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Vaccine Design

Overview of attention for book
Cover of 'Vaccine Design'

Table of Contents

  1. Altmetric Badge
    Book Overview
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    Chapter 1 Clinical Impact of Vaccine Development.
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    Chapter 2 Vaccine Design
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    Chapter 3 Vaccine Design
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    Chapter 4 Reverse Vaccinology: The Pathway from Genomes and Epitope Predictions to Tailored Recombinant Vaccines.
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    Chapter 5 Vaccine Design
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    Chapter 6 Vaccine Design
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    Chapter 7 Development of Rabies Virus-Like Particles for Vaccine Applications: Production, Characterization, and Protection Studies.
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    Chapter 8 Analytic Vaccinology: Antibody-Driven Design of a Human Cytomegalovirus Subunit Vaccine.
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    Chapter 9 Generation of a Single-Cycle Replicable Rift Valley Fever Vaccine.
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    Chapter 10 Application of Droplet Digital PCR to Validate Rift Valley Fever Vaccines.
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    Chapter 11 Methods to Evaluate Novel Hepatitis C Virus Vaccines.
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    Chapter 12 Designing Efficacious Vesicular Stomatitis Virus-Vectored Vaccines Against Ebola Virus.
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    Chapter 13 Assessment of Functional Norovirus Antibody Responses by Blocking Assay in Mice.
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    Chapter 14 Development of a SARS Coronavirus Vaccine from Recombinant Spike Protein Plus Delta Inulin Adjuvant.
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    Chapter 15 Generation and Characterization of a Chimeric Tick-Borne Encephalitis Virus Attenuated Strain ChinTBEV.
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    Chapter 16 Vaccine Design
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    Chapter 17 Reverse Genetics Approaches to Control Arenavirus.
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    Chapter 18 DNA Vaccines: A Strategy for Developing Novel Multivalent TB Vaccines.
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    Chapter 19 Vaccine Design
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    Chapter 20 Vaccine Design
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    Chapter 21 Vaccine Design
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    Chapter 22 Murine Models of Bacteremia and Surgical Wound Infection for the Evaluation of Staphylococcus aureus Vaccine Candidates.
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    Chapter 23 Vaccine Design
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    Chapter 24 An Approach to Identify and Characterize a Subunit Candidate Shigella Vaccine Antigen.
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    Chapter 25 Approach to the Discovery, Development, and Evaluation of a Novel Neisseria meningitidis Serogroup B Vaccine.
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    Chapter 26 Vaccine Design
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    Chapter 27 Assessment of Live Plague Vaccine Candidates.
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    Chapter 28 Vaccine Design
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    Chapter 29 Vaccine Design
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    Chapter 30 Vaccine Design
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    Chapter 31 Flow Cytometric Analysis of Protective T-Cell Response Against Pulmonary Coccidioides Infection.
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    Chapter 32 Vaccine Design
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    Chapter 33 Vaccine Design
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    Chapter 34 DNA Integration in Leishmania Genome: An Application for Vaccine Development and Drug Screening.
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    Chapter 35 Vaccine Design
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    Chapter 36 The Use of Microwave-Assisted Solid-Phase Peptide Synthesis and Click Chemistry for the Synthesis of Vaccine Candidates Against Hookworm Infection.
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    Chapter 37 Methods and Protocols for Developing Prion Vaccines.
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    Chapter 38 Ricin-Holotoxin-Based Vaccines: Induction of Potent Ricin-Neutralizing Antibodies.
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    Chapter 39 Synthesis of Hapten-Protein Conjugate Vaccines with Reproducible Hapten Densities.
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    Chapter 40 Production of Rice Seed-Based Allergy Vaccines.
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    Chapter 41 Vaccine Design
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    Chapter 42 Vaccine Design
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    Chapter 43 Vaccine Design
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    Chapter 44 Vaccine Design
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    Chapter 45 T-Cell Epitope Discovery for Therapeutic Cancer Vaccines.
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    Chapter 46 Peptide-Based Cancer Vaccine Strategies and Clinical Results.
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    Chapter 47 Vaccine Design
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    Chapter 48 Development of Antibody-Based Vaccines Targeting the Tumor Vasculature.
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    Chapter 49 Practical Approaches to Forced Degradation Studies of Vaccines.
  51. Altmetric Badge
    Chapter 50 Erratum.
Attention for Chapter 3: Vaccine Design
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About this Attention Score

  • In the top 25% of all research outputs scored by Altmetric
  • High Attention Score compared to outputs of the same age (83rd percentile)
  • High Attention Score compared to outputs of the same age and source (89th percentile)

Mentioned by

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Chapter title
Vaccine Design
Chapter number 3
Book title
Vaccine Design
Published in
Methods in molecular biology, January 2016
DOI 10.1007/978-1-4939-3387-7_3
Pubmed ID
Book ISBNs
978-1-4939-3385-3, 978-1-4939-3387-7
Authors

Zepp, Fred, Fred Zepp

Editors

Sunil Thomas

Abstract

While many of the currently available vaccines have been developed empirically, with limited understanding on how they activate the immune system and elicit protective immunity, the recent progress in basic sciences like immunology, microbiology, genetics, and molecular biology has fostered our understanding on the interaction of microorganisms with the human immune system. In consequence, modern vaccine development strongly builds on the precise knowledge of the biology of microbial pathogens, their interaction with the human immune system, as well as their capacity to counteract and evade innate and adaptive immune mechanisms. Strategies engaged by pathogens strongly determine how a vaccine should be formulated to evoke potent and efficient protective immune responses. The improved knowledge of immune response mechanisms has facilitated the development of new vaccines with the capacity to defend against challenging pathogens and can help to protect individuals particular at risk like immunocompromised and elderly populations. Modern vaccine development technologies include the production of highly purified antigens that provide a lower reactogenicity and higher safety profile than the traditional empirically developed vaccines. Attempts to improve vaccine antigen purity, however, may result in impaired vaccine immunogenicity. Some of such disadvantages related to highly purified and/or genetically engineered vaccines yet can be overcome by innovative technologies, such as live vector vaccines, and DNA or RNA vaccines. Moreover, recent years have witnessed the development of novel adjuvant formulations that specifically focus on the augmentation and/or control of the interplay between innate and adaptive immune systems as well as the function of antigen-presenting cells. Finally, vaccine design has become more tailored, and in turn has opened up the potential of extending its application to hitherto not accessible complex microbial pathogens plus providing new immunotherapies to tackle diseases such as cancer, Alzheimer's disease, and autoimmune disease. This chapter gives an overview of the key considerations and processes involved in vaccine development. It also describes the basic principles of normal immune respoinses and its their function in defense of infectious agents by vaccination.

X Demographics

X Demographics

The data shown below were collected from the profiles of 16 X users who shared this research output. Click here to find out more about how the information was compiled.
Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 196 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 196 100%

Demographic breakdown

Readers by professional status Count As %
Student > Master 26 13%
Student > Bachelor 24 12%
Student > Ph. D. Student 13 7%
Student > Doctoral Student 11 6%
Researcher 11 6%
Other 23 12%
Unknown 88 45%
Readers by discipline Count As %
Medicine and Dentistry 28 14%
Biochemistry, Genetics and Molecular Biology 19 10%
Immunology and Microbiology 15 8%
Pharmacology, Toxicology and Pharmaceutical Science 9 5%
Agricultural and Biological Sciences 8 4%
Other 24 12%
Unknown 93 47%
Attention Score in Context

Attention Score in Context

This research output has an Altmetric Attention Score of 9. This is our high-level measure of the quality and quantity of online attention that it has received. This Attention Score, as well as the ranking and number of research outputs shown below, was calculated when the research output was last mentioned on 26 September 2023.
All research outputs
#4,202,742
of 25,366,663 outputs
Outputs from Methods in molecular biology
#1,026
of 14,192 outputs
Outputs of similar age
#66,757
of 406,772 outputs
Outputs of similar age from Methods in molecular biology
#151
of 1,465 outputs
Altmetric has tracked 25,366,663 research outputs across all sources so far. Compared to these this one has done well and is in the 83rd percentile: it's in the top 25% of all research outputs ever tracked by Altmetric.
So far Altmetric has tracked 14,192 research outputs from this source. They receive a mean Attention Score of 3.5. This one has done particularly well, scoring higher than 92% of its peers.
Older research outputs will score higher simply because they've had more time to accumulate mentions. To account for age we can compare this Altmetric Attention Score to the 406,772 tracked outputs that were published within six weeks on either side of this one in any source. This one has done well, scoring higher than 83% of its contemporaries.
We're also able to compare this research output to 1,465 others from the same source and published within six weeks on either side of this one. This one has done well, scoring higher than 89% of its contemporaries.