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Synthetic Toll-Like Receptor 4 (TLR4) and TLR7 Ligands Work Additively via MyD88 To Induce Protective Antiviral Immunity in Mice

Identifieur interne : 000269 ( Main/Exploration ); précédent : 000268; suivant : 000270

Synthetic Toll-Like Receptor 4 (TLR4) and TLR7 Ligands Work Additively via MyD88 To Induce Protective Antiviral Immunity in Mice

Auteurs : Peter H. Goff [États-Unis] ; Tomoko Hayashi [États-Unis] ; Wenqian He [États-Unis] ; Shiyin Yao [États-Unis] ; Howard B. Cottam [États-Unis] ; Gene S. Tan [États-Unis] ; Brian Crain [États-Unis] ; Florian Krammer [États-Unis] ; Karen Messer [États-Unis] ; Minya Pu [États-Unis] ; Dennis A. Carson [États-Unis] ; Peter Palese [États-Unis] ; Maripat Corr [États-Unis]

Source :

RBID : PMC:5599744

Abstract

ABSTRACT

We previously demonstrated that the combination of synthetic small-molecule Toll-like receptor 4 (TLR4) and TLR7 ligands is a potent adjuvant for recombinant influenza virus hemagglutinin, inducing rapid and sustained immunity that is protective against influenza viruses in homologous, heterologous, and heterosubtypic murine challenge models. Combining the TLR4 and TLR7 ligands balances Th1 and Th2-type immune responses for long-lived cellular and neutralizing humoral immunity against the viral hemagglutinin. Here, we demonstrate that the protective response induced in mice by this combined adjuvant is dependent upon TLR4 and TLR7 signaling via myeloid differentiation primary response gene 88 (MyD88), indicating that the adjuvants function in vivo via their known receptors, with negligible off-target effects, to induce protective immunity. The combined adjuvant acts via MyD88 in both bone marrow-derived and non-bone marrow-derived radioresistant cells to induce hemagglutinin-specific antibodies and protect mice against influenza virus challenge. The protective efficacy generated by immunization with this adjuvant and recombinant hemagglutinin antigen is transferable with serum from immunized mice to recipient mice in a homologous, but not a heterologous, H1N1 viral challenge model. Depletion of CD4+ cells after an established humoral response in immunized mice does not impair protection from a homologous challenge; however, it does significantly impair recovery from a heterologous challenge virus, highlighting an important role for vaccine-induced CD4+ cells in cross-protective vaccine efficacy. The combination of the two TLR agonists allows for significant dose reductions of each component to achieve a level of protection equivalent to that afforded by either single agent at its full dose.

IMPORTANCE Development of novel adjuvants is needed to enhance immunogenicity to provide better protection from seasonal influenza virus infection and improve pandemic preparedness. We show here that several dose combinations of synthetic TLR4 and TLR7 ligands are potent adjuvants for recombinant influenza virus hemagglutinin antigen induction of humoral and cellular immunity against viral challenges. The components of the combined adjuvant work additively to enable both antigen and adjuvant dose sparing while retaining efficacy. Understanding an adjuvant's mechanism of action is a critical component for preclinical safety evaluation, and we demonstrate here that a combined TLR4 and TLR7 adjuvant signals via the appropriate receptors and the MyD88 adaptor protein. This novel adjuvant combination contributes to a more broadly protective vaccine while demonstrating an attractive safety profile.


Url:
DOI: 10.1128/JVI.01050-17
PubMed: 28724768
PubMed Central: 5599744


Affiliations:


Links toward previous steps (curation, corpus...)


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<series>
<title level="j">Journal of Virology</title>
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<title>ABSTRACT</title>
<p>We previously demonstrated that the combination of synthetic small-molecule Toll-like receptor 4 (TLR4) and TLR7 ligands is a potent adjuvant for recombinant influenza virus hemagglutinin, inducing rapid and sustained immunity that is protective against influenza viruses in homologous, heterologous, and heterosubtypic murine challenge models. Combining the TLR4 and TLR7 ligands balances Th1 and Th2-type immune responses for long-lived cellular and neutralizing humoral immunity against the viral hemagglutinin. Here, we demonstrate that the protective response induced in mice by this combined adjuvant is dependent upon TLR4 and TLR7 signaling via myeloid differentiation primary response gene 88 (MyD88), indicating that the adjuvants function
<italic>in vivo</italic>
via their known receptors, with negligible off-target effects, to induce protective immunity. The combined adjuvant acts via MyD88 in both bone marrow-derived and non-bone marrow-derived radioresistant cells to induce hemagglutinin-specific antibodies and protect mice against influenza virus challenge. The protective efficacy generated by immunization with this adjuvant and recombinant hemagglutinin antigen is transferable with serum from immunized mice to recipient mice in a homologous, but not a heterologous, H1N1 viral challenge model. Depletion of CD4
<sup>+</sup>
cells after an established humoral response in immunized mice does not impair protection from a homologous challenge; however, it does significantly impair recovery from a heterologous challenge virus, highlighting an important role for vaccine-induced CD4
<sup>+</sup>
cells in cross-protective vaccine efficacy. The combination of the two TLR agonists allows for significant dose reductions of each component to achieve a level of protection equivalent to that afforded by either single agent at its full dose.</p>
<p>
<bold>IMPORTANCE</bold>
Development of novel adjuvants is needed to enhance immunogenicity to provide better protection from seasonal influenza virus infection and improve pandemic preparedness. We show here that several dose combinations of synthetic TLR4 and TLR7 ligands are potent adjuvants for recombinant influenza virus hemagglutinin antigen induction of humoral and cellular immunity against viral challenges. The components of the combined adjuvant work additively to enable both antigen and adjuvant dose sparing while retaining efficacy. Understanding an adjuvant's mechanism of action is a critical component for preclinical safety evaluation, and we demonstrate here that a combined TLR4 and TLR7 adjuvant signals via the appropriate receptors and the MyD88 adaptor protein. This novel adjuvant combination contributes to a more broadly protective vaccine while demonstrating an attractive safety profile.</p>
</div>
</front>
</TEI>
<affiliations>
<list>
<country>
<li>États-Unis</li>
</country>
<region>
<li>Californie</li>
<li>État de New York</li>
</region>
</list>
<tree>
<country name="États-Unis">
<region name="État de New York">
<name sortKey="Goff, Peter H" sort="Goff, Peter H" uniqKey="Goff P" first="Peter H." last="Goff">Peter H. Goff</name>
</region>
<name sortKey="Carson, Dennis A" sort="Carson, Dennis A" uniqKey="Carson D" first="Dennis A." last="Carson">Dennis A. Carson</name>
<name sortKey="Corr, Maripat" sort="Corr, Maripat" uniqKey="Corr M" first="Maripat" last="Corr">Maripat Corr</name>
<name sortKey="Cottam, Howard B" sort="Cottam, Howard B" uniqKey="Cottam H" first="Howard B." last="Cottam">Howard B. Cottam</name>
<name sortKey="Crain, Brian" sort="Crain, Brian" uniqKey="Crain B" first="Brian" last="Crain">Brian Crain</name>
<name sortKey="Goff, Peter H" sort="Goff, Peter H" uniqKey="Goff P" first="Peter H." last="Goff">Peter H. Goff</name>
<name sortKey="Hayashi, Tomoko" sort="Hayashi, Tomoko" uniqKey="Hayashi T" first="Tomoko" last="Hayashi">Tomoko Hayashi</name>
<name sortKey="He, Wenqian" sort="He, Wenqian" uniqKey="He W" first="Wenqian" last="He">Wenqian He</name>
<name sortKey="He, Wenqian" sort="He, Wenqian" uniqKey="He W" first="Wenqian" last="He">Wenqian He</name>
<name sortKey="Krammer, Florian" sort="Krammer, Florian" uniqKey="Krammer F" first="Florian" last="Krammer">Florian Krammer</name>
<name sortKey="Messer, Karen" sort="Messer, Karen" uniqKey="Messer K" first="Karen" last="Messer">Karen Messer</name>
<name sortKey="Palese, Peter" sort="Palese, Peter" uniqKey="Palese P" first="Peter" last="Palese">Peter Palese</name>
<name sortKey="Palese, Peter" sort="Palese, Peter" uniqKey="Palese P" first="Peter" last="Palese">Peter Palese</name>
<name sortKey="Pu, Minya" sort="Pu, Minya" uniqKey="Pu M" first="Minya" last="Pu">Minya Pu</name>
<name sortKey="Tan, Gene S" sort="Tan, Gene S" uniqKey="Tan G" first="Gene S." last="Tan">Gene S. Tan</name>
<name sortKey="Yao, Shiyin" sort="Yao, Shiyin" uniqKey="Yao S" first="Shiyin" last="Yao">Shiyin Yao</name>
</country>
</tree>
</affiliations>
</record>

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