Lipid-mediated gene transfer of acidic fibroblast growth factor into human corneal endothelial cells.
暂无分享,去创建一个
[1] P. Friedl,et al. Optimization of culture conditions for human corneal endothelial cells , 1989, In Vitro Cellular & Developmental Biology.
[2] N. Joyce. Proliferative capacity of the corneal endothelium , 2003, Progress in Retinal and Eye Research.
[3] H. Mizuguchi,et al. Comparison of the efficiency and safety of non-viral vector-mediated gene transfer into a wide range of human cells. , 2002, Biological & pharmaceutical bulletin.
[4] U. Pleyer,et al. Delivery of Genes via Liposomes to Corneal Endothelial Cells. , 2002, Drug news & perspectives.
[5] A. Murakami,et al. Transferrin-polyethylenimine conjugate, FuGENE6 and TransIT-LT as nonviral vectors for gene transfer to the corneal endothelium. , 2002, Japanese journal of ophthalmology.
[6] H. Inomata,et al. Targeted gene transfer to corneal stroma in vivo by electric pulses. , 2002, Experimental eye research.
[7] D. Dean,et al. High‐level gene transfer to the cornea using electroporation , 2002, The journal of gene medicine.
[8] B. Hinz,et al. Efficiency and toxicity of liposome-mediated gene transfer to corneal endothelial cells. , 2001, Experimental eye research.
[9] A. Chiocca,et al. Flow cytometric assessment of transduction efficiency and cytotoxicity of herpes simplex virus type 1-based amplicon vectors. , 2001, Cytometry.
[10] U. Pleyer,et al. The role of endogenous growth factors to support corneal endothelial migration after wounding in vitro. , 2000, Experimental eye research.
[11] D. Larkin,et al. Gene delivery to the corneal endothelium. , 2000, American journal of respiratory and critical care medicine.
[12] M. Boulton,et al. Optimization of non-viral gene transfer to human primary retinal pigment epithelial cells. , 2000, Current eye research.
[13] P. Friedl,et al. Immortalization of human corneal endothelial cells using electroporation protocol optimized for human corneal endothelial and human retinal pigment epithelial cells. , 2000, Acta ophthalmologica Scandinavica.
[14] D. Ornitz,et al. FGFs, heparan sulfate and FGFRs: complex interactions essential for development. , 2000, BioEssays : news and reviews in molecular, cellular and developmental biology.
[15] P. Eggli,et al. Morphological and functional analysis of immortalized human corneal endothelial cells after transplantation. , 1999, Experimental eye research.
[16] H. Volk,et al. Adenovirus-mediated gene transfer of interleukin-4 to corneal endothelial cells and organ cultured corneas leads to high IL-4 expression. , 1999, Experimental eye research.
[17] M. Belting,et al. Protective role for proteoglycans against cationic lipid cytotoxicity allowing optimal transfection efficiency in vitro. , 1999, The Biochemical journal.
[18] J. Raymond,et al. Enrichment of transiently transfected mesangial cells by cell sorting after cotransfection with GFP. , 1999, American journal of physiology. Renal physiology.
[19] D. Larkin,et al. Lipoadenofection-mediated gene delivery to the corneal endothelium: prospects for modulating graft rejection. , 1998, Transplantation.
[20] D. Larkin,et al. Gene transfer to ex vivo stored corneas. , 1997, Cornea.
[21] M. Dallman,et al. Ex vivo adenovirus-mediated gene transfer and immunomodulatory protein production in human cornea , 1997, Gene Therapy.
[22] F. Lovicu,et al. Expression of FGF-1 and FGF-2 mRNA during lens morphogenesis, differentiation and growth. , 1997, Current eye research.
[23] L. Huang,et al. Protamine sulfate enhances lipid-mediated gene transfer , 1997, Gene Therapy.
[24] E. Tamm,et al. Ocular adenovirus gene transfer varies in efficiency and inflammatory response. , 1996, Investigative ophthalmology & visual science.
[25] Y. Courtois,et al. The role of exogenous/endogenous basic fibroblast growth factor (FGF2) and transforming growth factor beta (TGF beta-1) on human corneal endothelial cells proliferation in vitro. , 1995, Experimental cell research.
[26] R. Reszka,et al. Liposome Mediated Transfer of Marker and Cytokine Genes Into Rat and Human Glioblastoma Cells in Vitro and in Vivo , 1995 .
[27] S. Wilson,et al. Epidermal growth factor, transforming growth factor alpha, transforming growth factor beta, acidic fibroblast growth factor, basic fibroblast growth factor, and interleukin-1 proteins in the cornea. , 1994, Experimental eye research.
[28] E. Nabel,et al. Recombinant fibroblast growth factor-1 promotes intimal hyperplasia and angiogenesis in arteries in vivo , 1993, Nature.
[29] Y. Courtois,et al. aFGF binding to low and high affinity receptors induces both aFGF and aFGF receptors dimerization. , 1993, Growth factors.
[30] J G Flanagan,et al. Heparin is required for cell-free binding of basic fibroblast growth factor to a soluble receptor and for mitogenesis in whole cells , 1992, Molecular and cellular biology.
[31] Y. Courtois,et al. Acidic fibroblast growth factor overexpression in corneal epithelial wound healing. , 1991, Growth factors.
[32] J. Behr,et al. Efficient gene transfer into mammalian primary endocrine cells with lipopolyamine-coated DNA. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[33] G. Coscas,et al. Immunological study of acidic fibroblast growth factor (aFGF) distribution in the eye , 1989, Journal of cellular biochemistry.
[34] N. Ling,et al. Primary structure of bovine brain acidic fibroblast growth factor (FGF). , 1985, Biochemical and biophysical research communications.
[35] D. Gospodarowicz,et al. Acidic fibroblast growth factor (FGF) from bovine brain: amino‐terminal sequence and comparison with basic FGF. , 1985, The EMBO journal.