Dynamic light scattering for gold nanorod size characterization and study of nanorod–protein interactions

Springer Science and Business Media LLC - Tập 45 Số 4 - Trang 187-195 - 2012
Helin Liu1, Nickisha Pierre-Pierre1, Qun Huo1
1NanoScience Technology Center, Department of Chemistry and Burnett School of Biomedical Science, University of Central Florida, Orlando, FL, 32826, USA

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Tài liệu tham khảo

Jans H, Huo Q (2012) Gold nanoparticle-enabled biological and chemical detection and analysis. Chem Soc Rev 41:2849–2866

Dykman L, Khlebtsov N (2012) Gold nanoparticles in biomedical applications: recent advances and perspectives. Chem Soc Rev 41:2256–2282

Dreaden EC, Alkilany AK, Huang X, Murphy CJ, El-Sayed MA (2012) The golden age: gold nanoparticles for biomedicine. Chem Soc Rev 41:2740–2779

Boisselier E, Astruc D (2009) Gold nanoparticles in nanomedicine: preparations, imaging, diagnostics, therapies and toxicity. Chem Soc Rev 38:1759–1782

Newhouse RJ, Zhang JZ (2012) Optical properties and applications of shape-controlled metal nanostructures. Rev Plasmonics 2010:205–238

Chen J, Saeki F, Wiley BJ, Cang H, Cobb MJ, Li Z-Y, Au L, Zhang H, Kimmey MB, Li X, Xia Y (2005) Gold nanocages: bioconjugation and their potential use as optical imaging contrast agents. Nano Lett 5(3):473–477

Hu M, Chen J, Li Z, Au L, Hartland GV, Li X, Marquez M, Xia Y (2006) Gold nanostructures: engineering their plasmonic properties for biomedical applications. Chem Soc Rev 35:1084–1094

Sun Y, Xia Y (2003) Gold and silver nanoparticles: a class of chromophores with colors tunable in the range from 400 to 750 nm. Analyst 128:686–691

Halas NJ, Lal S, Chang W, Link S, Nordlander P (2011) Plasmons in strongly coupled nanostructures. Chem Rev 111:3913–3963

Wang H, Brandl D, Nordlander P, Halas NJ (2006) Plamonic nanostructures: artificial molecules. Acc Chem Res 40:53–62

Jain PK, Lee KS, El-Sayed IH, El-Sayed MA (2006) Calculated absorption and scattering properties of gold nanoparticles of different size, shape, and composition: applications in biological imaging and biomedicine. J Phys Chem B 110:7238–7248

Nehl CL, Liao H, Hafner JH (2006) Optical properties of star-shaped gold nanoparticles. Nano Lett 6:683–688

Link S, Mohamed MB, El-Sayed MA (1999) Simulation of the optical absorption spectra of gold nanorods as a function of their aspect ratio and the effect of the medium dielectric constant. J Phys Chem B 103:3073–3077

Mout R, Moyano DF, Rana S, Rotello VM (2012) Surface functionalization of nanoparticles for nanomedicine. Chem Soc Rev 41:2539–2544

Walkey CD, Chan WCW (2012) Understanding and controlling the interaction of nanomaterials with proteins in a physiological environment. Chem Soc Rev 41:2780–2799

Dobrovolskaia MA, Patri AK, Zheng J, Clogston JD, Ayub N, Aggarwal P, Neun BW (2009) Interaction of colloidal gold nanoparticles with human blood: effects on particle size and analysis of plasma protein binding profiles. Nanomedicine (Nanotechnol Biol Med) 5:106–117

Lacerda SHDP, Park JJ, Meuse C, Pristinski D, Becker ML, Karim A, Douglas JF (2010) Interaction of gold nanoparticles with common human blood proteins. ACS Nano 4:365–379

Huo Q, Colon J, Codero A, Bogdanovic J, Baker CH, Goodison S, Pensky MY (2011) A facile nanoparticle immunoassay for cancer biomarker discovery. J Nanobiotechnol 9:20, open access

Huo Q, Litherland SA, Sullivan S, Hallquist H, Decker DA, Rivera-Ramirez I (2012) Developing a nanoparticle test for prostate cancer scoring. J Transl Med 10:44, open access

Arvizo RR, Giri K, Moyano D, Miranda OR, Madden B, McCormick DJ, Bhattacharya R, Rotello VM, Kocher JP, Mukherjee P (2012) Identifying new therapeutic targets via modulation of protein corona formation by engineered nanoparticles. PLoS One 7:e33650, open access

Pan B, Cui D, Xu P, Li Q, Huang T, He R, Gao F (2007) Study on interaction between gold nanorod and bovine serum albumin. Colloids Surf A 295:217–222

Shang L, Wang Y, Jiang J, Dong S (2007) pH-dependent protein conformational changes in albumin:gold nanoparticle bioconjugates: a spectroscopic study. Langmuir 23:2714–2721

Iosin M, Toderas F, Baldeck PL, Astilean S (2009) Study of protein-gold nanoparticle conjugates by fluorescence and surface-enhanced Raman scattering. J Mol Struct 924–926:196–200

Matveeva EG, Shtoyko T, Gryczynski I, Zkopova I, Gryczynski Z (2009) Fluorescence quenching/ enhancement surface assays: signal manipulation using silver-coated gold nanoparticles. Chem Phys Let 454:85–90

Fischer NO, McIntosh CM, Simard JM, Rotello VM (2002) Inhibition of chymotrypsin through surface binding using nanoparticle-based receptor. Proc Natl Acad Sci 99:5018–5023

Hong R, Fischer NO, Verma A, Goodman CM, Emrick T, Rotello VM (2004) Control of protein structure and function through surface recognition by tailored nanoparticle scaffolds. J Am Chem Soc 126:739–743

Calzolai L, Franchini F, Gilliland D, Rossi F (2010) Protein–nanoparticle interaction: identification of the ubiquitin–gold nanoparticle interaction site. Nano Lett 10:3101–3105

Jans H, Liu X, Austin L, Maes G, Huo Q (2009) Dynamic light scattering as a powerful tool for gold nanoparticle bioconjugation and biomolecular binding study. Anal Chem 81:9425–9432

Austin L, Liu X, Huo Q (2010) An immunoassay for monoclonal antibody isotyping and quality analysis using gold nanoparticles and dynamic light scattering. Am Biotechnol Lab 28(8):10–12

Khlebtsov NG, Bogatyrev VA, Khlebtsov BN, Dykman LA, Englebienne P (2003) A multilayer model for gold nanoparticle bioconjugates: application to study of gelatin and human IgG adsorption using extinction and light scattering spectra and the dynamic light scattering method. Colloid J 65:679–693

Tsai DH, Delrio FW, Keene AM, Tyner KM, MacCuspie RI, Cho TJ, Zachariah MR, Hackley VA (2011) Adsorption and conformation of serum albumin protein on gold nanoparticles investigated using dimensional measurements and in situ spectroscopic methods. Langmuir 27:2464–2477

Liu X, Dai Q, Austin L, Coutts J, Knowles G, Zou J, Chen H, Huo Q (2008) A one-step homogeneous immunoassay for cancer biomarker detection using gold nanoparticle probes coupled with dynamic light scattering. J Am Chem Soc 130:2780–2782

Dai Q, Liu X, Coutts J, Austin L, Huo Q (2008) A one-step highly sensitive method for DNA detection using dynamic light scattering. J Am Chem Soc 130:8138–8139

Kalluri JR, Arbneshi T, Khan SA, Nelly A, Candice P, Varisli B, Washington M, McAfee S, Robinson B, Banerjee S, Singh AK, Senapati D, Ray PC (2009) Use of gold nanoparticles in a simple colorimetric and ultrasensitive dynamic light scattering assay: selective detection of arsenic in groundwater. Angew Chem Int Ed 48:9668–9671

Gao D, Sheng Z, Han H (2011) An ultrasensitive method for the detection of gene fragment from transgenics using label-free gold nanoparticle probe and dynamic light scattering. Anal Chim Acta 696:1–5

Driskell JD, Jones CA, Tompkins SM, Tripp RA (2011) One-step assay for detecting influenza virus using dynamic light scattering and gold nanoparticles. Analyst 136:3083–3090

Wang X, Ramström O, Yan M (2011) Dynamic light scattering as an efficient tool to study glyconanoparticle-lectin interactions. Analyst 136:4174–4178

Wang L, Zhu Y, Xu L, Chen W, Kuang H, Liu L, Agarwal A, Xu C, Kotov NA (2010) Side-by-side and end-to-end gold nanorod assemblies for environmental toxin sensing. Angew Chem Int Ed 49:5472–5475

Pecora R (1968) Spectrum of light scattered from optically anisotropic macromolecules. J Chem Phys 49:1036–1043

Zero K, Pecora R (1985) Dynamic depolarized light scattering. In: Pecora R (ed) Dynamic light scattering applications of photon correlation spectroscopy. Plenum, New York, pp 83–99

Van der Zande BMI, Dhont JKG, Bohmer MR, Philipse AP (2000) Collidal dispersions of gold rods characterized by dynamic light scattering and electrophoresis. Langmuir 16:459–464

Lehner D, Lindner H, Glatter O (2000) Determination of the translational and rotational diffusion coefficients of rodlike particles using depolarized dynamic light scattering. Langmuir 16:1689–1695

Berne BJ, Pecora R (1976) Dynamic light scattering: with applications to chemistry, biology, and physics. Wiley, New York

A Technical Note from Malvern Instruments: http://www.malvern.com/common/downloads/campaign/MRK656-01.pdf

Rodrígues-Fernández J, Pérez-Juste J, Liz-Marzán LM, Lang PR (2007) Dynamic light scattering of short Au rods with low aspect ratios. J Phys Chem C 111:5020–5025

Khlebtsov BN, Khlebtsov NG (2011) On the measurement of gold nanoparticle sizes by the dynamic light scattering method. Colloid J 73:118–127

Wang C, Chen Y, Wang T, Ma Z, Su Z (2007) Biorecognition-driven self-assembly of gold nanorods: a rapid and sensitive approach toward antibody sensing. Chem Mater 19:5809–5811

Tong L, Wei Q, Wei A, Cheng J (2009) Gold nanorods as contrast agents for biological imaging: optical properties, surface conjugation and photothermal effects. Photochem Photobiol 85:21–32

Pissuwan D, Valenzuela SM, Killingsworth MC, Xu X, Cortie MB (2007) Targeted destruction of murine macrophase cells with bioconjugated gold nanorods. J Nanoparticle Res 9:1109–1124

Pissuwan D, Valenzuela SM, Miller CM, Cortie MB (2007) A golden bullet? Selective targeting of Toxoplasma gondii tachyzoites using antibody-functionalized gold nanorods. Nano Lett 7:3808–3812

Yu C, Irudayaraj J (2007) Multiplex biosensor using gold nanorods. Anal Chem 79:572–579