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  5. Self-Amplifying RNA Vaccines Give Equivalent Protection against Influenza to mRNA Vaccines but at Much Lower Doses.
 
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Self-Amplifying RNA Vaccines Give Equivalent Protection against Influenza to mRNA Vaccines but at Much Lower Doses.
File(s)
1-s2.0-S1525001617305944-main.pdf (1.43 MB)
Published version
OA Location
https://www.sciencedirect.com/science/article/pii/S1525001617305944?via=ihub
Author(s)
Vogel, Annette B
Lambert, Laura
Kinnear, Ekaterina
Busse, David
Erbar, Stephanie
more
Type
Journal Article
Abstract
New vaccine platforms are needed to address the time gap between pathogen emergence and vaccine licensure. RNA-based vaccines are an attractive candidate for this role: they are safe, are produced cell free, and can be rapidly generated in response to pathogen emergence. Two RNA vaccine platforms are available: synthetic mRNA molecules encoding only the antigen of interest and self-amplifying RNA (sa-RNA). sa-RNA is virally derived and encodes both the antigen of interest and proteins enabling RNA vaccine replication. Both platforms have been shown to induce an immune response, but it is not clear which approach is optimal. In the current studies, we compared synthetic mRNA and sa-RNA expressing influenza virus hemagglutinin. Both platforms were protective, but equivalent levels of protection were achieved using 1.25 μg sa-RNA compared to 80 μg mRNA (64-fold less material). Having determined that sa-RNA was more effective than mRNA, we tested hemagglutinin from three strains of influenza H1N1, H3N2 (X31), and B (Massachusetts) as sa-RNA vaccines, and all protected against challenge infection. When sa-RNA was combined in a trivalent formulation, it protected against sequential H1N1 and H3N2 challenges. From this we conclude that sa-RNA is a promising platform for vaccines against viral diseases.
Date Issued
2017-12-05
Date Acceptance
2017-11-28
Citation
Molecular Therapy, 2017, 26 (2), pp.446-455
URI
http://hdl.handle.net/10044/1/56396
DOI
https://www.dx.doi.org/10.1016/j.ymthe.2017.11.017
ISSN
1525-0016
Publisher
Elsevier (Cell Press)
Start Page
446
End Page
455
Journal / Book Title
Molecular Therapy
Volume
26
Issue
2
Copyright Statement
This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
License URL
http://creativecommons.org/licenses/by/4.0/
Identifier
PII: S1525-0016(17)30594-4
Subjects
DNA
H1N1
RNA
alphavirus
influenza
replicon
trivalent
vaccine
Publication Status
Published
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