricalcium phosphate graft using an electrochemical approach. , 2015, Acta biomaterialia.
[121] Jin-Hyun Kim,et al. Tissue-engineered bone formation using periosteal-derived cells and polydioxanone/pluronic F127 scaffold with pre-seeded adipose tissue-derived CD146 positive endothelial-like cells. , 2011, Biomaterials.
[122] Ángel E. Mercado-Pagán,et al. In vitro evaluation of photo-crosslinkable chitosan-lactide hydrogels for bone tissue engineering. , 2014, Journal of biomedical materials research. Part B, Applied biomaterials.
[123] U Kneser,et al. Tissue engineering of bone: the reconstructive surgeon's point of view , 2006, Journal of cellular and molecular medicine.
[124] Lih-Sheng Turng,et al. An injection molding process for manufacturing highly porous and interconnected biodegradable polymer matrices for use as tissue engineering scaffolds. , 2009, Journal of biomedical materials research. Part B, Applied biomaterials.
[125] Dai Fukumura,et al. Engineering vascularized tissue , 2005, Nature Biotechnology.
[126] Dai Fei Elmer Ker,et al. Synthesis and characterization of novel elastomeric poly(D,L-lactide urethane) maleate composites for bone tissue engineering. , 2013, European polymer journal.
[127] Rod J. Rohrich,et al. From bedside to bench and back again: technology innovation in plastic surgery. , 2009, Plastic and reconstructive surgery.
[128] J. Jansen,et al. Influence of nanostructural environment and fluid flow on osteoblast-like cell behavior: a model for cell-mechanics studies. , 2013, Acta biomaterialia.
[129] T. Albrektsson,et al. Osteoinduction, osteoconduction and osseointegration , 2001, European Spine Journal.
[130] Molly M. Stevens,et al. Biomaterials for bone tissue engineering , 2008 .