Polycaprolactone/poly l-lactic acid nanofibrous scaffold improves osteogenic differentiation of the amniotic fluid-derived stem cells
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[1] R. Gong,et al. Heterogeneous porous PLLA/PCL fibrous scaffold for bone tissue regeneration. , 2023, International journal of biological macromolecules.
[2] Shang-Ming Lin,et al. Fabrication of Polylactic Acid/β-Tricalcium Phosphate FDM 3D Printing Fiber to Enhance Osteoblastic-Like Cell Performance , 2021, Frontiers in Materials.
[3] C. Shuai,et al. Accelerated degradation of HAP/PLLA bone scaffold by PGA blending facilitates bioactivity and osteoconductivity , 2020, Bioactive materials.
[4] Thanh Phuoc Nguyen,et al. Hydroxyapatite nano bioceramics optimized 3D printed poly lactic acid scaffold for bone tissue engineering application , 2020 .
[5] M. Darvish,et al. Comparison of osteogenic differentiation potential of induced pluripotent stem cells on 2D and 3D polyvinylidene fluoride scaffolds , 2019, Journal of cellular physiology.
[6] A. Ardeshirylajimi,et al. Efficient osteogenic differentiation of the dental pulp stem cells on β‐glycerophosphate loaded polycaprolactone/polyethylene oxide blend nanofibers , 2019, Journal of cellular physiology.
[7] Yi Luo,et al. Hyaluronic acid promotes osteogenic differentiation of human amniotic mesenchymal stem cells via the TGF-β/Smad signalling pathway. , 2019, Life sciences.
[8] B. Scammell,et al. In vitro cellular testing of strontium/calcium substituted phosphate glass discs and microspheres shows potential for bone regeneration , 2019, Journal of tissue engineering and regenerative medicine.
[9] A. Slawin,et al. Chitosan Immobilization on Bio-MOF Nanostructures: A Biocompatible pH-Responsive Nanocarrier for Doxorubicin Release on MCF-7 Cell Lines of Human Breast Cancer. , 2018, Inorganic chemistry.
[10] Runchana Markmee,et al. Osteoblastic differentiation potential of human amniotic fluid-derived mesenchymal stem cells in different culture conditions. , 2018, Acta histochemica.
[11] A. Ardeshirylajimi,et al. Osteogenic differentiation potential of mesenchymal stem cells cultured on nanofibrous scaffold improved in the presence of pulsed electromagnetic field , 2018, Journal of cellular physiology.
[12] A. Khojasteh,et al. Different Porosities of Chitosan Can Influence the Osteogenic Differentiation Potential of Stem Cells , 2018, Journal of cellular biochemistry.
[13] T. Newman,et al. Transient Canonical Wnt Stimulation Enriches Human Bone Marrow Mononuclear Cell Isolates for Osteoprogenitors , 2015, Stem cells.
[14] M. Pashaiasl,et al. A Mini Overview of Isolation, Characterization and Application of Amniotic Fluid Stem Cells , 2015, International journal of stem cells.
[15] G. Walker,et al. Cytocompatibility and Mechanical Properties of Short Phosphate Glass Fibre Reinforced Polylactic Acid (PLA) Composites: Effect of Coupling Agent Mediated Interface , 2012, Journal of functional biomaterials.
[16] A. Atala,et al. The effect of differentiation stage of amniotic fluid stem cells on bone regeneration. , 2012, Biomaterials.
[17] G. Vunjak‐Novakovic,et al. Development of silk-based scaffolds for tissue engineering of bone from human adipose-derived stem cells. , 2012, Acta biomaterialia.
[18] N. Anagnou,et al. Amniotic Fluid and Amniotic Membrane Stem Cells: Marker Discovery , 2012, Stem cells international.
[19] S. Iannace,et al. Microstructure, degradation and in vitro MG63 cells interactions of a new poly(ε-caprolactone), zein, and hydroxyapatite composite for bone tissue engineering , 2012 .
[20] Cesar V Borlongan,et al. Amniotic fluid stem cells: a promising therapeutic resource for cell-based regenerative therapy. , 2012, Current pharmaceutical design.
[21] C. Migliaresi,et al. Human amniotic fluid stem cells seeded in fibroin scaffold produce in vivo mineralized matrix. , 2011, Tissue engineering. Part A.
[22] Y. Mai,et al. Electrospun poly(L‐lactide)/poly(ε‐caprolactone) blend fibers and their cellular response to adipose‐derived stem cells , 2011 .
[23] Byung-Chul Kim,et al. Stem cells in bone tissue engineering , 2010, Biomedical materials.
[24] Sheng Lin-Gibson,et al. The effect of 3D hydrogel scaffold modulus on osteoblast differentiation and mineralization revealed by combinatorial screening. , 2010, Biomaterials.
[25] Shengli Zhang,et al. The heterogeneity of cell subtypes from a primary culture of human amniotic fluid , 2010, Cellular & Molecular Biology Letters.
[26] D. Warburton,et al. Protective Effect of Human Amniotic Fluid Stem Cells in an Immunodeficient Mouse Model of Acute Tubular Necrosis , 2010, PloS one.
[27] M. Tsai,et al. Cellular cardiomyoplasty with human amniotic fluid stem cells: in vitro and in vivo studies. , 2010, Tissue engineering. Part A.
[28] S. Soker,et al. Osteogenic differentiation of human amniotic fluid-derived stem cells induced by bone morphogenetic protein-7 and enhanced by nanofibrous scaffolds. , 2010, Biomaterials.
[29] E. Place,et al. Complexity in biomaterials for tissue engineering. , 2009, Nature materials.
[30] D. Warburton,et al. Human Amniotic Fluid Stem Cells Can Integrate and Differentiate into Epithelial Lung Lineages , 2008, Stem cells.
[31] Filippo Causa,et al. Polylactic acid fibre-reinforced polycaprolactone scaffolds for bone tissue engineering. , 2008, Biomaterials.
[32] A. Atala,et al. Sources of Stem Cells for Regenerative Medicine , 2008, Stem Cell Reviews.
[33] Peter X Ma,et al. Biomimetic materials for tissue engineering. , 2008, Advanced drug delivery reviews.
[34] S. Ho,et al. Post-injury regeneration in rat sciatic nerve facilitated by neurotrophic factors secreted by amniotic fluid mesenchymal stem cells , 2007, Journal of Clinical Neuroscience.
[35] J. Fischer,et al. Bone Healing and Migration of Cord Blood—Derived Stem Cells Into a Critical Size Femoral Defect After Xenotransplantation , 2007, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[36] G. Zucconi,et al. Mesenchymal cells from human amniotic fluid survive and migrate after transplantation into adult rat brain , 2007, Cell biology international.
[37] Anthony Atala,et al. Isolation of amniotic stem cell lines with potential for therapy , 2007, Nature Biotechnology.
[38] A. Tosteson,et al. Incidence and Economic Burden of Osteoporosis‐Related Fractures in the United States, 2005–2025 , 2007, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[39] H. Kim,et al. Human amniotic fluid‐derived stem cells have characteristics of multipotent stem cells , 2007, Cell proliferation.
[40] Cato T Laurencin,et al. Nanobiomaterial applications in orthopedics , 2007, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[41] D. Fauza,et al. Fetal cartilage engineering from amniotic mesenchymal progenitor cells. , 2006, Stem cells and development.
[42] Geraldine Mitchell,et al. The influence of architecture on degradation and tissue ingrowth into three-dimensional poly(lactic-co-glycolic acid) scaffolds in vitro and in vivo. , 2006, Biomaterials.
[43] E. Rodríguez‐Merchán,et al. Nonunion: general principles and experimental data. , 2004, Clinical orthopaedics and related research.
[44] D. Fauza,et al. The amniotic fluid as a source of cells for fetal tissue engineering. , 2001, Journal of pediatric surgery.
[45] Robert Langer,et al. Preparation and characterization of poly(l-lactic acid) foams , 1994 .
[46] A. Atala,et al. Amniotic fluid and bone marrow derived mesenchymal stem cells can be converted to smooth muscle cells in the cryo-injured rat bladder and prevent compensatory hypertrophy of surviving smooth muscle cells. , 2007, The Journal of urology.