Self-Assembled Fibrinogen Scaffolds Support Cocultivation of Human Dermal Fibroblasts and HaCaT Keratinocytes
暂无分享,去创建一个
[1] D. Brüggemann,et al. Nanofiber Topographies Enhance Platelet‐Fibrinogen Scaffold Interactions , 2022, Advanced healthcare materials.
[2] S. Kundu,et al. Bioengineering of fibroblast-conditioned Polycaprolactone/Gelatin electrospun scaffold for skin tissue engineering. , 2022, Artificial organs.
[3] J. Hansmann,et al. Fully Synthetic 3D Fibrous Scaffolds for Stromal Tissues—Replacement of Animal‐Derived Scaffold Materials Demonstrated by Multilayered Skin , 2021, Advanced materials.
[4] H. Niknejad,et al. Recent Advances on Cell-Based Co-Culture Strategies for Prevascularization in Tissue Engineering , 2021, Frontiers in Bioengineering and Biotechnology.
[5] G. Wallace,et al. Catechol functionalized ink system and thrombin-free fibrin gel for fabricating cellular constructs with mechanical support and inner micro channels , 2021, Biofabrication.
[6] Weihua Liang,et al. A biomimetic orthogonal-bilayer tubular scaffold for the co-culture of endothelial cells and smooth muscle cells , 2021, RSC advances.
[7] Yasser Almadani,et al. Wound Healing: A Comprehensive Review , 2021, Seminars in Plastic Surgery.
[8] M. Radmacher,et al. Self-assembled fibrinogen nanofibers support fibroblast adhesion and prevent E. coli infiltration. , 2021, Materials science & engineering. C, Materials for biological applications.
[9] A. Oliva,et al. Pigmented Full-Thickness Human Skin Model Based on a Fibroblast-Derived Matrix for Long-Term Studies , 2021, Tissue engineering. Part C, Methods.
[10] Victoria H. Roberton,et al. Engineered Aligned Endothelial Cell Structures in Tethered Collagen Hydrogels Promote Peripheral Nerve Regeneration , 2021, Acta biomaterialia.
[11] L. Bačáková,et al. The Effect of a Polyester Nanofibrous Membrane with a Fibrin-Platelet Lysate Coating on Keratinocytes and Endothelial Cells in a Co-Culture System , 2021, Nanomaterials.
[12] Jana Markhoff,et al. Effect of Collagen Nanofibers and Silanization on the Interaction of HaCaT Keratinocytes and 3T3 Fibroblasts with Alumina Nanopores. , 2021, ACS applied bio materials.
[13] Menglin Chen,et al. Electrospun Nanofibers of Natural and Synthetic Polymers as Artificial Extracellular Matrix for Tissue Engineering , 2020, Nanomaterials.
[14] S. Davidson,et al. Skin-Nerve Co-culture Systems for Disease Modeling and Drug Discovery. , 2020, Tissue engineering. Part C, Methods.
[15] E. Lane,et al. Optimized construction of a full thickness human skin equivalent using 3D bioprinting and a PCL/collagen dermal scaffold , 2020 .
[16] R. Hernández,et al. Chronic wounds: Current status, available strategies and emerging therapeutic solutions. , 2020, Journal of controlled release : official journal of the Controlled Release Society.
[17] A. Seifalian,et al. Gelatin Electrospun Mat as a Potential Co-culture System for In Vitro Production of Sperm Cells from Embryonic Stem Cells. , 2020, ACS biomaterials science & engineering.
[18] A. Khademhosseini,et al. Engineered biomaterials for in situ tissue regeneration , 2020, Nature Reviews Materials.
[19] C. Chizzolini,et al. Interplay Between Keratinocytes and Fibroblasts: A Systematic Review Providing a New Angle for Understanding Skin Fibrotic Disorders , 2020, Frontiers in Immunology.
[20] A. Pérez-Torres,et al. Wound Healing Activity of the Essential Oil of Bursera morelensis, in Mice , 2020, Molecules.
[21] S. Han,et al. Hemostatic, biocompatible, and antibacterial non-animal fungal mushroom-based carboxymethyl chitosan-ZnO nanocomposite for wound-healing applications. , 2020, International journal of biological macromolecules.
[22] S. Han,et al. Novel biomimetic chitin-glucan polysaccharide nano/microfibrous fungal-scaffolds for tissue engineering applications. , 2020, International journal of biological macromolecules.
[23] B. Mandal,et al. Emerging and innovative approaches for wound healing and skin regeneration: Current status and advances. , 2019, Biomaterials.
[24] Karsten Stapelfeldt,et al. Controlling the multiscale structure of nanofibrous fibrinogen scaffolds for wound healing. , 2019, Nano letters.
[25] M. Bačáková,et al. A two-layer skin construct consisting of a collagen hydrogel reinforced by a fibrin-coated polylactide nanofibrous membrane , 2019, International journal of nanomedicine.
[26] Patricia Rousselle,et al. Re-epithelialization of adult skin wounds: Cellular mechanisms and therapeutic strategies. , 2019, Advanced drug delivery reviews.
[27] L. P. Tan,et al. Migration and Phenotype Control of Human Dermal Fibroblasts by Electrospun Fibrous Substrates , 2019, Advanced healthcare materials.
[28] D. Brüggemann,et al. Fabrication of 3D-nanofibrous fibrinogen scaffolds using salt-induced self assembly , 2019, Biofabrication.
[29] R. Faridi‐Majidi,et al. The effects of cross-linked/uncross-linked electrospun fibrinogen/polycaprolactone nanofibers on the proliferation of normal human epidermal keratinocytes , 2018, Journal of Polymer Engineering.
[30] Benjamin M. Wu,et al. Keratinocyte Migration in a Three-Dimensional In Vitro Wound Healing Model Co-Cultured with Fibroblasts , 2018, Tissue Engineering and Regenerative Medicine.
[31] Hyerin Jung,et al. Establishment of a complex skin structure via layered co-culture of keratinocytes and fibroblasts derived from induced pluripotent stem cells , 2018, Stem Cell Research & Therapy.
[32] R. Huang,et al. Actin cytoskeleton self-organization in single epithelial cells and fibroblasts under isotropic confinement , 2018, bioRxiv.
[33] Angela R. Jockheck-Clark,et al. Development of Electrospun Chitosan-Polyethylene Oxide/Fibrinogen Biocomposite for Potential Wound Healing Applications , 2018, Nanoscale Research Letters.
[34] Yong Woo Cho,et al. Artificial skin models for animal-free testing , 2018, Journal of Pharmaceutical Investigation.
[35] M. Jeschke,et al. Biomaterials for Skin Substitutes , 2018, Advanced healthcare materials.
[36] W. Yeong,et al. Proof-of-concept: 3D bioprinting of pigmented human skin constructs , 2018, Biofabrication.
[37] B. Li,et al. Bioprinting of skin constructs for wound healing , 2018, Burns & Trauma.
[38] M. Dell’Agli,et al. HaCaT Cells as a Reliable In Vitro Differentiation Model to Dissect the Inflammatory/Repair Response of Human Keratinocytes , 2017, Mediators of inflammation.
[39] F. Awaja,et al. Three Dimensional Honeycomb Patterned Fibrinogen Based Nanofibers Induce Substantial Osteogenic Response of Mesenchymal Stem Cells , 2017, Scientific Reports.
[40] Vladimir S Komlev,et al. Fibrinogen-modified sodium alginate as a scaffold material for skin tissue engineering , 2017, Biomedical materials.
[41] Ashley C. Brown,et al. The role of biophysical properties of provisional matrix proteins in wound repair. , 2017, Matrix biology : journal of the International Society for Matrix Biology.
[42] Shweta Tripathi,et al. Advances in Skin Regeneration Using Tissue Engineering , 2017, International journal of molecular sciences.
[43] S. Chowdhury,et al. Attachment, Proliferation, and Morphological Properties of Human Dermal Fibroblasts on Ovine Tendon Collagen Scaffolds: A Comparative Study. , 2017, The Malaysian journal of medical sciences : MJMS.
[44] Kevin W. Eliceiri,et al. ImageJ2: ImageJ for the next generation of scientific image data , 2017, BMC Bioinformatics.
[45] J. Spatz,et al. Template-assisted extrusion of biopolymer nanofibers under physiological conditions. , 2016, Integrative biology : quantitative biosciences from nano to macro.
[46] Ying Yang,et al. A comparative study of skin cell activities in collagen and fibrin constructs. , 2016, Medical engineering & physics.
[47] F. Awaja,et al. Differentiation of Human Mesenchymal Stem Cells Toward Quality Cartilage Using Fibrinogen-Based Nanofibers. , 2016, Macromolecular bioscience.
[48] Changyou Gao,et al. Biomaterials for in situ tissue regeneration: development and perspectives. , 2015, Journal of materials chemistry. B.
[49] Md. Lutful Amin,et al. Fibrinogen as a promising material for various biomedical applications , 2015, Molecular & Cellular Toxicology.
[50] P. Maitz,et al. Scaffolds: Skin Tissue Engineering , 2015 .
[51] A. C. Jayasuriya,et al. Current wound healing procedures and potential care. , 2015, Materials science & engineering. C, Materials for biological applications.
[52] Yahya E Choonara,et al. A comprehensive review of advanced biopolymeric wound healing systems. , 2014, Journal of pharmaceutical sciences.
[53] Olivera Stojadinovic,et al. Epithelialization in Wound Healing: A Comprehensive Review. , 2014, Advances in wound care.
[54] J. Santerre,et al. Biomaterials in co-culture systems: towards optimizing tissue integration and cell signaling within scaffolds. , 2014, Biomaterials.
[55] Thanavel Rajangam,et al. Fibrinogen and fibrin based micro and nano scaffolds incorporated with drugs, proteins, cells and genes for therapeutic biomedical applications , 2013, International journal of nanomedicine.
[56] S. Kundu,et al. Skin Equivalent Tissue-Engineered Construct: Co-Cultured Fibroblasts/ Keratinocytes on 3D Matrices of Sericin Hope Cocoons , 2013, PloS one.
[57] G. Altankov,et al. Fibrinogen nanofibers for guiding endothelial cell behavior. , 2013, Biomaterials science.
[58] A. Lendlein,et al. Test system for evaluating the influence of polymer properties on primary human keratinocytes and fibroblasts in mono- and coculture. , 2013, Journal of biotechnology.
[59] Lara Yildirimer,et al. Skin regeneration scaffolds: a multimodal bottom-up approach. , 2012, Trends in biotechnology.
[60] Ying Wang,et al. Enhanced Keratinocyte Proliferation and Migration in Co-culture with Fibroblasts , 2012, PloS one.
[61] Michael Landthaler,et al. Cytokines, chemokines and growth factors in wound healing , 2012, Journal of the European Academy of Dermatology and Venereology : JEADV.
[62] H. Kong,et al. Hydrogels for in vivo‐like three‐dimensional cellular studies , 2012, Wiley interdisciplinary reviews. Systems biology and medicine.
[63] Zong-Lai Jiang,et al. Osteogenic response of mesenchymal stem cells to continuous mechanical strain is dependent on ERK1/2-Runx2 signaling. , 2012, International journal of molecular medicine.
[64] K. König,et al. Keratinocyte morphology of human skin evaluated by in vivo multiphoton laser tomography , 2011, Skin research and technology : official journal of International Society for Bioengineering and the Skin (ISBS) [and] International Society for Digital Imaging of Skin (ISDIS) [and] International Society for Skin Imaging.
[65] K. Midwood,et al. Plasma and cellular fibronectin: distinct and independent functions during tissue repair , 2011, Fibrogenesis & tissue repair.
[66] Y. Tabata,et al. A denatured collagen microfiber scaffold seeded with human fibroblasts and keratinocytes for skin grafting. , 2011, Biomaterials.
[67] Katja Schenke-Layland,et al. Skin tissue engineering--in vivo and in vitro applications. , 2011, Advanced drug delivery reviews.
[68] B. Tawil,et al. Proliferation of human keratinocytes and cocultured human keratinocytes and fibroblasts in three-dimensional fibrin constructs. , 2011, Tissue engineering. Part A.
[69] J. Schalkwijk,et al. A molecularly defined array based on native fibrillar collagen for the assessment of skin tissue engineering biomaterials. , 2009, Biomaterials.
[70] M. Shokrgozar,et al. In vitro co-culture of human skin keratinocytes and fibroblasts on a biocompatible and biodegradable scaffold. , 2009, Iranian biomedical journal.
[71] G. Bowlin,et al. Cross-linking methods of electrospun fibrinogen scaffolds for tissue engineering applications , 2008, Biomedical materials.
[72] M. Hincke,et al. Fibrin: a versatile scaffold for tissue engineering applications. , 2008, Tissue engineering. Part B, Reviews.
[73] David G Simpson,et al. Nanofiber technology: designing the next generation of tissue engineering scaffolds. , 2007, Advanced drug delivery reviews.
[74] G. Bowlin,et al. Electrospun nanofibre fibrinogen for urinary tract tissue reconstruction , 2007, Biomedical materials.
[75] S. Spiekstra,et al. Wound‐healing factors secreted by epidermal keratinocytes and dermal fibroblasts in skin substitutes , 2007, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[76] David G Simpson,et al. Electrospun fibrinogen: feasibility as a tissue engineering scaffold in a rat cell culture model. , 2007, Journal of biomedical materials research. Part A.
[77] Sabine Werner,et al. Keratinocyte-fibroblast interactions in wound healing. , 2007, The Journal of investigative dermatology.
[78] S. MacNeil,et al. In situ image analysis of interactions between normal human keratinocytes and fibroblasts cultured in three-dimensional fibrin gels. , 2006, Biomaterials.
[79] A. Han,et al. 30 Role of Immunohistochemistry in Elucidating Lung Cancer Metastatic to the Ovary from Primary Ovarian Carcinoma , 2005 .
[80] A. Dalley,et al. A simple in vitro model for investigating epithelial/mesenchymal interactions: keratinocyte inhibition of fibroblast proliferation and fibronectin synthesis , 2005, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[81] Sheila MacNeil,et al. Self-organization of skin cells in three-dimensional electrospun polystyrene scaffolds. , 2005, Tissue engineering.
[82] H. Yanaga,et al. Fibrin stimulates the proliferation of human keratinocytes through the autocrine mechanism of transforming growth factor-alpha and epidermal growth factor receptor. , 2005, The Tohoku journal of experimental medicine.
[83] S. Andreadis,et al. A novel role of fibrin in epidermal healing: plasminogen-mediated migration and selective detachment of differentiated keratinocytes. , 2003, The Journal of investigative dermatology.
[84] Gary E. Wnek,et al. Electrospinning of Nanofiber Fibrinogen Structures , 2003 .
[85] B. Hinz,et al. Myofibroblasts and mechano-regulation of connective tissue remodelling , 2002, Nature Reviews Molecular Cell Biology.
[86] R. Clark,et al. Fibrinogen and fibrin are anti-adhesive for keratinocytes: a mechanism for fibrin eschar slough during wound repair. , 2001, The Journal of investigative dermatology.
[87] A. Falabella,et al. Un-cross-linked fibrin substrates inhibit keratinocyte spreading and replication: correction with fibronectin and factor XIII cross-linking. , 1998, Journal of cellular physiology.
[88] R. Clark,et al. Human Fibroblasts Bind Directly to Fibrinogen at RGD Sites through Integrin αvβ3 , 1997 .
[89] E. Plow,et al. Fibrinogen Is a Ligand for Integrin α5β1 on Endothelial Cells* , 1997, The Journal of Biological Chemistry.
[90] R Fleischmajer,et al. Immunochemistry of a keratinocyte-fibroblast co-culture model for reconstruction of human skin. , 1993, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[91] R. Dulbecco,et al. Induction of growth in resting fibroblastic cell cultures by Ca++. , 1975, Proceedings of the National Academy of Sciences of the United States of America.
[92] J. Weisel,et al. Fibrin Formation, Structure and Properties. , 2017, Sub-cellular biochemistry.
[93] Elena von Molitor,et al. In vitro skin three-dimensional models and their applications , 2017 .
[94] N. Fusenig,et al. Authentic fibroblast matrix in dermal equivalents normalises epidermal histogenesis and dermoepidermal junction in organotypic co-culture. , 2004, European journal of cell biology.