Enhanced immunostimulatory properties in CpG-oligonucleotides modified by gold nanoparticles

Yin Zhou , Tian Chen , Ling Zhang , Yuanyuan Li , Hongling Zhang

Journal of Wuhan University of Technology Materials Science Edition ›› 2011, Vol. 26 ›› Issue (5) : 832 -836.

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Journal of Wuhan University of Technology Materials Science Edition ›› 2011, Vol. 26 ›› Issue (5) : 832 -836. DOI: 10.1007/s11595-011-0320-3
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Enhanced immunostimulatory properties in CpG-oligonucleotides modified by gold nanoparticles

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Abstract

Whether the immunostimulatory effects of CpG-oligonucleotides (CpG ODNs) could be enhanced by the use of gold nanoparticles (Au-NP) was investigated. The CpG ODNs were modified by the Au-NP (CpG / Au-NP) and their uptake and distribution in murine N9 microglial cells were studied. The immunostimulatory effects of CpG / Au-NP on N9 cells, human B cells and plamacytoid dendritic cells (pDCs) were examined. Results showed that the uptake of CpG / Au-NP in N9 cells was much higher than that of CpG ODNs and CpG / Au-NP localized in the cytoplasm of N9 cells. The amount of TNF-α and IL12p40 in N9 cells was increased greatly by the use of Au-NP. And the amount of IL-6 in B cells and IFN-α in pDCs was also significantly increased, while the activation of B cells was not changed. These results reveal that the Au-NP can be used as a delivery media for the oligonucleotides-based therapeutics.

Keywords

Au nanoparticles modified / CpG-oligonucleotides / delivery media / immunostimulatory properties

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Yin Zhou, Tian Chen, Ling Zhang, Yuanyuan Li, Hongling Zhang. Enhanced immunostimulatory properties in CpG-oligonucleotides modified by gold nanoparticles. Journal of Wuhan University of Technology Materials Science Edition, 2011, 26(5): 832-836 DOI:10.1007/s11595-011-0320-3

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References

[1]

Wassef N. W., Alving C. R., Richards R. L. Liposomes as Carriers for Vaccines [J]. Immunomethods, 1994, 4(3): 217-222.

[2]

Petrovsky N., Aguilar J. C. Vaccine Adjuvants: Current State and Future Trends [J]. Immunol. Cell Biol., 2004, 82(5): 488-496.

[3]

Hemmi H. A Toll-like Receptor Recognizes Bacterial DNA[J]. Nature, 2000, 408(6813): 740-745.

[4]

Krieg A. M. CpG Motifs in Bacterial DNA and Their Immune Effects [J]. Annu. Rev. Immunol., 2002, 20: 709-760.

[5]

Roman M. Immunostimulatory DNA Sequences Function as Helper-1-promoting Adjuvants [J]. Nat. Med., 1997, 3(8): 849-854.

[6]

Stacey K. J., Sweet M. J., Hume D. A. Macrophages Ingest and are Activated by Bacterial DNA [J]. J. Immunol., 1996, 157(5): 2 116-2 122.

[7]

Sun S. Type I Interferon-mediated Stimulation of T Cells by CpG DNA [J]. J. Exp. Med., 1998, 188(12): 2 335-2 342.

[8]

Chace J. H. Bacterial DNA-induced NK Cell IFN-gamma Production is Dependent on Macrophage Secretion of IL-12 [J]. Clin. Immunol. Immunopathol., 1997, 84(2): 185-193.

[9]

Halpern M. D., Kurlander R. J., Pisetsky D. S. Bacterial DNA Induces Murine Interferon-gamma Production by Stimulation of Interleukin-12 and Tumor Necrosis Factor-alpha [J]. Cell Immunol., 1996, 167(1): 72-78.

[10]

Krieg A. M. Therapeutic Potential of Toll-like Receptor 9 Activation [J]. Nat. Rev. Drug Discov., 2006, 5(6): 471-484.

[11]

Hartmann G. CpG Oligonucleotides Induce Strong Humoral but only Weak CD4+ T Cell Responses to Protein Antigens in Rhesus Macaques in vivo [J]. Vaccine, 2005, 23(25): 3 310-3 317.

[12]

Asadishad B. M., Vossoughi Alemzadeh I. Folate-Receptor-Targeted Delivery of Doxorubicin Using Polyethylene Glycol-Functionalized Gold Nanoparticles [J]. Industrial & Engineering Chemistry Research, 2010, 49(4): 1 958-1 963.

[13]

Bendayan M. Worth Its Weight in Gold [J]. Science, 2001, 291(5507): 1 363-1 365.

[14]

Daniel M. C., Astruc D. Gold Nanoparticles: Assembly, Supramolecular Chemistry, Quantum-size-related Properties and Applications toward Biology, Catalysis, and Nanotechnology [J]. Chem. Rev., 2004, 104(1): 293-346.

[15]

Giljohann D. A. Oligonucleotide Loading Determines Cellular Uptake of DNA-modified Gold Nanoparticles [J]. Nano. Lett., 2007, 7(12): 3 818-3 821.

[16]

Jen C. P. A Nonviral Transfection Approach in vitro: The Design of a Gold Nanoparticle Vector Joint with Microelectromechanical Systems [J]. Langmuir, 2004, 20(4): 1 369-1 374.

[17]

Sullivan M. M. O., Green J. J., Przybycien T. M. Development of a Novel Gene Delivery Scaffold Utilizing Colloidal Gold-polyethylenimine Conjugates for DNA Condensation [J]. Gene. Ther., 2003, 10(22): 1 882-1 890.

[18]

Rosi N. L. Oligonucleotide-modified Gold Nanoparticles for Intracellular Gene Regulation [J]. Science, 2006, 312(5776): 1 027-1 030.

[19]

Sundaram P., Xiao W., Brandsma J. L. Particle-mediated Delivery of Recombinant Expression Vectors to Rabbit Skin Induces High-titered Polyclonal Antisera (and Circumvents Purification of a Protein Immunogen) [J]. Nucleic Acids Res., 1996, 24(7): 1 375-1 377.

[20]

Thomas M., Klibanov A. M. Conjugation to Gold Nanoparticles Enhances Polyethylenimine’s Transfer of Plasmid DNA into Mammalian Cells [J]. Proc. Natl. Acad. Sci. U S A, 2003, 100(16): 9 138-9 143.

[21]

Mirkin C. A. A DNA-based Method for Rrationally Assembling Nanoparticles into Macroscopic Materials [J]. Nature, 1996, 382(6592): 607-609.

[22]

Zhang Z. L. Electrochemical DNA Sensing Based on Gold Nanoparticle Amplification [J]. Anal. Bioanal. Chem., 2005, 381(4): 833-838.

[23]

Seferos D. S. Locked Nucleic Acid-nanoparticle Conjugates[J]. Chembiochem, 2007, 8(11): 1 230-1 232.

[24]

Hartmann G., Weiner G. J., Krieg A. M. CpG DNA: a Potent Signal for Growth, Activation and Maturation of Human Dendritic Cells[J]. Proc. Natl. Acad. Sci. U S A, 1999, 96(16): 9 305-9 310.

[25]

Creighton J. A., Eadon D. G. Ultraviolet-visible Absorption Spectra of the Colloidal Metallic Elements[J]. Journal of the Chemical Society, Faraday Transactions, 1991, 87(24): 3 881-3 891.

[26]

Latz E. TLR9 Signals after Translocating from the ER to CpG DNA in the Lysosome[J]. Nat. Immunol., 2004, 5(2): 190-198.

[27]

Krieg A. M. CpG Motifs in Bacterial DNA Trigger Direct B-cell Activation[J]. Nature, 1995, 374(6522): 546-549.

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