Biomaterials, biological molecules, and polymers in developing vaccines.
暂无分享,去创建一个
Aishik Chakraborty | Shruthi Polla Ravi | Yasmeen Shamiya | Cynthia Elias | Arghya Paul | A. Paul | C. Elias | Yasmeen Shamiya | Shruthi Polla Ravi | A. Chakraborty | A. Paul
[1] N. Sardesai,et al. A Synthetic DNA, Multi-Neoantigen Vaccine Drives Predominately MHC Class I CD8+ T-cell Responses, Impacting Tumor Challenge , 2019, Cancer Immunology Research.
[2] R. Porter,et al. Harnessing extracellular vesicles to direct endochondral repair of large bone defects , 2018, Bone & joint research.
[3] P. Dormitzer,et al. COVID-19 vaccine BNT162b1 elicits human antibody and TH1 T cell responses , 2020, Nature.
[4] P. Muley,et al. Dendritic Cell-Targeted Nanovaccine Delivery System Prepared with an Immune-Active Polymer. , 2018, ACS applied materials & interfaces.
[5] M. D'souza,et al. Evaluation of an adjuvanted hydrogel-based pDNA nanoparticulate vaccine for rabies prevention and immunocontraception. , 2019, Nanomedicine : nanotechnology, biology, and medicine.
[6] J. Moon,et al. Engineered Nanoparticles for Cancer Vaccination and Immunotherapy. , 2020, Accounts of chemical research.
[7] J. Ulmer,et al. mRNA as a Transformative Technology for Vaccine Development to Control Infectious Diseases. , 2019, Molecular therapy : the journal of the American Society of Gene Therapy.
[8] Ronnie H. Fang,et al. Nanoparticulate Delivery of Cancer Cell Membrane Elicits Multiantigenic Antitumor Immunity , 2017, Advanced materials.
[9] Dong Wang,et al. Erythrocyte Membrane-Enveloped Polymeric Nanoparticles as Nanovaccine for Induction of Antitumor Immunity against Melanoma. , 2015, ACS nano.
[10] Jackie Y Ying,et al. The effect of matrix stiffness on mesenchymal stem cell differentiation in a 3D thixotropic gel. , 2010, Biomaterials.
[11] Nopphon Weeranoppanant,et al. Cell membrane biomimetic nanoparticles for inflammation and cancer targeting in drug delivery. , 2019, Biomaterials science.
[12] Dong Chen,et al. The effect of the shape of mesoporous silica nanoparticles on cellular uptake and cell function. , 2010, Biomaterials.
[13] Xiao-mei Yang,et al. Fusion of Dendritic Cells and Cancer-Associated Fibroblasts for Activation of Anti-Tumor Cytotoxic T Lymphocytes. , 2018, Journal of biomedical nanotechnology.
[14] Paul C. Wang,et al. Proton-driven transformable nanovaccine for cancer immunotherapy , 2020, Nature Nanotechnology.
[15] David Putnam,et al. A single dose and long lasting vaccine against pandemic influenza through the controlled release of a heterospecies tandem M2 sequence embedded within detoxified bacterial outer membrane vesicles. , 2017, Vaccine.
[16] E. Wiemer,et al. Major vault protein suppresses obesity and atherosclerosis through inhibiting IKK–NF-κB signaling mediated inflammation , 2019, Nature Communications.
[17] M. Darroudi,et al. Nanovaccine: A novel approach in immunization , 2019, Journal of cellular physiology.
[18] V. Kickhoefer,et al. Bioengineered Vaults: Self-Assembling Protein Shell–Lipophilic Core Nanoparticles for Drug Delivery , 2014, ACS nano.
[19] Modelling contaminant transport in fly ash–bentonite composite landfill liner: mechanism of different types of ions , 2020, Scientific Reports.
[20] C. Jewell,et al. Integrating Biomaterials and Immunology to Improve Vaccines Against Infectious Diseases. , 2020, ACS biomaterials science & engineering.
[21] Krishanu Saha,et al. Manufacturing Cell Therapies Using Engineered Biomaterials. , 2017, Trends in biotechnology.
[22] Xiaoqi Sun,et al. Cancer Cell Membrane-Coated Adjuvant Nanoparticles with Mannose Modification for Effective Anticancer Vaccination. , 2018, ACS nano.
[23] R. Zinkernagel,et al. Neutralizing antiviral B cell responses. , 1997, Annual review of immunology.
[24] Jianjun Chen,et al. Intranasal Nanovaccine Confers Homo- and Hetero-Subtypic Influenza Protection. , 2018, Small.
[25] Mengsu Yang,et al. Efficient RNA drug delivery using red blood cell extracellular vesicles , 2018, Nature Communications.
[26] Xin Luan,et al. Engineering exosomes as refined biological nanoplatforms for drug delivery , 2017, Acta Pharmacologica Sinica.
[27] Francesca Taraballi,et al. Cell Membrane-Based Biomimetic Nanoparticles and the Immune System: Immunomodulatory Interactions to Therapeutic Applications , 2020, Frontiers in Bioengineering and Biotechnology.
[28] S. Mitragotri,et al. Nanoparticles in the clinic , 2016, Bioengineering & translational medicine.
[29] Jun Xu,et al. Nanoscale Coordination Polymer Based Nano-Vaccine for Tumor Immunotherapy. , 2019, ACS nano.
[30] A. Butt,et al. Enhanced paracellular delivery of vaccine by hydrogel microparticles-mediated reversible tight junction opening for effective oral immunization. , 2019, Journal of controlled release : official journal of the Controlled Release Society.
[31] K. Singh,et al. The clinical development process for a novel preventive vaccine: An overview , 2016, Journal of postgraduate medicine.
[32] R. Le Goffic,et al. Self-assembled peptide nanorod vaccine confers protection against influenza A virus. , 2021, Biomaterials.
[33] P. Castle,et al. Prophylactic HPV vaccination: past, present, and future , 2015, Epidemiology and Infection.
[34] H. Garg,et al. Virus Like Particles (VLP) as multivalent vaccine candidate against Chikungunya, Japanese Encephalitis, Yellow Fever and Zika Virus , 2020, Scientific Reports.
[35] V. Kickhoefer,et al. Encapsulation of Exogenous Proteins in Vault Nanoparticles. , 2018, Methods in molecular biology.
[36] Zhenhuan Guo,et al. PEI-modified macrophage cell membrane-coated PLGA nanoparticles encapsulating Dendrobium polysaccharides as a vaccine delivery system for ovalbumin to improve immune responses. , 2020, International journal of biological macromolecules.
[37] V. Patravale,et al. Xyloglucan based mucosal nanovaccine for immunological protection against brucellosis developed by supercritical fluid technology , 2020, International journal of pharmaceutics: X.
[38] Mujahed I. Mustafa,et al. Immunoinformatics design of multiepitopes peptide-based universal cancer vaccine using matrix metalloproteinase-9 protein as a target , 2020, Immunological medicine.
[39] V. Kickhoefer,et al. A Protective Vaccine against Chlamydia Genital Infection Using Vault Nanoparticles without an Added Adjuvant , 2017, Vaccines.
[40] J. Kailashiya,et al. Telomerase based anticancer immunotherapy and vaccines approaches. , 2017, Vaccine.
[41] A. Olivier,et al. DNA Vaccines Against Mycoplasma Elicit Humoral Immune Responses in Ostriches , 2019, Front. Immunol..
[42] Jin‐Yue Zeng,et al. Expandable Immunotherapeutic Nanoplatforms Engineered from Cytomembranes of Hybrid Cells Derived from Cancer and Dendritic Cells , 2019, Advanced materials.
[43] A. Pollard,et al. A guide to vaccinology: from basic principles to new developments , 2020, Nature reviews. Immunology.
[44] J. Sidney,et al. Protein nanovaccine confers robust immunity against Toxoplasma , 2017, npj Vaccines.
[45] D. Klatzmann,et al. Efficient oral vaccination by bioengineering virus-like particles with protozoan surface proteins , 2019, Nature Communications.
[46] Tara L. Deans,et al. Biological Cells as Therapeutic Delivery Vehicles. , 2020, Trends in pharmacological sciences.
[47] D. Putnam,et al. Recombinant M2e outer membrane vesicle vaccines protect against lethal influenza A challenge in BALB/c mice. , 2016, Vaccine.
[48] Ying Yu,et al. Nucleic Acid Vaccine Targeting Nogo-66 Receptor and Paired Immunoglobulin-Like Receptor B as an Immunotherapy Strategy for Spinal Cord Injury in Rats , 2019, Neurotherapeutics.
[49] G. Wong,et al. A Chimeric Sudan Virus-Like Particle Vaccine Candidate Produced by a Recombinant Baculovirus System Induces Specific Immune Responses in Mice and Horses , 2020, Viruses.
[50] J. Whitaker. Immunization Strategies to Span the Spectrum of Immunocompromised Adults. , 2020, Mayo Clinic proceedings.
[51] S. Khurana,et al. What Is the Predictive Value of Animal Models for Vaccine Efficacy in Humans? The Importance of Bridging Studies and Species-Independent Correlates of Protection. , 2018, Cold Spring Harbor perspectives in biology.
[52] E. Nelson,et al. Biomimetic protein nanoparticles facilitate enhanced dendritic cell activation and cross-presentation. , 2013, ACS nano.
[53] Marc Lipsitch,et al. Vaccine production, distribution, access, and uptake , 2011, The Lancet.
[54] C. Black,et al. Future of human Chlamydia vaccine: potential of self-adjuvanting biodegradable nanoparticles as safe vaccine delivery vehicles , 2018, Expert review of vaccines.
[55] J. Mascola,et al. Efficacy and Safety of the mRNA-1273 SARS-CoV-2 Vaccine , 2020, The New England journal of medicine.
[56] T. Pierson,et al. Protective Efficacy of Nucleic Acid Vaccines Against Transmission of Zika Virus During Pregnancy in Mice. , 2019, The Journal of infectious diseases.
[57] Wei Wei,et al. Biosynthesis of Self‐Assembled Proteinaceous Nanoparticles for Vaccination , 2020, Advanced materials.
[58] S. Wain-Hobson,et al. A DNA telomerase vaccine for canine cancer immunotherapy , 2019, Oncotarget.
[59] V. Valentini,et al. Head and Neck Cancer Treatment during COVID-19 Pandemic: A Central Experience in Rome. Emergency Management, Infection Prevention and Control , 2020, Cancers.
[60] H. Rammensee,et al. The European Regulatory Environment of RNA-Based Vaccines. , 2017, Methods in molecular biology.
[61] Lisa E. Gralinski,et al. Animal models for COVID-19 , 2020, Nature.
[62] Mark W. Youngblood,et al. Author Correction: Integrated genomic analyses of de novo pathways underlying atypical meningiomas , 2018, Nature Communications.
[63] C. Kiparissides,et al. A Poly(Lactic-co-Glycolic) Acid Nanovaccine Based on Chimeric Peptides from Different Leishmania infantum Proteins Induces Dendritic Cells Maturation and Promotes Peptide-Specific IFNγ-Producing CD8+ T Cells Essential for the Protection against Experimental Visceral Leishmaniasis , 2017, Front. Immunol..
[64] Yucai Wang,et al. Bacterial outer membrane vesicles as a platform for biomedical applications: An update. , 2020, Journal of controlled release : official journal of the Controlled Release Society.
[65] Krishnendu Roy,et al. Micro and Nanoparticle‐Based Delivery Systems for Vaccine Immunotherapy: An Immunological and Materials Perspective , 2013, Advanced healthcare materials.
[66] M. Kaparakis-Liaskos,et al. Immune modulation by bacterial outer membrane vesicles , 2015, Nature Reviews Immunology.
[67] D. Martens,et al. Bioengineering bacterial outer membrane vesicles as vaccine platform. , 2017, Biotechnology advances.
[68] S. Aamdal,et al. Long-Term Outcomes of a Phase I Study With UV1, a Second Generation Telomerase Based Vaccine, in Patients With Advanced Non-Small Cell Lung Cancer , 2020, Frontiers in Immunology.
[69] R. Rappuoli,et al. Sustainable vaccine development: a vaccine manufacturer's perspective , 2018, Current Opinion in Immunology.
[70] Xing-jie Liang,et al. Co-localized delivery of nanomedicine and nanovaccine augments the postoperative cancer immunotherapy by amplifying T-cell responses. , 2019, Biomaterials.
[71] R. Zhao,et al. In Situ Transforming RNA Nanovaccines from Polyethylenimine Functionalized Graphene Oxide Hydrogel for Durable Cancer Immunotherapy. , 2021, Nano letters.
[72] Manisha Pandey,et al. Poly(amino acids) as a potent self-adjuvanting delivery system for peptide-based nanovaccines , 2020, Science Advances.
[73] Martin F. Bachmann,et al. Vaccine delivery: a matter of size, geometry, kinetics and molecular patterns , 2010, Nature Reviews Immunology.
[74] C. Gong,et al. Self‐Adjuvanted Molecular Activator (SeaMac) Nanovaccines Promote Cancer Immunotherapy , 2020, Advanced healthcare materials.
[75] A. Butt,et al. Molecular evaluation of oral immunogenicity of hepatitis B antigen delivered by hydrogel microparticles. , 2019, Molecular pharmaceutics.
[76] J. Mascola,et al. An mRNA Vaccine against SARS-CoV-2 — Preliminary Report , 2020, The New England journal of medicine.
[77] Meifang Zhu,et al. Ultrasound-Mediated Remotely Controlled Nanovaccine Delivery for Tumor Vaccination and Individualized Cancer Immunotherapy. , 2021, Nano letters.
[78] Jin‐Yue Zeng,et al. Cytomembrane nanovaccines show therapeutic effects by mimicking tumor cells and antigen presenting cells , 2019, Nature Communications.
[79] R. Banerjee,et al. Advancements in prophylactic and therapeutic nanovaccines , 2020, Acta Biomaterialia.
[80] S. Bonovas,et al. Vaccination recommendations for the adult immunosuppressed patient: A systematic review and comprehensive field synopsis. , 2017, Journal of autoimmunity.
[81] U. Baxa,et al. A virus-like particle vaccine prevents equine encephalitis virus infection in nonhuman primates , 2019, Science Translational Medicine.
[82] Richard G. Jarman,et al. Vaccine Protection Against Zika Virus from Brazil , 2016, Nature.
[83] V. Kickhoefer,et al. Development of the vault particle as a platform technology. , 2013, ACS nano.
[84] Ankur Singh. Eliciting B cell immunity against infectious diseases using nanovaccines , 2020, Nature Nanotechnology.
[85] J. Mestecky,et al. Mucosal Immunity in COVID-19: A Neglected but Critical Aspect of SARS-CoV-2 Infection , 2020, Frontiers in Immunology.
[86] Min Jiang,et al. Carbon dioxide capture and efficient fixation in a dynamic porous coordination polymer , 2019, Nature Communications.
[87] P. Alves,et al. Virus-like particles in vaccine development , 2010, Expert review of vaccines.
[88] J. Vertemara,et al. The Vault Nanoparticle: A Gigantic Ribonucleoprotein Assembly Involved in Diverse Physiological and Pathological Phenomena and an Ideal Nanovector for Drug Delivery and Therapy , 2021, Cancers.
[89] V. Shinde,et al. Phase 1–2 Trial of a SARS-CoV-2 Recombinant Spike Protein Nanoparticle Vaccine , 2020, The New England journal of medicine.
[90] Chao Liu,et al. Cell membrane-encapsulated nanoparticles for vaccines and immunotherapy , 2021 .
[91] G. Jennings,et al. Designing recombinant vaccines with viral properties: a rational approach to more effective vaccines. , 2007, Current molecular medicine.
[92] Barry C Buckland,et al. The process development challenge for a new vaccine , 2005, Nature Medicine.
[93] David M. Wirth,et al. COVID-19 vaccine development and a potential nanomaterial path forward , 2020, Nature Nanotechnology.
[94] T. Ren,et al. Nanoparticle reinforced bacterial outer-membrane vesicles effectively prevent fatal infection of carbapenem-resistant Klebsiella pneumonia. , 2019, Nanomedicine : nanotechnology, biology, and medicine.
[95] C. Demetzos,et al. Promising Nanotechnology Approaches in Treatment of Autoimmune Diseases of Central Nervous System , 2020, Brain sciences.