A biomaterial with a channel-like pore architecture induces endochondral healing of bone defects
暂无分享,去创建一个
I Heschel | H. Leemhuis | I. Heschel | G. Duda | K. Schmidt-Bleek | S. Geissler | A. Petersen | A. Ellinghaus | A. Woloszyk | S. Schreivogel | A Petersen | A Princ | G Korus | A Ellinghaus | H Leemhuis | A Herrera | A Klaumünzer | S Schreivogel | A Woloszyk | K Schmidt-Bleek | S Geissler | G N Duda | A. Princ | K. Schmidt-Bleek | A. Herrera | G. Korus | H. Leemhuis | A. Klaumünzer
[1] G. Duda,et al. The Interaction of BMP2‐Induced Defect Healing in Rat and Fixator Stiffness Modulates Matrix Alignment and Contraction , 2018, JBMR plus.
[2] James C. Weaver,et al. Mechanobiologically optimized 3D titanium-mesh scaffolds enhance bone regeneration in critical segmental defects in sheep , 2018, Science Translational Medicine.
[3] B. Sacchetti,et al. Clonogenic, myogenic progenitors expressing MCAM/CD146 are incorporated as adventitial reticular cells in the microvascular compartment of human post-natal skeletal muscle , 2017, PloS one.
[4] Georg N Duda,et al. Scaffold curvature-mediated novel biomineralization process originates a continuous soft tissue-to-bone interface. , 2017, Acta biomaterialia.
[5] E. Alsberg,et al. Endochondral Ossification in Critical‐Sized Bone Defects via Readily Implantable Scaffold‐Free Stem Cell Constructs , 2017, Stem cells translational medicine.
[6] P. Giannoudis,et al. Do skeletal muscle MSCs in humans contribute to bone repair? A systematic review. , 2016, Injury.
[7] L. McNamara,et al. Endochondral Priming: A Developmental Engineering Strategy for Bone Tissue Regeneration. , 2016, Tissue engineering. Part B, Reviews.
[8] R. Adams,et al. Blood vessel formation and function in bone , 2016, Development.
[9] F. O'Brien,et al. An Endochondral Ossification-Based Approach to Bone Repair: Chondrogenically Primed Mesenchymal Stem Cell-Laden Scaffolds Support Greater Repair of Critical-Sized Cranial Defects Than Osteogenically Stimulated Constructs In Vivo. , 2016, Tissue engineering. Part A.
[10] H. Clausen‐Schaumann,et al. Structural and mechanical properties of the proliferative zone of the developing murine growth plate cartilage assessed by atomic force microscopy. , 2016, Matrix biology : journal of the International Society for Matrix Biology.
[11] A. Petersen,et al. A4.01 T cells are critical regulators of soft callus mineralization and normal deposition of collagen I during bone repair , 2016 .
[12] F. O'Brien,et al. Recapitulating endochondral ossification: a promising route to in vivo bone regeneration , 2015, Journal of tissue engineering and regenerative medicine.
[13] Cory J. Berkland,et al. Endochondral ossification for enhancing bone regeneration: converging native extracellular matrix biomaterials and developmental engineering in vivo. , 2015, Tissue engineering. Part B, Reviews.
[14] A. Lassar,et al. A pathway to bone: signaling molecules and transcription factors involved in chondrocyte development and maturation , 2015, Development.
[15] Eamon J. Sheehy,et al. Engineering cartilage or endochondral bone: a comparison of different naturally derived hydrogels. , 2015, Acta biomaterialia.
[16] J. Malda,et al. Decellularized cartilage-derived matrix as substrate for endochondral bone regeneration. , 2015, Tissue engineering. Part A.
[17] P. Bianco. "Mesenchymal" stem cells. , 2014, Annual review of cell and developmental biology.
[18] Yoshinobu Watanabe,et al. Bone regeneration in a massive rat femur defect through endochondral ossification achieved with chondrogenically differentiated MSCs in a degradable scaffold. , 2014, Biomaterials.
[19] P. Fratzl,et al. Mechanical and structural properties of bone in non-critical and critical healing in rat. , 2014, Acta biomaterialia.
[20] B. Sacchetti,et al. Establishment of bone marrow and hematopoietic niches in vivo by reversion of chondrocyte differentiation of human bone marrow stromal cells. , 2014, Stem cell research.
[21] Shwu-Fen Chang,et al. The effect of type II collagen on MSC osteogenic differentiation and bone defect repair. , 2014, Biomaterials.
[22] Sergei A. Vinogradov,et al. Direct measurement of local oxygen concentration in the bone marrow of live animals , 2014, Nature.
[23] H. Weinans,et al. Chondrogenically differentiated mesenchymal stromal cell pellets stimulate endochondral bone regeneration in critical-sized bone defects. , 2014, European cells & materials.
[24] Arezki Boudaoud,et al. FibrilTool, an ImageJ plug-in to quantify fibrillar structures in raw microscopy images , 2014, Nature Protocols.
[25] S. Both,et al. Concise Review: Cell‐Based Strategies in Bone Tissue Engineering and Regenerative Medicine , 2014, Stem cells translational medicine.
[26] T. Yen,et al. The use of ASCs engineered to express BMP2 or TGF-β3 within scaffold constructs to promote calvarial bone repair. , 2013, Biomaterials.
[27] H. Yao,et al. Measurement of Three-Dimensional Anisotropic Diffusion by Multiphoton Fluorescence Recovery after Photobleaching , 2013, Annals of Biomedical Engineering.
[28] Sean K. Powell,et al. Diffusion tensor of water in partially aligned fibre networks , 2013 .
[29] Anthony Atala,et al. In situ tissue regeneration through host stem cell recruitment , 2013, Experimental & Molecular Medicine.
[30] T. Young,et al. Hypoxia Enhances Chondrogenesis and Prevents Terminal Differentiation through PI3K/Akt/FoxO Dependent Anti-Apoptotic Effect , 2013, Scientific Reports.
[31] J. Gorman,et al. Acellular Biomaterials: An Evolving Alternative to Cell-Based Therapies , 2013, Science Translational Medicine.
[32] Max Heiland,et al. Current trends and future perspectives of bone substitute materials - from space holders to innovative biomaterials. , 2012, Journal of cranio-maxillo-facial surgery : official publication of the European Association for Cranio-Maxillo-Facial Surgery.
[33] G. Gurtner,et al. Stem cell recruitment after injury: lessons for regenerative medicine. , 2012, Regenerative medicine.
[34] A. Papadimitropoulos,et al. Interleukin-1β modulates endochondral ossification by human adult bone marrow stromal cells. , 2012, European cells & materials.
[35] Georg N Duda,et al. Porous scaffold architecture guides tissue formation , 2012, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[36] C. Evans,et al. Design, characterisation and in vivo testing of a new, adjustable stiffness, external fixator for the rat femur. , 2012, European cells & materials.
[37] M. Ehinger,et al. CD146 expression on primary nonhematopoietic bone marrow stem cells is correlated with in situ localization. , 2011, Blood.
[38] G. Duda,et al. Time kinetics of bone defect healing in response to BMP-2 and GDF-5 characterised by in vivo biomechanics. , 2011, European cells & materials.
[39] F. O'Brien,et al. In-vivo generation of bone via endochondral ossification by in-vitro chondrogenic priming of adult human and rat mesenchymal stem cells , 2011, BMC musculoskeletal disorders.
[40] Alfredo Quiñones-Hinojosa,et al. Oxygen in stem cell biology: a critical component of the stem cell niche. , 2010, Cell stem cell.
[41] J. Malda,et al. Modulating endochondral ossification of multipotent stromal cells for bone regeneration. , 2010, Tissue engineering. Part B, Reviews.
[42] D. DeSimone,et al. The extracellular matrix in development and morphogenesis: a dynamic view. , 2010, Developmental biology.
[43] Ivan Martin,et al. Recapitulation of endochondral bone formation using human adult mesenchymal stem cells as a paradigm for developmental engineering , 2010, Proceedings of the National Academy of Sciences.
[44] L. Prantl,et al. Hypertrophy in Mesenchymal Stem Cell Chondrogenesis: Effect of TGF-β Isoforms and Chondrogenic Conditioning , 2010, Cells Tissues Organs.
[45] J. Noth,et al. Cytocompatibility of a novel, longitudinally microstructured collagen scaffold intended for nerve tissue repair. , 2009, Tissue engineering. Part A.
[46] M. Simon,et al. The role of oxygen availability in embryonic development and stem cell function , 2008, Nature Reviews Molecular Cell Biology.
[47] R. Johnson,et al. HIF1α regulation of Sox9 is necessary to maintain differentiation of hypoxic prechondrogenic cells during early skeletogenesis , 2007, Development.
[48] B. Sacchetti,et al. Self-Renewing Osteoprogenitors in Bone Marrow Sinusoids Can Organize a Hematopoietic Microenvironment , 2007, Cell.
[49] S. Sen,et al. Matrix Elasticity Directs Stem Cell Lineage Specification , 2006, Cell.
[50] L. Claes,et al. Bone formation in a long bone defect model using a platelet-rich plasma-loaded collagen scaffold. , 2006, Biomaterials.
[51] P. Janmey,et al. Tissue Cells Feel and Respond to the Stiffness of Their Substrate , 2005, Science.
[52] Yasuhiko Tabata,et al. Osteogenic differentiation of mesenchymal stem cells in biodegradable sponges composed of gelatin and beta-tricalcium phosphate. , 2005, Biomaterials.
[53] Watt W Webb,et al. Interpreting second-harmonic generation images of collagen I fibrils. , 2005, Biophysical journal.
[54] Eben Alsberg,et al. Dual growth factor delivery and controlled scaffold degradation enhance in vivo bone formation by transplanted bone marrow stromal cells. , 2004, Bone.
[55] J. Mao,et al. Heterogeneous nanostructural and nanoelastic properties of pericellular and interterritorial matrices of chondrocytes by atomic force microscopy. , 2004, Journal of structural biology.
[56] J. Wit,et al. Systemic and local regulation of the growth plate. , 2003, Endocrine reviews.
[57] Eben Alsberg,et al. Engineering growing tissues , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[58] I. Heschel,et al. Magnification of the Pore size in Biodegradable Collagen Sponges , 2002, The International journal of artificial organs.
[59] H. Takita,et al. Geometry of Carriers Controlling Phenotypic Expression in BMP-Induced Osteogenesis and Chondrogenesis , 2001, The Journal of bone and joint surgery. American volume.
[60] T. Kohgo,et al. Effects of geometry of hydroxyapatite as a cell substratum in BMP-induced ectopic bone formation. , 2000, Journal of Biomedical Materials Research.
[61] C Perka,et al. Segmental bone repair by tissue-engineered periosteal cell transplants with bioresorbable fleece and fibrin scaffolds in rabbits. , 2000, Biomaterials.
[62] A Boyde,et al. Autologous bone marrow stromal cells loaded onto porous hydroxyapatite ceramic accelerate bone repair in critical-size defects of sheep long bones. , 2000, Journal of biomedical materials research.
[63] M. Mcguire,et al. Repair of segmental bone defects in the rat: an experimental model of human fracture healing. , 1999, Bone.
[64] Isaac Freund,et al. Second harmonic generation in collagen , 1979 .
[65] Hernigou Philippe,et al. Cell therapy in delayed unions and nonunions , 2016 .
[66] Philippe Rosset,et al. Bone fracture healing: cell therapy in delayed unions and nonunions. , 2015, Bone.
[67] S. Bryant,et al. Chapter 24 – Bone Regeneration , 2015 .
[68] L. Charles,et al. Developmental-Like Bone Regeneration by Human Embryonic Stem Cell-Derived Mesenchymal Cells , 2014 .
[69] G. Duda,et al. A 5-mm femoral defect in female but not in male rats leads to a reproducible atrophic non-union , 2010, Archives of Orthopaedic and Trauma Surgery.
[70] G Rau,et al. Control of pore structure and size in freeze-dried collagen sponges. , 2001, Journal of biomedical materials research.
[71] R. Charles,et al. Dynamic View , 1996 .