Walking the Line: A Fibronectin Fiber-Guided Assay to Probe Early Steps of (Lymph)angiogenesis
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[1] K. Degenhardt,et al. Fibronectin signals through integrin α5β1 to regulate cardiovascular development in a cell type-specific manner. , 2015, Developmental biology.
[2] Viola Vogel,et al. Mechanical forces regulate the interactions of fibronectin and collagen I in extracellular matrix , 2015, Nature Communications.
[3] A. Philippides,et al. The role of differential VE-cadherin dynamics in cell rearrangement during angiogenesis , 2014, Nature Cell Biology.
[4] R. Bacabac,et al. Cells actively stiffen fibrin networks by generating contractile stress. , 2013, Biophysical journal.
[5] R. Pidaparti,et al. A biomechanical model of wound contraction and scar formation. , 2013, Journal of theoretical biology.
[6] E. Lammert,et al. Mechanical forces in lymphatic vascular development and disease , 2013, Cellular and Molecular Life Sciences.
[7] K. Alitalo,et al. A novel multistep mechanism for initial lymphangiogenesis in mouse embryos based on ultramicroscopy , 2013, The EMBO journal.
[8] Gisbert Schneider,et al. Phenotype-based high-content chemical library screening identifies statins as inhibitors of in vivo lymphangiogenesis , 2012, Proceedings of the National Academy of Sciences.
[9] C. Chou,et al. Development and Fibronectin Signaling Requirements of the Zebrafish Interrenal Vessel , 2012, PloS one.
[10] E. Lammert,et al. Vascular lumen formation. , 2012, Cold Spring Harbor perspectives in medicine.
[11] I. Geudens,et al. Coordinating cell behaviour during blood vessel formation , 2011, Development.
[12] Yukiko Kurihara,et al. Angiogenic morphogenesis driven by dynamic and heterogeneous collective endothelial cell movement , 2011, Development.
[13] Jacqueline Murray,et al. Integrin-dependent and -independent functions of astrocytic fibronectin in retinal angiogenesis , 2011, Development.
[14] Amber N. Stratman,et al. Molecular Mechanisms Controlling Vascular Lumen Formation in Three-Dimensional Extracellular Matrices , 2011, Cells Tissues Organs.
[15] P. Tan,et al. Vascular endothelial growth factor receptors and the therapeutic targeting of angiogenesis in cancer: where do we go from here? , 2011, Cell communication & adhesion.
[16] Holger Gerhardt,et al. Basic and Therapeutic Aspects of Angiogenesis , 2011, Cell.
[17] K. Alitalo,et al. Notch restricts lymphatic vessel sprouting induced by vascular endothelial growth factor. , 2011, Blood.
[18] E. Van Obberghen-Schilling,et al. Fibronectin and tenascin-C: accomplices in vascular morphogenesis during development and tumor growth. , 2011, The International journal of developmental biology.
[19] J. Schwarzbauer,et al. Fibronectins, their fibrillogenesis, and in vivo functions. , 2011, Cold Spring Harbor perspectives in biology.
[20] B. Hann,et al. Experimental models to study lymphatic and blood vascular metastasis , 2011, Journal of surgical oncology.
[21] M. Gardel,et al. Cell-ECM traction force modulates endogenous tension at cell–cell contacts , 2011, Proceedings of the National Academy of Sciences.
[22] V. Vogel,et al. Stretching fibronectin fibres disrupts binding of bacterial adhesins by physically destroying an epitope , 2010, Nature communications.
[23] H. Gerhardt,et al. Endothelial cells dynamically compete for the tip cell position during angiogenic sprouting , 2010, Nature Cell Biology.
[24] D. Carr,et al. VEGF-A expression by HSV-1–infected cells drives corneal lymphangiogenesis , 2009, The Journal of experimental medicine.
[25] N. Ferrara. VEGF-A: a critical regulator of blood vessel growth. , 2009, European cytokine network.
[26] Viola Vogel,et al. Crosslinking of cell-derived 3D scaffolds up-regulates the stretching and unfolding of new extracellular matrix assembled by reseeded cells. , 2009, Integrative biology : quantitative biosciences from nano to macro.
[27] R. Hynes. The Extracellular Matrix: Not Just Pretty Fibrils , 2009, Science.
[28] D. Gourdon,et al. Stretched Extracellular Matrix Proteins Turn Fouling and Are Functionally Rescued by the Chaperones Albumin and Casein , 2009, Nano letters.
[29] P. Friedl,et al. Collective cell migration in morphogenesis, regeneration and cancer , 2009, Nature Reviews Molecular Cell Biology.
[30] Sophie Astrof,et al. Fibronectins in vascular morphogenesis , 2009, Angiogenesis.
[31] M. Detmar,et al. The lymphatic system in health and disease. , 2008, Lymphatic research and biology.
[32] M. Affolter,et al. Tip-Cell Migration Controls Stalk-Cell Intercalation during Drosophila Tracheal Tube Elongation , 2008, Current Biology.
[33] Antonio Duarte,et al. Blocking VEGFR-3 suppresses angiogenic sprouting and vascular network formation , 2008, Nature.
[34] Viola Vogel,et al. Assay to mechanically tune and optically probe fibrillar fibronectin conformations from fully relaxed to breakage. , 2008, Matrix biology : journal of the International Society for Matrix Biology.
[35] S. Harper,et al. VEGF-C induced angiogenesis preferentially occurs at a distance from lymphangiogenesis. , 2008, Cardiovascular research.
[36] Denis Wirtz,et al. Fibronectin fibrillogenesis regulates three-dimensional neovessel formation. , 2008, Genes & development.
[37] M. Detmar,et al. VEGF-A produced by chronically inflamed tissue induces lymphangiogenesis in draining lymph nodes. , 2007, Blood.
[38] Viola Vogel,et al. Force-Induced Unfolding of Fibronectin in the Extracellular Matrix of Living Cells , 2007, PLoS biology.
[39] Richard O. Hynes. Cell–matrix adhesion in vascular development , 2007, Journal of thrombosis and haemostasis : JTH.
[40] D. McDonald,et al. Rapid vascular regrowth in tumors after reversal of VEGF inhibition. , 2006, The Journal of clinical investigation.
[41] A. Akeson,et al. Lymphangiogenesis in the developing lung promoted by VEGF-A. , 2006, Microvascular research.
[42] Viola Vogel,et al. Mechanotransduction involving multimodular proteins: converting force into biochemical signals. , 2006, Annual review of biophysics and biomolecular structure.
[43] Satoshi Hirakawa,et al. VEGF-A induces tumor and sentinel lymph node lymphangiogenesis and promotes lymphatic metastasis , 2005, The Journal of experimental medicine.
[44] P. Bohlen,et al. VEGF‐A promotes tissue repair‐associated lymphatic vessel formation via VEGFR‐2 and the α1β1 and α2β1 integrins , 2004 .
[45] B. Weinstein,et al. Angiogenic network formation in the developing vertebrate trunk , 2003, Development.
[46] K. Alitalo,et al. VEGF guides angiogenic sprouting utilizing endothelial tip cell filopodia , 2003, The Journal of cell biology.
[47] N. Ferrara,et al. The biology of VEGF and its receptors , 2003, Nature Medicine.
[48] T. Libermann,et al. Identification of vascular lineage-specific genes by transcriptional profiling of isolated blood vascular and lymphatic endothelial cells. , 2003, The American journal of pathology.
[49] Viola Vogel,et al. Fibronectin extension and unfolding within cell matrix fibrils controlled by cytoskeletal tension , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[50] M. Fishman,et al. Patterning of angiogenesis in the zebrafish embryo. , 2002, Development.
[51] K. Alitalo,et al. VEGF-C signaling pathways through VEGFR-2 and VEGFR-3 in vasculoangiogenesis and hematopoiesis. , 2000, Blood.
[52] Benjamin Geiger,et al. Dynamics and segregation of cell–matrix adhesions in cultured fibroblasts , 2000, Nature Cell Biology.
[53] H. Augustin,et al. Tensional forces in fibrillar extracellular matrices control directional capillary sprouting. , 1999, Journal of cell science.
[54] A. Singer,et al. Cutaneous wound healing. , 1999, The New England journal of medicine.
[55] K. Alitalo,et al. VEGF and VEGF-C: specific induction of angiogenesis and lymphangiogenesis in the differentiated avian chorioallantoic membrane. , 1997, Developmental biology.
[56] A. Sabri,et al. Fibronectin and basement membrane in cardiovascular organogenesis and disease pathogenesis. , 1996, Cardiovascular research.
[57] V Nehls,et al. A novel, microcarrier-based in vitro assay for rapid and reliable quantification of three-dimensional cell migration and angiogenesis. , 1995, Microvascular research.
[58] E. Sanders,et al. Guidance of filopodial extension by fibronectin-rich extracellular matrix fibrils during avian gastrulation. A study using confocal microscopy. , 1994, The International journal of developmental biology.
[59] R. Brown,et al. Preparation of orientated fibrous mats from fibronectin: composition and stability. , 1994, Biomaterials.
[60] R. Hynes,et al. Defects in mesoderm, neural tube and vascular development in mouse embryos lacking fibronectin. , 1993, Development.
[61] R. Brown,et al. Production of artificial-orientated mats and strands from plasma fibronectin: a morphological study. , 1993, Biomaterials.
[62] R. Clark,et al. Blood vessel fibronectin increases in conjunction with endothelial cell proliferation and capillary ingrowth during wound healing. , 1982, The Journal of investigative dermatology.
[63] R. Clark,et al. Fibronectin and fibrin provide a provisional matrix for epidermal cell migration during wound reepithelialization. , 1982, The Journal of investigative dermatology.
[64] R. Clark,et al. Fibronectin is produced by blood vessels in response to injury , 1982, The Journal of experimental medicine.
[65] Katherine M Malinda,et al. In vivo matrigel migration and angiogenesis assay. , 2009, Methods in molecular biology.
[66] P. Bohlen,et al. VEGF-A promotes tissue repair-associated lymphatic vessel formation via VEGFR-2 and the alpha1beta1 and alpha2beta1 integrins. , 2004, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[67] Jie Li,et al. Angiogenesis in wound repair: Angiogenic growth factors and the extracellular matrix , 2003, Microscopy research and technique.
[68] Nasim Akhtar,et al. Angiogenesis assays: a critical overview. , 2003, Clinical chemistry.
[69] K. M. Malinda. In vivo matrigel migration and angiogenesis assays. , 2001, Methods in molecular medicine.
[70] J. Folkman. Angiogenesis in cancer, vascular, rheumatoid and other disease , 1995, Nature Medicine.