Yokoyama-Kobayashi et al. recombinant f1 phage particles can transfect monkey COS-7 cells by DEAE dextran method. Biochem. Biophys. Res. Commun. vol. 192 pp. 935-939, 1993.* |
Georges et al. Synthesis of a human insulin gene. Gene vol. 27 pp. 201-211. 1984.* |
Greenstein et al. Vectors derived from filamentous phages in Ausubel et al. Eds. Current Protocols in Molecular Biology, John Wiley & Sons, New York pp. 1.14.1-1.14.5, 1993.* |
Russell Peptide-displaying phages for targeted gene delivery? Nature Medicine vol. 2 pp. 276-277, 1996.* |
Orkin et al. Report and recommendations of the panel to assess the NIH investment in research on gene therapy. pp. 1-41 Retrieved on teh internet:www.nih.gov/news/panelrep.html, 1993.* |
“New Living Colors GFP Mammalian Vectors.” Clontechniques, http;//www.clontech.com/archive/JUL96UPD/EGFP.html. [Accessed 20 Jun. 2000]. |
Goldman et al, “Targeted Gene Delivery to Kaposi'Sarcoma Cells Via the Fibroblast Growth Factor Receptor,” Cancer Research 57:1447-1451, 1997. |
Jesper et al., “λZLG6: A Phage Lambda Vector for High-Efficiency Cloning and Surface Expression of cDNA Libraries on Filamentous Phage,” Gene 173(2):179-181, 1996. |
Larocca et al., “Gene Transfer to Mammalian Cells Using Genetically Targeted Filamentous Bacteriophage,” FASEB J. 13:727-734, 1999. |
Larocca et al., “Targeted Gene Delivery to Mammalian Cells Via Fibroblast Growth Factor (FGF-2) Display Phage,” Cancer Gene Theraphy 5(6):S10/PD-31, 1998. |
Larocca et al., “Targeted Transduction of Mammalian Cells Using a FGF2 Modified Filamentous Bacteriophage,” Cancer Gene Therapy 4(6):S24/O-46, 1997. |
Larocca et al., “Targeting Bacteriophage to Mammalian Cell Surface Receptors for Gene Delivery,” Hum. Gene Ther. 9:2393-2399, 1998. |
Sawyer et al., “Methodology for Selection of Human Antibodies to Membrane Proteins from a Phage-Display Library,” Journal of Immunological Methods 204:193-203, 1997. |
Souriau et al., “A Simple Luciferase Assay for Signal Transduction Activity Detection of Epidermal Growth Factor Displayed on Phage,” Nucleic Acids Research 25(8):1585-1590, 1997. |
Barry et al., “Toward cell-targeting gene therapy vectors: Selection of cell-binding peptides from random peptide-presenting phage libraries,”Nature Medicine 2(3):299-305, 1996. |
de Kruif et al., “Rapid selection of cell subpopulation-specific human monoclonal antibodies from a synthetic phage antibody library,” Proc. Natl. Acad. Sci. USA 92:3938-3942, 1995. |
Dunn, I. S., “Mammalian cell binding and transfection mediated by surface-modified bacteriophage lambda,” Biochimie 78:856-861, 1996. |
Fisher et al., “Transduction with Recombinant Adeno-Associated Virus for Gene Therapy Is Limited by Leading-Strand Synthesis,” Journal of Virology 70(1): 520-532, 1996. |
Georges et al., “Synthesis of human insulin gene VII. Synthesis of preproinsulin-like human DNA, its cloning and expression in M13 bacteriophage,” Gene 27:201-211, 1984. |
Greenstein et al., “Vectors derived from filamentous phages,” in Ausubel et al. (eds), In Current Protocols in Molecular Biology, John Wiley & Sons, New York, 1993, pp. 1.14.1-1.14.5. |
Hart et al., “Cell Binding and Internalization by Filamentous Phage Displaying a Cyclic Arg-Gly-Asp-containing Peptide,” Journal of Biological Chemistry 269:12468-12474, 1994. |
Hogrefe et al., “Cloning in a bacteriophage lambda vector for the display of binding proteins on filamentous phage,” Gene 137:85-91, 1993. |
Hoogenboom et al., “Multi-subunit proteins on the surface of filamentous phage: methodologies for displaying antibody (Fab) heavy and light chains,” Nucleic Acids Research 19(15):4133-4137, 1991. |
Ishiura et al., “Phage Particle-Mediated Gene Transfer to Cultured Mammalian Cells,” Molecular and Cellular Biology 2(6):607-616, 1982. |
Jespers et al., “Surface Expression and Ligand-Based Selection of cDNAs Fused to Filamentous Phage Gene VI,” Bio/Technology 13:378-382, 1995. |
Maruyama et al., “λfoo: A λ phage vector for the expression of foreign proteins,” Proc. Natl. Acad. Sci. USA 91:8273-8277, 1994. |
Okayama and Berg, “Bacteriophage Lambda Vector for Transducing a cDNA Clone into Mammalian Cells,” Molecular and Cellular Biology 5(5):1136-1142, 1985. |
Orkin et al., “Report and recommendations of the panel to assess the NIH investment in research on gene therapy,” pp. 1-41, 1995. Retrieved from the Internet:www.nih.gov/news/panelrep.html. |
Pasqualini and Ruoslahti, “Organ targeting in vivo using phage display peptide libraries,” Nature 380:364-366, 1996. |
Pasqualini et al., “αν Integrins as receptors for tumor targeting by circulating ligands,” Nature Biotechnology 15:542-546, 1997. |
Rubenstein et al., “Subtractive hybridization system using single-stranded phagemids with directional inserts,” Nucleic Acids Research 18(16):4833-4842. 1990. |
Russell, S. J., “Peptide-displaying phages for targeted gene delivery?,” Nature Medicine 2(3):276-277, 1996. |
Söderlind et al., “Phage Display Technology in Antibody Engineering: Design of Phagemid Vectors an in vitro Maturation Systems,” Immunological Reviews 130:109-124, 1992. |
Voiculescu, “Aspecte ale interrelatiilor bacteriofagi-celule cucariote,” Bacteriologia, Virusologia, Parazitologia, Epidemiologia XXII(3): 141-148, 1977 (+ English Translation). |
Wu et al., “Development of a Novel Drug-Delivery System Using Bacteriophage MS2 Capsids,” Biochemical Society Transactions 24:413S, 1996. |
Yokoyama-Kobayashi and Kato, “Recombinant f1 Phage Particles Can Transfect Monkey COS-7 Cells by DEAE Dextran Method,” Biochemical and Biophysical Research Communications 192(2):935-939, 1993. |
Yokoyama-Kobayashi and Kato, “Recombinant f1 Phage-Mediated Transfection of Mammalian Cells Using Lipopolyamine Technique,” Analytical Biochemistry 223:130-134, 1994. |