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Preparation of Gold Nanoparticle–DNA Conjugates

dc.contributor.authorTaton, T. Andrew
dc.date.accessioned2018-05-15T20:13:39Z
dc.date.available2018-05-15T20:13:39Z
dc.date.issued2002-06
dc.identifier.citationTaton, T. Andrew (2002). "Preparation of Gold Nanoparticle–DNA Conjugates." Current Protocols in Nucleic Acid Chemistry 9(1): 12.2.1-12.2.12.
dc.identifier.issn1934-9270
dc.identifier.issn1934-9289
dc.identifier.urihttps://hdl.handle.net/2027.42/143655
dc.description.abstractThis unit describes the preparation of conjugates between nanometer‐scale gold particles and synthetic oligonucleotides. Oligonucleotide‐functionalized gold nanoparticles are finding increased use in both the construction of complex, tailored nanostructures and the optimization of DNA sequence analysis. The protocols in this unit outline the synthesis, purification, and characterization of nanoparticle‐DNA conjugates for applications in nanotechnology and biotechnology. Separate procedures are presented for nanoparticles functionalized with just one or a few oligonucleotide strands and for nanoparticles functionalized with a dense layer of oligonucleotide strands. The different physical and chemical properties of these two types of conjugates are discussed, as are their stability and utility in different environments.
dc.publisherWiley Periodicals, Inc.
dc.titlePreparation of Gold Nanoparticle–DNA Conjugates
dc.typeArticleen_US
dc.rights.robotsIndexNoFollow
dc.subject.hlbsecondlevelChemistry
dc.subject.hlbsecondlevelPublic Health
dc.subject.hlbsecondlevelBiological Chemistry
dc.subject.hlbsecondlevelChemical Engineering
dc.subject.hlbtoplevelHealth Sciences
dc.subject.hlbtoplevelScience
dc.subject.hlbtoplevelEngineering
dc.description.peerreviewedPeer Reviewed
dc.description.bitstreamurlhttps://deepblue.lib.umich.edu/bitstream/2027.42/143655/1/cpnc1202.pdf
dc.identifier.doi10.1002/0471142700.nc1202s09
dc.identifier.sourceCurrent Protocols in Nucleic Acid Chemistry
dc.identifier.citedreferenceAlivisatos, A.P., Johnsson, K.P., Peng, X., Wilson, T.E., Loweth, C.J., Bruchez, M.P. Jr.,, and Schultz, P.G. 1996. Organization of ‘nanocrystal molecules’ using DNA. Nature 382: 609 ‐ 611.
dc.identifier.citedreferenceBreslauer, K.J., Frank, R., Bloecker, H., and Marky, L.A. 1986. Predicting DNA duplex stability from the base sequence. Proc. Natl. Acad. Sci. U.S.A. 83: 3746 ‐ 3750.
dc.identifier.citedreferenceBrown, K.R., Walter, D.G., and Natan, M.J. 2000. Seeding of colloidal Au nanoparticle solutions. 2. Improved control of particle size and shape. Chem. Mater. 12: 306 ‐ 313.
dc.identifier.citedreferenceDemers, L.M., Mirkin, C.A., Mucic, R.C., Reynolds, R.A.III., Letsinger, R.L., Elghanian, R., and Viswanadham, G. 2000. A fluorescence‐based method for determining the surface coverage and hybridization efficiency of thiol‐capped oligonucleotides bound to gold thin films and nanoparticles. Anal. Chem. 72: 5535 ‐ 5541.
dc.identifier.citedreferenceElghanian, R., Storhoff, J.J., Mucic, R.C., Letsinger, R.L., and Mirkin, C.A. 1997. Selective colorimetric detection of polynucleotides based on the distance‐dependent optical properties of gold nanoparticles. Science 277: 1078 ‐ 1081.
dc.identifier.citedreferenceFrens, G. 1973. Controlled nucleation for the regulation of the particle size in monodisperse gold suspensions. Nature Phys. Sci. 241: 20 ‐ 22.
dc.identifier.citedreferenceGersten, J. and Nitzan, A. 1981. Spectroscopic properties of molecules interacting with small dielectric particles. J. Chem. Phys. 75: 1139 ‐ 1152.
dc.identifier.citedreferenceGrabar, K.C., Freeman, R.G., Hommer, M.B., and Natan, M.J. 1995. Preparation and characterization of Au colloid monolayers. Anal. Chem. 67: 735 ‐ 743.
dc.identifier.citedreferenceJana, N.R., Gearheart, L., and Murphy, C.J. 2001. Seeding growth for size control of 5‐40 nm diameter gold nanoparticles. Langmuir 17: 6782 ‐ 6786.
dc.identifier.citedreferenceLevicky, R., Herne, T.M., Tarlov, M.J., and Satija, S.K. 1998. Using self‐assembly to control the structure of DNA monolayers on gold: A neutron reflectivity study. J. Am. Chem. Soc. 120: 9787 ‐ 9792.
dc.identifier.citedreferenceLoweth, C.J., Caldwell, W.B., Peng, X., Alivisatos, A.P., and Schultz, P.G. 1999. DNA‐based assembly of gold nanocrystals. Angew. Chem. Int. Ed. Engl. 38: 1808 ‐ 1812.
dc.identifier.citedreferenceMirkin, C.A., Letsinger, R.L., Mucic, R.C., and Storhoff, J.J. 1996. A DNA‐based method for rationally assembling nanoparticles into macroscopic materials. Nature 382: 607 ‐ 609.
dc.identifier.citedreferenceStorhoff, J.J., Elghanian, R., Mucic, R.C., Mirkin, C.A., and Letsinger, R.L. 1998. One‐pot colorimetric differentiation of polynucleotides with single base imperfections using gold nanoparticle probes. J. Am. Chem. Soc. 120: 1959 ‐ 1964.
dc.identifier.citedreferenceSugimoto, N., Nakano, S., Yoneyama, M., and Honda, K. 1996. Improved thermodynamic parameters and helix initiation factor to predict stability of DNA duplexes. Nucl. Acids Res. 24: 4501 ‐ 4505.
dc.identifier.citedreferenceTaton, T.A., Mirkin, C.A., and Letsinger, R.L. 2000. Scanometric DNA detection with nanoparticle probes. Science 289: 1757 ‐ 1760.
dc.identifier.citedreferenceTaton, T.A., Lu, G., and Mirkin, C.A. 2001. Two‐color labeling of oligonucleotide arrays via size‐selective scattering of nanoparticle probes. J. Am. Chem. Soc. 123: 5164 ‐ 5165.
dc.identifier.citedreferenceYguerabide, J. and Yguerabide, E.E. 1998. Light‐scattering submicroscopic particles as highly fluorescent analogs and their use as tracer labels in clinical and biological applications. Anal.Biochem. 262: 137 ‐ 156.
dc.identifier.citedreferenceZanchet, D., Micheel, C.M., Parak, W.J., Gerion, D., and Alivisatos, A.P. 2001. Electrophoretic isolation of discrete Au nanocrystal/DNA conjugates. Nano Lett. 1: 32 ‐ 35.
dc.identifier.citedreferencewww.basic.nwu.edu/biotools/oligocalc.html
dc.owningcollnameInterdisciplinary and Peer-Reviewed


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