Letsinger, R., et al., “Chemistry of Oligonucleotide-Gold Nanoparticle Conjugates,” Phosphorus, Sulfur and Silicon, vol. 144, p. 359-362 (1999). |
Letsinger, R., et al., “Use of a Steroid Cyclic Disulfide Anchor in Constructing Gold Nanoparticle—Oligonucleotide Conjugates,” Bioconjugate Chem, p. 289-291 (2000). |
Li Z., et al., “Multiple thiol-anchor capped DNA-gold nanoparticle conjugates,” Nucleic Acids Research, vol. 30, p. 1558-1562 (2002). |
Nuzzo R., et al., “Spontaneously Organized Molecular Assemblies. 3. Preparation and Properties of Solution Adsorbed Monolayers of Organic Disulfides on Gold Surfaces,” J. Am Chem. Soc., vol. 109, p. 2358-2368 (1987). |
Otsuka, H., et al., “Quantitative and Reversible Lectin-Induced Association of Gold Nonoparticles Modified with O-Lactosyl-O-merc apto-poly(ethyleneglycol),” J. Am Chem. Soc., vol. 123, p. 8226-8230 (2001). |
Wuelfing, P., et al., “Nanometer Gold Clusters Protected by Surface-Bound Monolayers of Thiolated Poly(ethylene glycol) Polymer Electrolyte,” J. Am Chem. Soc., vol. 120, p. 12696-12697 (1998). |
Mohanty J., et al. “Pulsed laser excitation of phosphate stabilized silver nanoparticles,” Proc. Indian Acd. Sci., vol. 112, No. 1, p. 63-72. |
Nicewarner- Peńa S., et al., “Hybridization and Enzymatic Extension of Au Nanoparticle-Bound Oligonucleotides,” J. Am. Chem. Soc., vol. 124, p. 7314-7323 (2002). |
Whitesides G.M., et al., “Soft Lithography in Biology and Biochemistry,” Annu. Rev. Biomed. Eng., p. 335-373 (2001). |
Borman, Chem.Eng. News, Dec. 9, 1996, pp. 42-43 (1996). |
Tomlinson et al., Anal. Biochem, vol. 171, pp. 217-222 (1998). |
Alivisatos et al., “Organization of ‘nanocrystal molecules’ using DNA,” Nature, vol. 382, pp. 609-611 (1996). |
Bain, et al., “Modeling Organic Surfaces with Self-Assembled Monolayers,” Angew. Chem. Int. Ed. Engl., vol. 28, pp. 506-512 (1989). |
Bradley, “The Chemistry of Transition Metal Colloids,” Clusters and Colloids: From Theory to Applications, G. Schmid, Editor, BCH, Weinheim, New York, pp. 459-542 (1994). |
Brust et al., “Novel Gold-Dithiol Nano-Networks with Non-Metallic Electronic Properties,” Adv. Mater., vol. 7, pp. 795-797 (1995). |
Chen et al., “A Specific Quadrilateral Synthesized from DNA Branched Junctions,” J. Am. Chem. Soc., vol. 111, pp. 6402-6407 (1989). |
Chen & Seeman, “Synthesis from DNA of a molecule with the connectivity of a cube,” Nature, vol. 350, pp. 631-633 (1991). |
Chen et al., Crystal Structure of a Four-Stranded Intercalated DNA: d(C4)†‡ Biochem., vol. 33, pp. 13540-13546 (1994). |
Dagani, “Supramolecular Assemblies DNA to organize gold nanoparticles,” Chemical & Engineering News, p. 6-7, Aug. 19, 1996. |
Dubois & Nuzzo, “Synthesis, Structure, and Properties of Model Organic Surfaces,” Annu. Rev. Phys. Chem., vol. 43, pp. 437-464 (1992). |
Elghanian et al., “Selective Colorimetric Detection of Polynucleotides Based on the Distance-Dependent Optical Properties of Gold Nanoparticles,” Science, vol. 277, pp. 1078-1081 (1997). |
Grabar et al., “Preparation and Characterization of Au Colloid Monolayers,” Anal. Chem. vol. 67, pp. 735-743 (1995). |
Hacia et al., “Detection of heterozygous mutations in BRCA1 using high density oligonucleotide arrays and two-colour flourescence analysis,” Nature Genet., vol. 14, pp. 441-447 (1996). |
Jacoby, “Nanoparticles change color on binding to nucleotide target,” Chemical &Engineering News, p. 10, Aug. 25, 1997. |
Letsinger et al., Use of Hydrophobic Substituents in Controlling Self-Assembly of Oligonucleotides, J. Am. Chem. Soc., vol. 115, pp. 7535-7536 (1993). |
Letsinger et al., “Control of Excimer Emission and Photochemistry of Stilbene Units by Oligonucleotide Hybridization,” J. Am. Chem. Soc., vol. 116, pp. 811-812 (1994). |
Marsh et al., “A new DNA nanostructure, the G-wire, imaged by scanning probe microscopy,” Nucleic Acids Res., vol. 23, pp. 696-700 (1995). |
Mirkin, “H-DNA and Related Structures,” Annu. Review Biophys. Biomol. Struct., vol. 23, pp. 541-576 (1994). |
Mirkin et al., “A DNA-based method for rationally assembling nanoparticles into macroscopic materials,” Nature, vol. 382, pp. 607-609 (1996). |
Mirkin et al., “DNA-Induced Assembly of Gold Nanoparticles: A Method for Rationally Organizing Colloidal Particles into Ordered Macroscopic Materials,” Abstract 249, Abstracts of Papers Part 1, 212 ACS National Meeting 0-8412-3402-7, American Chemical Society, Orlando, FL, Aug. 25-29, 1996. |
Mucic et al., “Synthesis and characerizations of DNA with ferrocenyl groups attached to their 5′-termini: electrochemical characterization of a redox-active nucleotide monolayer,” Chem. Commun., pp. 555-557 (1996). |
Mulvaney, “Surface Plasmon Spectroscopy of Nanosized Metal Particles,” Langmuir, vol. 12, pp. 788-800 (1996). |
Rabke-Clemmer et al., “Analysis of Functionalized DNA Adsorption on Au(111) Using Electron Spectroscopy,” Langmuir, vol. 10, pp. 1796-1800 (1994). |
Roubi, “Molecular Machines—Nanodevice with rotating arms assembled from synthetic DNA,” Chemical & Engineering News, p. 13, (Jan. 1999). |
Seeman et al., “Synthetic DNA knots and catenanes,” New J. Chem., vol. 17, pp. 739-755 (1993). |
Shaw & Wang, “Knotting of a DNA Chain During Ring Closure,” Science, vol. 260, pp. 533-536 (1993). |
Shekhtman et al., “Sterostructure of replicative DNA catenanes from eukaryotic cells,” New J. Chem. vol. 17, pp. 757-763 (1993). |
Smith and Feigon, “Quadruplex structure of Oxytricha telomericDNA oligonucleotides,” Nature, vol. 356, pp. 164-168 (1992). |
Thein et al., “The use of synthetic oligonucleotides as specific hybridization probes in the diagnosis of genetic disorders,” 2nd Ed., K.E. Davies, Ed., Oxford University Press, Oxford, New York, Tokyo, p. 21-33 (1993). |
Wang et al., “Assembly and Characterization of Five-Arm and Six-Arm DNA Brached Junctions,” Biochem., vol. 30, pp. 5667-5674 (1991). |
Wang et al., “A DNA Aptamer Which Binds to and Inhibits Thrombin Exhibits a New Structural Motif for DNA,” Biochem., vol. 32. pp. 1899-1904 (1993). |
Weisbecker et al., “Molecular Self-Assembly of Aliphatic Thiols on Gold Colloids,” Langmuir, vol. 12, pp. 3673-3772 (1996). |
Wells, “Unusual DNA Structures,” J. Biol. Chem., vol. 263, pp. 1095-1098 (1988). |
Zhang et al., “Informational Liposomes: Complexes Derived from Cholesteryl-conjugated Oligonucleotides and Liposomes,” Tetrahedron Lett., vol. 37, pp. 6243-6246 (1996). |
Brada, et al., “Golden Blot”—Detection of Polyclonal and Monoclonal Antibodies Bound to Antigens on Nitrocellulose by Protein A-Gold Complexes, Analytical Biochemistry, vol. 42, pp. 79-83 (1984) U.S. |
Dunn, et al., A Novel Method to Map Transcripts: Evidence for homology between an Adenovirus mRNA and Discrete Multiple Regions of the Viral Genome, Cell, vol. 12, pp. 23-36, (1997) U.S. |
Hacker, High performance Nanogold—Silver in situ hybridisation, Eur. J. Histochem, vol. 42, pp. 111-120 (1998) U.S. |
Ranki, et al., “Sandwich hybridization as a convenient method for the detection of nuclelic acids in crude samples,” Gene, vol. 21, pp. 77-85 (1983) U.S. |
Romano, et al., “An antiglobulin reagent labelled with colloidal gold for use in electron microscopy,” Immunochemistry, vol. 11, pp. 521-522 (1974) Great Britain. |
Stimpson, et al., “Real-time detection of DNA hybridization and melting on oligonucleotide arrays by using optical wave guides,” Proc. Natl. Acad. Sci.., vol. 92, pp. 6379-6383, California Institute of Technology (1995) U.S. |
Storhoff, et al., “Strategies for Organizing Nanoparticles into Aggregate Structures and Functional Materials,” Journal of Cluster Science, vol. 8, No. 2, pp. 179-217, Plenum Publishing Corporation (1997) U.S. |
Storhoff, et al., “One-Pot Colorimetric Differentiation of Polynucleotides with Single Base Imperfections Using Gold Nanoparticles Probes,” J. Am. Chem. Soc., vol. 20, pp. 1961-1964, American Chemical Society (1998) U.S. |
Velev, et al., “In Situ Assembly of Colloidal Particles into Miniaturized Biosensors,” Langmuir, vol. 15, No. 11, pp. 3693-3698, American Chemical Society (1999) U.S. |
Zhu, et al., “The First Raman Spectrum of an Organic Monolayers on a High-Temperature Superconductor: Direct Spectroscopic Evidence for a Chemical Interaction between an Amine and Yba2Cu3O7-δ,” J. Am. Chem. Soc., vol. 119, pp. 235-236, American Chemical Society (1997) U.S. |
Yguerabide, et al., “Light-Scattering Submicroscopic Particles as Highly Fluorescent Analogs and Their Use as Tracer Labels in Clinical and Biological Applications,” I. Theory, Analytical Biochemistry, vol. 262, pp. 137-156 (1998) U.S. |
Yguerabide, et al., “Light-Scattering Submicroscopic Particles as Highly Fluorescent Analogs and Their Use as Tracer Labels in Clinical and Biological Applications,” II. Experimental Characterization, Analytical Biochemistry, vol. 262, pp. 157-176 (1998) U.S. |
O.D. Velev, et al., “In Situ Assembly of Collordal Particles into Miniaturized Biosensors,” Langmuir, vol. 15, No. 11, pp. 3693-3698, May 25, 1999. |