Absence of lymphatic vessels in the developing human sclera.
暂无分享,去创建一个
C. Cursiefen | L. Heindl | H. Reitsamer | F. Schrödl | S. Schlereth | K. Koch | M. Herwig | A. Müller | Barbara Neuser
[1] C. Cursiefen,et al. Topical Ranibizumab inhibits inflammatory corneal hem‐ and lymphangiogenesis , 2014, Acta ophthalmologica.
[2] C. Cursiefen,et al. Enrichment of lymphatic vessel endothelial hyaluronan receptor 1 (LYVE1)-positive macrophages around blood vessels in the normal human sclera. , 2014, Investigative ophthalmology & visual science.
[3] C. Cursiefen,et al. Lymphatic vessels in the development of tissue and organ rejection. , 2014, Advances in anatomy, embryology, and cell biology.
[4] C. Wildsoet,et al. Scleral Micro-RNA Signatures in Adult and Fetal Eyes , 2013, PloS one.
[5] K. Maruyama,et al. Novel anti(lymph)angiogenic treatment strategies for corneal and ocular surface diseases , 2013, Progress in Retinal and Eye Research.
[6] D. Copenhagen,et al. A direct and melanopsin-dependent fetal light response regulates mouse eye development , 2013, Nature.
[7] C. Cursiefen,et al. Corneal angiogenesis and lymphangiogenesis , 2012, Current opinion in allergy and clinical immunology.
[8] F. Kruse,et al. Invasion of lymphatic vessels into the eye after open globe injuries. , 2012, Investigative ophthalmology & visual science.
[9] G. Naumann,et al. Prognostic significance of tumor-associated lymphangiogenesis in malignant melanomas of the conjunctiva. , 2011, Ophthalmology.
[10] G. Naumann,et al. Tumor-associated lymphangiogenesis in the development of conjunctival melanoma. , 2011, Investigative ophthalmology & visual science.
[11] Michele De Palma,et al. The interplay between macrophages and angiogenesis in development, tissue injury and regeneration. , 2011, The International journal of developmental biology.
[12] J. Pollard,et al. Macrophages define dermal lymphatic vessel calibre during development by regulating lymphatic endothelial cell proliferation. , 2010, Journal of Cell Science.
[13] J. Schwartzkopff,et al. NK cell depletion delays corneal allograft rejection in baby rats , 2010, Molecular vision.
[14] F. Kruse,et al. Intraocular lymphatics in ciliary body melanomas with extraocular extension: functional for lymphatic spread? , 2010, Archives of ophthalmology.
[15] C. Little,et al. Immunolocalization of lymphatic vessels in human fetal knee joint tissues , 2010, Connective tissue research.
[16] K. Maruyama,et al. Genetic heterogeneity of lymphangiogenesis in different mouse strains. , 2010, The American journal of pathology.
[17] N. Papadogiannakis,et al. The Number of CD68+ (Hofbauer) Cells is Decreased in Placentas with Chorioamnionitis and with Advancing Gestational Age , 2010, Pediatric and developmental pathology : the official journal of the Society for Pediatric Pathology and the Paediatric Pathology Society.
[18] G. Naumann,et al. Tumor-associated lymphangiogenesis in the development of conjunctival squamous cell carcinoma. , 2010, Ophthalmology.
[19] G. Naumann,et al. Intraocular tumor-associated lymphangiogenesis a novel prognostic factor for ciliary body melanomas with extraocular extension? , 2010, Ophthalmology.
[20] J. Schwartzkopff,et al. Accelerated corneal graft rejection in baby rats , 2009, British Journal of Ophthalmology.
[21] G. Naumann,et al. Intraocular lymphangiogenesis in malignant melanomas of the ciliary body with extraocular extension. , 2009, Investigative ophthalmology & visual science.
[22] A. Sica,et al. developmental relationships embryonic macrophages suggests common functions and Tie 2-expressing monocytes , blood ' ' resident ' ' monocytes , and A distinguishing gene signature shared by tumor-infiltrating , 2009 .
[23] Claus Cursiefen,et al. Immune privilege and angiogenic privilege of the cornea. , 2007, Chemical immunology and allergy.
[24] 宮原 麻由美. Tumor lymphangiogenesis correlates with lymph node metastasis and clinicopathologic parameters in oral squamous cell carcinoma , 2007 .
[25] R. Dana,et al. Nonvascular VEGF receptor 3 expression by corneal epithelium maintains avascularity and vision. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[26] F. Kruse,et al. Absence of Blood and Lymphatic Vessels in the Developing Human Cornea , 2006, Cornea.
[27] S. Ugurel,et al. Lymphatic endothelium‐specific hyaluronan receptor LYVE‐1 is expressed by stabilin‐1+, F4/80+, CD11b+ macrophages in malignant tumours and wound healing tissue in vivo and in bone marrow cultures in vitro: implications for the assessment of lymphangiogenesis , 2006, The Journal of pathology.
[28] E. Rappaport,et al. Differential gene expression in mouse sclera during ocular development. , 2006, Investigative ophthalmology & visual science.
[29] Luigi Naldini,et al. Tie2 identifies a hematopoietic lineage of proangiogenic monocytes required for tumor vessel formation and a mesenchymal population of pericyte progenitors. , 2005, Cancer cell.
[30] K. Maruyama,et al. Inflammation-induced lymphangiogenesis in the cornea arises from CD11b-positive macrophages. , 2005, The Journal of clinical investigation.
[31] Magali Saint-Geniez,et al. Development and pathology of the hyaloid, choroidal and retinal vasculature. , 2004, The International journal of developmental biology.
[32] K. Alitalo,et al. Lymphatic vessels in vascularized human corneas: immunohistochemical investigation using LYVE-1 and podoplanin. , 2002, Investigative ophthalmology & visual science.
[33] M. Yoshioka,et al. Regression of the hyaloid vessels and pupillary membrane of the mouse , 1999, Anatomy and Embryology.