Incorporation of stromal cell-derived factor-1α in PCL/gelatin electrospun membranes for guided bone regeneration.
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Fang Yang | John A Jansen | Jeroen J J P van den Beucken | Jinling Ma | J. Jansen | Fang Yang | Wei Ji | J. J. van den Beucken | O. Boerman | Otto C Boerman | Wei Ji | Zhi Chen | Margaretha J Bouma | Jinling Ma | Zhi Chen | M. Bouma | Fang Yang
[1] A. Obata,et al. Electrospun microfiber meshes of silicon-doped vaterite/poly(lactic acid) hybrid for guided bone regeneration. , 2010, Acta biomaterialia.
[2] N. Donos,et al. Guided Bone Regeneration: biological principle and therapeutic applications. , 2010, Clinical oral implants research.
[3] 北折 俊之. Stromal cell-derived factor 1/CXCR4 signaling is critical for the recruitment of mesenchymal stem cells to the fracture site during skeletal repair in a mouse model , 2009 .
[4] P. Fraker,et al. Protein and cell membrane iodinations with a sparingly soluble chloroamide, 1,3,4,6-tetrachloro-3a,6a-diphrenylglycoluril. , 1978, Biochemical and biophysical research communications.
[5] L. Ghasemi‐Mobarakeh,et al. Electrospun poly(epsilon-caprolactone)/gelatin nanofibrous scaffolds for nerve tissue engineering. , 2008, Biomaterials.
[6] J. Schantz,et al. Cell guidance in tissue engineering: SDF-1 mediates site-directed homing of mesenchymal stem cells within three-dimensional polycaprolactone scaffolds. , 2007, Tissue engineering.
[7] Casey K Chan,et al. Stem cell homing in musculoskeletal injury. , 2011, Biomaterials.
[8] Mario Grassi,et al. Mathematical modelling and controlled drug delivery: matrix systems. , 2005, Current drug delivery.
[9] Seung Jin Lee,et al. Immobilization of bone morphogenetic protein‐2 on a nanofibrous chitosan membrane for enhanced guided bone regeneration , 2006, Biotechnology and applied biochemistry.
[10] Guang-qian Zhou,et al. SDF-1α/CXCR4-mediated migration of systemically transplanted bone marrow stromal cells towards ischemic brain lesion in a rat model , 2008, Brain Research.
[11] Anna Spagnoli,et al. Regenerative Effects of Transplanted Mesenchymal Stem Cells in Fracture Healing , 2009, Stem cells.
[12] I. Bellantuono,et al. A small proportion of mesenchymal stem cells strongly expresses functionally active CXCR4 receptor capable of promoting migration to bone marrow. , 2004, Blood.
[13] J. Jansen,et al. Bone formation in calcium-phosphate-coated titanium mesh. , 2000, Biomaterials.
[14] C. Wan,et al. Allogenic peripheral blood derived mesenchymal stem cells (MSCs) enhance bone regeneration in rabbit ulna critical‐sized bone defect model , 2006, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[15] Hyoun‐Ee Kim,et al. Nanostructured poly(epsilon-caprolactone)-silica xerogel fibrous membrane for guided bone regeneration. , 2010, Acta biomaterialia.
[16] John A Jansen,et al. Bone tissue reconstruction using titanium fiber mesh combined with rat bone marrow stromal cells. , 2003, Biomaterials.
[17] Ikada,et al. Protein release from gelatin matrices. , 1998, Advanced drug delivery reviews.
[18] C. Tonda-Turo,et al. Polymeric membranes for guided bone regeneration , 2011, Biotechnology journal.
[19] M. Ferguson,et al. Cytokine gene expression in a murine wound healing model. , 2005, Cytokine.
[20] John A Jansen,et al. The quantitative assessment of peri-implant bone responses using histomorphometry and micro-computed tomography. , 2009, Biomaterials.
[21] Yasuhiko Tabata,et al. Controlled Release of Stromal-Cell-Derived Factor-1 from Gelatin Hydrogels Enhances Angiogenesis , 2010, Journal of biomaterials science. Polymer edition.
[22] Liping Tang,et al. Method to Analyze Three-Dimensional Cell Distribution and Infiltration in Degradable Scaffolds , 2008 .
[23] S. Both,et al. Development of an electrospun nano-apatite/PCL composite membrane for GTR/GBR application. , 2009, Acta biomaterialia.
[24] I. Ghiran,et al. Human Bone Marrow Stromal Cells Express a Distinct Set of Biologically Functional Chemokine Receptors , 2006, Stem cells.
[25] Fa-Ming Chen,et al. Homing of endogenous stem/progenitor cells for in situ tissue regeneration: Promises, strategies, and translational perspectives. , 2011, Biomaterials.
[26] B. Riggs,et al. Circulating osteoblast-lineage cells in humans. , 2005, The New England journal of medicine.
[27] S. Rafii,et al. The Regulation of Hematopoietic Stem Cell and Progenitor Mobilization by Chemokine SDF-1 , 2003, Leukemia & lymphoma.
[28] F. Schwarz,et al. Regeneration of periodontal tissues: combinations of barrier membranes and grafting materials - biological foundation and preclinical evidence: a systematic review. , 2008, Journal of clinical periodontology.
[29] K. Badizadegan,et al. NAD(P)H and collagen as in vivo quantitative fluorescent biomarkers of epithelial precancerous changes. , 2002, Cancer research.
[30] R. Alon,et al. Dependence of human stem cell engraftment and repopulation of NOD/SCID mice on CXCR4. , 1999, Science.
[31] X Huang,et al. On the importance and mechanisms of burst release in matrix-controlled drug delivery systems. , 2001, Journal of controlled release : official journal of the Controlled Release Society.
[32] Zhao-Jun Liu,et al. Trafficking and differentiation of mesenchymal stem cells , 2009, Journal of cellular biochemistry.
[33] Chang Hun Lee,et al. Facial reconstruction by biosurgery: cell transplantation versus cell homing. , 2010, Tissue engineering. Part B, Reviews.
[34] J. Jansen,et al. Local delivery of small and large biomolecules in craniomaxillofacial bone. , 2012, Advanced drug delivery reviews.
[35] E. Schwarz,et al. Stromal cell-derived factor 1/CXCR4 signaling is critical for the recruitment of mesenchymal stem cells to the fracture site during skeletal repair in a mouse model. , 2009, Arthritis and rheumatism.
[36] Liping Tang,et al. Author ' s personal copy The effect of incorporation of SDF-1 a into PLGA scaffolds on stem cell recruitment and the inflammatory response , 2010 .
[37] Hideki Yoshikawa,et al. Circulating Bone Marrow‐Derived Osteoblast Progenitor Cells Are Recruited to the Bone‐Forming Site by the CXCR4/Stromal Cell‐Derived Factor‐1 Pathway , 2008, Stem cells.
[38] J. Jansen,et al. Animal Models for the Evaluation of Tissue Engineering Constructs , 2011 .
[39] Stefanie Dimmeler,et al. Homing and engraftment of progenitor cells: a prerequisite for cell therapy. , 2008, Journal of molecular and cellular cardiology.
[40] Arun K Gosain,et al. Testing the Critical Size in Calvarial Bone Defects: Revisiting the Concept of a Critical-Size Defect , 2010, Plastic and reconstructive surgery.
[41] Yasuhiko Tabata,et al. Synergistic effects of the dual release of stromal cell-derived factor-1 and bone morphogenetic protein-2 from hydrogels on bone regeneration. , 2011, Biomaterials.
[42] C. Lim,et al. Crosslinking of the electrospun gelatin nanofibers , 2006 .
[43] A. Nagler,et al. Human CD34(+)CXCR4(-) sorted cells harbor intracellular CXCR4, which can be functionally expressed and provide NOD/SCID repopulation. , 2002, Blood.
[44] C. Klein,et al. A simple method for preparing thin (10 microM) histological sections of undecalcified plastic embedded bone with implants. , 1988, Stain technology.
[45] K. Bogunia-Kubik,et al. [Clinical relevance of chemokine receptor CXCR4]. , 2012, Postepy higieny i medycyny doswiadczalnej.
[46] Maryam Tabrizian,et al. Delivery of recombinant bone morphogenetic proteins for bone regeneration and repair. Part A: Current challenges in BMP delivery , 2009, Biotechnology Letters.
[47] V. Calvert,et al. Role of Tyrosine Phosphorylation in Ligand-independent Sequestration of CXCR4 in Human Primary Monocytes-Macrophages* , 2001, The Journal of Biological Chemistry.