Modified viral structural protein with antiviral activity
This disclosure provides a novel strategy to cope with chronic virus infection by introducing a dominant negative viral structural protein to disturb effective virion production. The dominant negative structural protein mimics antiviral drugs through structural and biochemical interactions during virus assembly. An effective gene therapy model for chronic viral infected diseases is proposed in this disclosure, as represented by HBV Cpdominant1 to clear viral infection.
1. A method to identify an antiviral protein or polypeptide having a dominant negative mutation, the method comprising:
a. providing to a wild type virus a small molecule assembly effector that affects wild type virus assembly;
b. identifying said small molecule assembly effector's binding pocket on a wild type viral structural protein of the wild type virus;
c. performing site-directed mutagenesis at the identified assembly effector's binding pocket on the wild type viral structural protein to obtain a mutant structural protein or polypeptide with at least one amino acid mutation and a filled binding pocket;
d. testing said mutant structural protein or polypeptide's self-assembly kinetics in the absence of a viral assembly signal and in the absence of a small molecule assembly effector;
e. testing said mutant structural protein or polypeptide's ability to co-assemble with wild type virus structural proteins in the absence of viral assembly signal and in the absence of a small molecule assembly effector; and
f. selecting as the antiviral protein or polypeptide a mutant structural protein or polypeptide with accelerated self-assembly kinetics that co-assembles with and causes accelerated assembly of wild type virus structural proteins in the absence of viral assembly signal and in the absence of a small molecule assembly effector.
2. The method of claim 1 , wherein said wild type virus is selected from the group consisting of: Hepatitis B virus (HBV), Flaviviridae, Togaviridae, Retroviridae, Herpesviridae, and Papillomaviridae.
3. The method of claim 1 , wherein said virus is Hepatitis B virus (HBV) and said small molecule assembly effector is a heteroaryldihydropyrimidine (HAP) or phenylpropenamide.
4. The method of claim 1 , wherein said virus is Hepatitis B virus (HBV) and said binding pocket is located at the interface between subunits of HBV core protein.
5. The method of claim 1 , wherein said mutagenesis occurs on Hepatitis B virus (HBV) core protein V124.
6. The method of claim 1 , wherein said virus is human immunodeficiency virus (HIV) and said small molecule assembly effector is selected from the group consisting of: PF01385801, PF-3450074, and PF-3759857.
7. The method of claim 1 , wherein said mutagenesis occurs on the CA domain or SP1 domain of human immunodeficiency virus (HIV) Gag protein.
8. A hepatitis B virus core protein comprising a V124W mutation as set forth by SEQ ID NO: 1.
9. A method of preparing an antiviral protein or polypeptide having a dominant negative effect on replication of a wild type virus, the method comprising:
a. providing to the wild type virus a small molecule assembly effector that affects wild type virus assembly by binding to a structural protein of the wild type virus, and identifying the small molecule assembly effector's binding pocket on the structural protein;
b. performing site-directed mutagenesis at the identified small molecule assembly effector's binding pocket on the structural protein to obtain a mutant protein or polypeptide with at least one amino acid mutation and a filled binding pocket;
c. testing the mutant protein or polypeptide's self-assembly kinetics in the absence of a viral assembly signal and in the absence of a small molecule assembly effector;
d. testing said mutant structural protein or polypeptide's ability to co-assemble with wild type virus structural proteins in the absence of viral assembly signal and in the absence of a small molecule assembly effector; and
e. selecting as the antiviral protein or polypeptide a mutant structural protein or polypeptide with accelerated self-assembly kinetics that co-assembles with and causes accelerated assembly of wild type virus structural proteins in the absence of viral assembly signal and in the absence of a small molecule assembly effector.
10. The method of claim 8 , wherein said wild type virus is selected from the group consisting of: Hepatitis B virus (HBV), Flaviviridae, Togaviridae, Retroviridae, Herpesviridae, and Papillomaviridae.