Probing, by Self-assembly, the Number of Potential Binding Sites for Minor Protein Subunits in the Procapsid of Double-stranded RNA Bacteriophage Φ6
Overview
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The double-stranded RNA bacteriophage Φ6 is an extensively studied prokaryotic model system for virus assembly. There are established in vitro assembly protocols available for the Φ6 system for obtaining infectious particles from purified protein and RNA constituents. The polymerase complex is a multifunctional nanomachine that replicates, transcribes, and translocates viral RNA molecules in a highly specific manner. The complex is composed of (i) the major structural protein (P1), forming a T=1 icosahedral lattice with two protein subunits in the icosahedral asymmetric unit; (ii) the RNA-dependent RNA polymerase (P2); (iii) the hexameric packaging nucleoside triphosphatase (NTPase) (P4); and (iv) the assembly cofactor (P7). In this study, we analyzed several Φ6 virions and recombinant polymerase complexes to investigate the relative copy numbers of P2, P4, and P7, and we applied saturated concentrations of these proteins in the self-assembly system to probe their maximal numbers of binding sites in the P1 shell. Biochemical quantitation confirmed that the composition of the recombinant particles was similar to that of the virion cores. By including a high concentration of P2 or P7 in the self-assembly reaction mix, we observed that the numbers of these proteins in the resulting particles could be increased beyond those observed in the virion. Our results also suggest a previously unidentified P2-P7 dependency in the assembly reaction. Furthermore, it appeared that P4 must initially be incorporated at each, or a majority, of the 5-fold symmetry positions of the P1 shell for particle assembly. Although required for nucleation, excess P4 resulted in slower assembly kinetics.
Structural Studies of Bacteriophage Φ6 and Its Transformations during Its Life Cycle.
Heymann J Viruses. 2023; 15(12).
PMID: 38140645 PMC: 10747372. DOI: 10.3390/v15122404.
RNA Packaging in the Bacteriophages: Dynamic Interactions during Capsid Maturation.
Gottlieb P, Alimova A Int J Mol Sci. 2022; 23(5).
PMID: 35269819 PMC: 8910881. DOI: 10.3390/ijms23052677.
Dual Role of a Viral Polymerase in Viral Genome Replication and Particle Self-Assembly.
Sun X, Ilca S, Huiskonen J, Poranen M mBio. 2018; 9(5).
PMID: 30279282 PMC: 6168860. DOI: 10.1128/mBio.01242-18.
Genome packaging in multi-segmented dsRNA viruses: distinct mechanisms with similar outcomes.
Borodavka A, Desselberger U, Patton J Curr Opin Virol. 2018; 33:106-112.
PMID: 30145433 PMC: 6289821. DOI: 10.1016/j.coviro.2018.08.001.
Alphonse S, Ghose R Virus Res. 2017; 234:135-152.
PMID: 28104452 PMC: 5476504. DOI: 10.1016/j.virusres.2017.01.006.