Methods and compositions for activation of innate immune responses through RIG-I like receptor signaling
Compositions and methods are provided that enable activation of innate immune responses through RIG-I like receptor signaling. The compositions and methods incorporate synthetic nucleic acid pathogen associated molecular patterns (PAMPs) that comprise elements initially characterized in, and derived from, the hepatitis C virus genome.
1. A pharmaceutical composition, wherein the pharmaceutical composition comprises:
an isolated nucleic acid molecule comprising the sequence of SEQ ID NO: 1; and
a carrier, wherein the carrier comprises a nanoparticle.
2. The pharmaceutical composition of claim 1 , wherein the nanoparticle comprises a liposome.
3. The pharmaceutical composition of claim 1 , wherein the nanoparticle comprises an emulsion.
4. The pharmaceutical composition of claim 1 , wherein the pharmaceutical composition is in the form of a suspension.
5. The pharmaceutical composition of claim 1 , further comprising a viral antigen, a bacterial antigen, a protozoal antigen, a fungal antigen, and/or a helminth antigen, or an attenuated, inactivated, or killed virus, bacterium, protozoan, fungus, and/or helminth.
6. The pharmaceutical composition of claim 1 , further comprising an anti-viral therapeutic, an anti-bacterial therapeutic, an anti-protozoal therapeutic, an anti-fungal therapeutic, an anti-helminth therapeutic, and/or an adjuvant.
7. A method of inducing RLR signaling, the method comprising:
administering to a subject an effective amount of the pharmaceutical composition of claim 1 .
8. The method of claim 7 , wherein the pharmaceutical composition comprises the isolated nucleic acid molecule in an emulsion.
9. The method of claim 7 , further comprising administering a viral antigen, a bacterial antigen, a protozoal antigen, a fungal antigen, and/or a helminth antigen, or an attenuated, inactivated, or killed virus, bacterium, protozoan, fungus, and/or helminth.
10. The method of claim 9 , wherein the virus is a member of, or is derived from, the Flaviviridae, Paramyxoviridae, Hepaciviridae, Orthomyxoviridae, Bunyaviridae, Arenaviridae, Reoviridae, Retroviridae, Enteroviruses, Picornaviridae, Coronaviridae, or Noroviridae families, or the viral antigen is derived from a virus of the Flaviviridae, Paramyxoviridae, Hepaciviridae, Orthomyxoviridae, Bunyaviridae, Arenaviridae, Reoviridae, Retroviridae, Enteroviruses, Picornaviridae, Coronaviridae, or Noroviridae families.
11. The method of claim 9 , wherein the virus is a West Nile virus, dengue virus, Japanese encephalitis virus, vesicular stomatitis virus, hepatitis C virus, respiratory syncytial virus, yellow fever virus, influenza A virus, Lassa fever virus, Hantavirus, lymphocytic choriomenengitis virus, polio virus, parainfluenza virus, rotavirus, human immunodeficiency virus (HIV), human T-lymphotropic virus (HTLV), enterovirus 21 and strains thereof, severe acute respiratory syndrome (SARS) virus, Middle East respiratory syndrome (MERS) virus, corona virus, or norovirus, or is derived therefrom.
12. The method of claim 11 , wherein the virus is an attenuated West Nile virus derived from a lineage 2 Madagascar strain of West Nile virus.
13. The method of claim 7 , wherein the administration step does not induce septic shock in the subject.
14. The method of claim 7 , wherein induction of RLR signaling is manifested by an increase in IFN-β levels, an increase in ISG54 levels, or an increase in IRF3 phosphorylation.
15. The method of claim 14 , wherein the RLR is RIG-I.
16. The method of claim 7 , wherein the subject is a human.
17. The method of claim 7 , wherein the subject is administered the pharmaceutical composition multiple times.