The use of self-adjuvanting nanofiber vaccines to elicit high-affinity B cell responses to peptide antigens without inflammation.
暂无分享,去创建一个
Joel H Collier | Roger Sciammas | Huifang Han | J. Collier | A. Chong | R. Sciammas | F. Santiago | D. Topham | Rebecca R Pompano | David J Topham | Tao Sun | Jianjun Chen | R. Pompano | Jianjun Chen | Felix W Santiago | Lea Maillat | Tao Sun | Anita S Chong | Huifang Han | L. Maillat
[1] Scott A. Brown,et al. An unexpected antibody response to an engineered influenza virus modifies CD8+ T cell responses. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[2] S. Broderick,et al. Activation of innate immune responses in a pathogen-mimicking manner by amphiphilic polyanhydride nanoparticle adjuvants. , 2011, Biomaterials.
[3] J. Hubbell,et al. Engineering complement activation on polypropylene sulfide vaccine nanoparticles. , 2011, Biomaterials.
[4] Gupta,et al. Aluminum compounds as vaccine adjuvants. , 1998, Advanced drug delivery reviews.
[5] Jeffrey A Hubbell,et al. Engineering Approaches to Immunotherapy , 2012, Science Translational Medicine.
[6] J. Tschopp,et al. Uptake of particulate vaccine adjuvants by dendritic cells activates the NALP3 inflammasome , 2009, Proceedings of the National Academy of Sciences.
[7] D. Irvine,et al. Robust IgG responses to nanograms of antigen using a biomimetic lipid-coated particle vaccine. , 2012, Journal of controlled release : official journal of the Controlled Release Society.
[8] Mario Cortese,et al. Vaccine adjuvants alum and MF59 induce rapid recruitment of neutrophils and monocytes that participate in antigen transport to draining lymph nodes. , 2011, Vaccine.
[9] R. Rappuoli,et al. Adjuvanticity of the oil-in-water emulsion MF59 is independent of Nlrp3 inflammasome but requires the adaptor protein MyD88 , 2011, Proceedings of the National Academy of Sciences.
[10] Henk C. Hoogsteden,et al. Alum adjuvant boosts adaptive immunity by inducing uric acid and activating inflammatory dendritic cells , 2008, The Journal of experimental medicine.
[11] B. Narasimhan,et al. Design of a Protective Single-Dose Intranasal Nanoparticle-Based Vaccine Platform for Respiratory Infectious Diseases , 2011, PloS one.
[12] B. Narasimhan,et al. Evaluation of Biocompatibility and Administration Site Reactogenicity of Polyanhydride‐Particle‐Based Platform for Vaccine Delivery , 2013, Advanced healthcare materials.
[13] Manmohan J. Singh,et al. The potency of the adjuvant, CpG oligos, is enhanced by encapsulation in PLG microparticles. , 2008, Journal of pharmaceutical sciences.
[14] D. Irvine,et al. Enhancing humoral responses to a malaria antigen with nanoparticle vaccines that expand Tfh cells and promote germinal center induction , 2012, Proceedings of the National Academy of Sciences.
[15] Matthew Tirrell,et al. Self‐Assembled Peptide Amphiphile Micelles Containing a Cytotoxic T‐Cell Epitope Promote a Protective Immune Response In Vivo , 2012, Advanced materials.
[16] A. Tissot,et al. Versatile Virus-Like Particle Carrier for Epitope Based Vaccines , 2010, PloS one.
[17] J. Haensler,et al. Emulsion-based adjuvants for influenza vaccines , 2009, Expert review of vaccines.
[18] Jean Paul Remon,et al. Polymeric multilayer capsule-mediated vaccination induces protective immunity against cancer and viral infection. , 2012, ACS nano.
[19] Manmohan J. Singh,et al. Endotoxin limits in formulations for preclinical research. , 2008, Journal of pharmaceutical sciences.
[20] S. Crotty,et al. Follicular helper CD4 T cells (TFH). , 2011, Annual review of immunology.
[21] Satish Mishra,et al. Self-assembled peptide nanofibers raising durable antibody responses against a malaria epitope. , 2012, Biomaterials.
[22] A. Purcell,et al. The central role played by peptides in the immune response and the design of peptide-based vaccines against infectious diseases and cancer. , 2002, Current drug targets.
[23] Magdalini Moutaftsi,et al. Development and Characterization of Synthetic Glucopyranosyl Lipid Adjuvant System as a Vaccine Adjuvant , 2011, PloS one.
[24] J. Hubbell,et al. Antigen delivery to dendritic cells by poly(propylene sulfide) nanoparticles with disulfide conjugated peptides: Cross-presentation and T cell activation. , 2010, Vaccine.
[25] Jing-Wen Ma,et al. A totally synthetic, self-assembling, adjuvant-free MUC1 glycopeptide vaccine for cancer therapy. , 2012, Journal of the American Chemical Society.
[26] Sai T Reddy,et al. Exploiting lymphatic transport and complement activation in nanoparticle vaccines , 2007, Nature Biotechnology.
[27] F. Sallusto,et al. Toll-like receptors and innate immunity in B-cell activation and antibody responses. , 2007, Current opinion in immunology.
[28] James J Moon,et al. Engineering Nano‐ and Microparticles to Tune Immunity , 2012, Advanced materials.
[29] Harm HogenEsch,et al. Mechanism of Immunopotentiation and Safety of Aluminum Adjuvants , 2013, Front. Immun..
[30] A. Monto,et al. Influenza hemagglutination-inhibition antibody titer as a correlate of vaccine-induced protection. , 2011, The Journal of infectious diseases.
[31] Joel H Collier,et al. Modular self-assembling biomaterials for directing cellular responses. , 2008, Soft matter.
[32] M. Skwarczynski,et al. Peptide-based subunit nanovaccines. , 2011, Current drug delivery.
[33] S. Bertholet,et al. New horizons in adjuvants for vaccine development. , 2009, Trends in immunology.
[34] Ueli Aebi,et al. A Nonadjuvanted Polypeptide Nanoparticle Vaccine Confers Long-Lasting Protection against Rodent Malaria1 , 2009, The Journal of Immunology.
[35] James McCluskey,et al. More than one reason to rethink the use of peptides in vaccine design , 2007, Nature Reviews Drug Discovery.
[36] B. Narasimhan,et al. Polyanhydride microparticles enhance dendritic cell antigen presentation and activation. , 2011, Acta biomaterialia.
[37] Jamal S. Lewis,et al. Microparticle surface modifications targeting dendritic cells for non-activating applications. , 2012, Biomaterials.
[38] N. Goto,et al. Local tissue irritating effects and adjuvant activities of calcium phosphate and aluminium hydroxide with different physical properties. , 1997, Vaccine.
[39] S. Broderick,et al. Rational Design of Pathogen-Mimicking Amphiphilic Materials as Nanoadjuvants , 2011, Scientific reports.
[40] Qin Guo,et al. Protective Antibody and CD8+ T-Cell Responses to the Plasmodium falciparum Circumsporozoite Protein Induced by a Nanoparticle Vaccine , 2012, PloS one.
[41] Y. Goto,et al. Enhanced humoral and Type 1 cellular immune responses with Fluzone adjuvanted with a synthetic TLR4 agonist formulated in an emulsion. , 2009, Vaccine.
[42] M. Plebanski,et al. Short peptide sequences containing MHC class I and/or class II epitopes linked to nano-beads induce strong immunity and inhibition of growth of antigen-specific tumour challenge in mice. , 2004, Vaccine.
[43] Joel H Collier,et al. Modulating adaptive immune responses to peptide self-assemblies. , 2012, ACS nano.
[44] Martin F. Bachmann,et al. The coming of age of virus-like particle vaccines , 2008, Biological chemistry.
[45] G. Kelsoe,et al. Disparate adjuvant properties among three formulations of "alum". , 2012, Vaccine.
[46] Jangwook P. Jung,et al. Co-assembling peptides as defined matrices for endothelial cells. , 2009, Biomaterials.
[47] Martin F. Bachmann,et al. Vaccine delivery: a matter of size, geometry, kinetics and molecular patterns , 2010, Nature Reviews Immunology.
[48] J C Aguilar,et al. Vaccine adjuvants revisited. , 2007, Vaccine.
[49] Lucy A. Perrone,et al. Adjuvant solution for pandemic influenza vaccine production , 2012, Proceedings of the National Academy of Sciences.
[50] Jangwook P. Jung,et al. Modulating the mechanical properties of self-assembled peptide hydrogels via native chemical ligation. , 2008, Biomaterials.
[51] Jangwook P. Jung,et al. Multifactorial optimization of endothelial cell growth using modular synthetic extracellular matrices. , 2011, Integrative biology : quantitative biosciences from nano to macro.
[52] A. Podda,et al. MF59®‐adjuvanted vaccines for seasonal and pandemic influenza prophylaxis , 2008, Influenza and other respiratory viruses.
[53] C. Coban,et al. DNA released from dying host cells mediates aluminum adjuvant activity , 2011, Nature Medicine.
[54] Sai T Reddy,et al. Targeting dendritic cells with biomaterials: developing the next generation of vaccines. , 2006, Trends in immunology.
[55] Jangwook P. Jung,et al. A self-assembling peptide acting as an immune adjuvant , 2009, Proceedings of the National Academy of Sciences.
[56] Philippa Marrack,et al. Alum Induces Innate Immune Responses through Macrophage and Mast Cell Sensors, But These Sensors Are Not Required for Alum to Act As an Adjuvant for Specific Immunity1 , 2009, The Journal of Immunology.