Stein et al. Science 261:1004-1012, Aug. 20, 1993.* |
Solomons, Organic Chemistry, p. 818-819, pub. by John Wiley & Sons, 1980.* |
Englisch, et al., “Chemically Modified Oligonucleotides as Probes and Inhibitors” Angew. Chem. Ed. Eng. 1991, 30, 613. |
Manoharan, et al., “Novel Functionalization of the Sugar Moiety of Nucleic Acids for Multiple Labeling in the Minor Grove” Tetrahedron Letters 1991, 32, 7171. |
Goodchild, “Conjugates of Oligonucleotides and Modified Oligonucleotides: A Reviw of Their Synthesis and Properties” Bioconjugate Chemistry 1990, 1, 165. |
Monoharan, et al., “Chemical Modifications to Improve Uptake and Bioavailability of Antisense Oligonculeotides” Database Embase Elsevier Science Publishers 1992 660, 306 (abstract). |
Asseline et al., “Nucleic acid-binding molecules with high affinity and base sequence specificity: Intercalating agents covalently linked to oligodeoxynucleotides,” Proc. Natl. Acad. Sci. USA 81:3297-3301, 1984. |
Beaucage et al., “Advances in the Synthesis of Oligonucleotides by the Phosphoramidite Approach,” Tetrahedron 48:2223-2311, 1992. |
Betebenner et al., “Hepatobiliary Delivery of Polyaminopolycarboxylate Chelates: Synthesis and Characterization of a Cholic Acid Conjugate of EDTA and Biodistribution and Imaging Studies with Its Indium-111 Chelate,” Bioconjugate Chem., 2:117-123, 1991. |
Chollet, A. “Selective Attachment of Oligonucleotides to Interleukin-1 beta and Targeted Delivery to Cells,” Nucleosides & Nucleotides, 9:957-966, 1990. |
Corey et al., “Generation of a Hybrid Sequence-Specific Single-Stranded Deoxyribonuclease,” Science, 238:1401-1403, 1987. |
Corey et al., “Sequence-Selective Hydrolysis of Duplex DNA by an Oligonucleotide-Directed Nuclease,” J. Am. Chem. Soc., 111:8523-8525, 1989. |
Damha et. al., “An improved procedure for derivatization of controlled-pore glass beads for solid-phase oligonucleotide synthesis,” Nucl. Acids Res. 18:3813-3821, 1990. |
Delgardo et al., “The Uses and Properties of PEG-Linked Proteins,” Critical Reviews in Therapeutic Drug Carrier Systems, 9:249-304, 1992. |
Dreyer et al., Sequence-specific cleavage of single-stranded DNA: oligodoexynucleotide-EDTA.Fe (II), Proc. Natl. Acad. Sci. USA, 82:968-972, 1985. |
Guerra et al., “Synthetic 6-Glucosyl Phospholipid as a Drug Transport System,” Tetrahedron Letters, 28:3581-3584, 1987. |
Haralambidis et al., “Preparation of base-modified nucleosides suitable for non-redioactive label attachment and their incorporation into synthetic oligodeoxyribonucleotides,” Nucleic Acid Research, 15: 4857-4877, 1987. |
Haralambidis et al., “The Solid Phase Synthesis of Oligonucleotides Containing a 3′-Peptide Moiety,” Tetrahedron Letters, 28:5199-5202, 1987. |
Iyer et al., “3H-1,2-Benzodithiole-3-one 1,1-Dioxide as an Improved Sulfurizing Reagent in the Solid-Phase Synthesis of Oligodeoxyribonucleoside Phosphorothioates,” J. Am. Chem. Soc., 112:1253-1254, 1990. |
Juby et al., “Facile Preparation of 3′Oligonucleotide-Peptide Conjugates,” Tetrahedron Letters, 32: 879-882, 1991. |
Krieg et al., “Uptake of Oligodeoxyribonucleotides by Lymphoid Cells Is Heterogeneous and Inducible,” Antisense Research and Development, 1:161-171, 1991. |
Lemaitre et al., “Specific antiviral activity of a poly(L-lysine)-conjugated oligodeoxyribonucleotide sequence complementary to vesicular stomatitis virus N protein mRNA initiation site,” Proc. Natl. Acad. Sci. USA, 84:648-652, 1987. |
Leonetti et al., “Biological Activity of Oligonucleotide-Poly(L-lysine) Conjugates: Mechanism of Cell Uptake,” Bioconjugate Chem., 1:149-153, 1990. |
Letsinger et al., “Cholesteryl-conjugated oligonucleotides: Synthesis, properties, and activity as inhibitors of replication of human immunodeficiency virus in cell culture,” Proc. Natl. Acad. Sci. USA, 86:6553-6556, 1989. |
Miller et al., “A New Approach to chemotherapy based on molecular biology and nucleic acid chemistry: Matagen (masking tape for gen expression),” Anti-Cancer Drug Design, 2:117-128, 1987. |
Nelson et al., “Bifunctional oligonucleotide probes synthesized using a novel CPG support are able to detect single base pair mutants,” Nuc. Acids Res., 17:7187-7194, 1989. |
Ouchi et al., “Synthesis and Antitumor Activity of Poly(Ethylene Glycol)s Linked to 5-Fluorouracil Via a Urethane of Urea Bond,” Drug Design and Discovery, 9:93-105, 1992. |
Ramirez et al., “Nucleotidophospholipids: Oligonucleotide Derivatives with membrane-Recognition Groups,” J. Am. Chem. Soc., 104:5483-5486, 1982. |
Ravasio et al., “Selective Hydrogenations Promoted by Copper Catalysts. 1. Chemoselectivity, Regioselectivity, and Stereoselectivity in the Hydrogenation of 3-Substituted Steroids,” J. Org. Chem., 56:4329-4333, 1991. |
Shea et al., “Synthesis, hybridization properties and antiviral activity of lipid-oligodeoxynucleotide conjugates,” Nuc. Acids Res., 18:3777-3783, 1990. |
Smith-Jones et. al., “Antibody Labeling with Copper-67 Using the Bifunctional Marcrocycle 4-[(1,4,8,11-Tetraazacyclotetradec-1-yl)methyl]benzoic Acid,” Bioconjugate Chem., 2:415-421, 1991. |
Telser et al., “Synthesis and Characterization of DNA Oligomers and Duplexes Containing Covalently Attached Molecular Labels: Comparison of Biotin, Fluorescein, and Pyrene Labels by Thermodynamic and Optical Spectroscopic Measurements,” J. Am. Chem. Soc., 111:6966-6976, 1989. |
Veber et al., “Isonicotinyloxycarbonyl, a Novel Amino Protecting Group for Peptide Synthesis,” J. Org. Chem. 42:3286-3288, 1977. |
Wagner et. al., “Preparation and Synthetic Utility of Some Organotin Derivatives of Nucleosides,” J. Org. Chem., 39:24-30, 1974. |
Yamana et al., “Synthesis of Oligonucleotide Derivatives with Pyrene Group at Sugar Fragment,” Tetrahedron Lett., 32: 6347-6350, 1991. |
Yamana et al., “Synthesis and Interactive Properties of an Oligonucleotide with Anthraquinone at the Sugar Fragment,” Bioconjugate Chem., 1:319-324, 1990. |
Zuckermann et al., “Site-Selective Cleavage of RNA by a Hybrid Enzyme,” J. Am. Chem. Soc., 110:1614-1615, 1988. |