Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 4 de 4
Filter
Add more filters










Database
Language
Publication year range
1.
J Mol Biol ; 434(20): 167797, 2022 10 30.
Article in English | MEDLINE | ID: mdl-35998704

ABSTRACT

Many single-stranded, positive-sense RNA viruses regulate assembly of their infectious virions by forming multiple, cognate coat protein (CP)-genome contacts at sites termed Packaging Signals (PSs). We have determined the secondary structures of the bacteriophage MS2 ssRNA genome (gRNA) frozen in defined states using constraints from X-ray synchrotron footprinting (XRF). Comparison of the footprints from phage and transcript confirms the presence of multiple PSs in contact with CP dimers in the former. This is also true for a virus-like particle (VLP) assembled around the gRNA in vitro in the absence of the single-copy Maturation Protein (MP) found in phage. Since PS folds are present at many sites across gRNA transcripts, it appears that this genome has evolved to facilitate this mechanism of assembly regulation. There are striking differences between the gRNA-CP contacts seen in phage and the VLP, suggesting that the latter are inappropriate surrogates for aspects of phage structure/function. Roughly 50% of potential PS sites in the gRNA are not in contact with the protein shell of phage. However, many of these sit adjacent to, albeit not in contact with, PS-binding sites on CP dimers. We hypothesize that these act as PSs transiently during assembly but subsequently dissociate. Combining the XRF data with PS locations from an asymmetric cryo-EM reconstruction suggests that the genome positions of such dissociations are non-random and may facilitate infection. The loss of many PS-CP interactions towards the 3' end of the gRNA would allow this part of the genome to transit more easily through the narrow basal body of the pilus extruding machinery. This is the known first step in phage infection. In addition, each PS-CP dissociation event leaves the protein partner trapped in a non-lowest free-energy conformation. This destabilizes the protein shell which must disassemble during infection, further facilitating this stage of the life-cycle.


Subject(s)
Capsid Proteins , Levivirus , Virus Assembly , Capsid Proteins/chemistry , Genome, Viral/genetics , Levivirus/chemistry , Levivirus/pathogenicity , Levivirus/physiology , RNA, Viral/genetics , Virus Assembly/genetics
2.
Science ; 372(6547): 1220-1224, 2021 06 11.
Article in English | MEDLINE | ID: mdl-34112695

ABSTRACT

Viruses are ubiquitous pathogens of global impact. Prompted by the hypothesis that their earliest progenitors recruited host proteins for virion formation, we have used stringent laboratory evolution to convert a bacterial enzyme that lacks affinity for nucleic acids into an artificial nucleocapsid that efficiently packages and protects multiple copies of its own encoding messenger RNA. Revealing remarkable convergence on the molecular hallmarks of natural viruses, the accompanying changes reorganized the protein building blocks into an interlaced 240-subunit icosahedral capsid that is impermeable to nucleases, and emergence of a robust RNA stem-loop packaging cassette ensured high encapsidation yields and specificity. In addition to evincing a plausible evolutionary pathway for primordial viruses, these findings highlight practical strategies for developing nonviral carriers for diverse vaccine and delivery applications.


Subject(s)
Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Capsid/metabolism , Directed Molecular Evolution , RNA, Messenger/metabolism , Amino Acid Substitution , Aquifex/enzymology , Bacterial Proteins/chemistry , Capsid/chemistry , Cryoelectron Microscopy , Multienzyme Complexes/chemistry , Multienzyme Complexes/genetics , Multienzyme Complexes/metabolism , Nucleocapsid/chemistry , Nucleocapsid/genetics , Nucleocapsid/metabolism , Protein Domains , Protein Structure, Secondary , Protein Subunits , RNA, Messenger/chemistry , RNA, Messenger/genetics , Ribonucleases/metabolism
3.
Proc Natl Acad Sci U S A ; 114(46): 12255-12260, 2017 11 14.
Article in English | MEDLINE | ID: mdl-29087310

ABSTRACT

Satellite tobacco necrosis virus (STNV) is one of the smallest viruses known. Its genome encodes only its coat protein (CP) subunit, relying on the polymerase of its helper virus TNV for replication. The genome has been shown to contain a cryptic set of dispersed assembly signals in the form of stem-loops that each present a minimal CP-binding motif AXXA in the loops. The genomic fragment encompassing nucleotides 1-127 is predicted to contain five such packaging signals (PSs). We have used mutagenesis to determine the critical assembly features in this region. These include the CP-binding motif, the relative placement of PS stem-loops, their number, and their folding propensity. CP binding has an electrostatic contribution, but assembly nucleation is dominated by the recognition of the folded PSs in the RNA fragment. Mutation to remove all AXXA motifs in PSs throughout the genome yields an RNA that is unable to assemble efficiently. In contrast, when a synthetic 127-nt fragment encompassing improved PSs is swapped onto the RNA otherwise lacking CP recognition motifs, assembly is partially restored, although the virus-like particles created are incomplete, implying that PSs outside this region are required for correct assembly. Swapping this improved region into the wild-type STNV1 sequence results in a better assembly substrate than the viral RNA, producing complete capsids and outcompeting the wild-type genome in head-to-head competition. These data confirm details of the PS-mediated assembly mechanism for STNV and identify an efficient approach for production of stable virus-like particles encapsidating nonnative RNAs or other cargoes.


Subject(s)
Capsid Proteins/chemistry , Genetic Engineering , Genome, Viral , RNA, Viral/chemistry , Tobacco necrosis satellite virus/genetics , Virus Assembly , Amino Acid Motifs , Binding Sites , Capsid Proteins/genetics , Capsid Proteins/metabolism , Gene Expression , Genome Size , Inverted Repeat Sequences , Protein Binding , Protein Conformation, alpha-Helical , Protein Conformation, beta-Strand , Protein Interaction Domains and Motifs , Protein Subunits , RNA, Viral/genetics , RNA, Viral/metabolism , Tobacco necrosis satellite virus/metabolism , Tobacco necrosis satellite virus/ultrastructure , Virus Replication
4.
Bacteriophage ; 6(1): e1157666, 2016.
Article in English | MEDLINE | ID: mdl-27144089

ABSTRACT

Using RNA-coat protein crosslinking we have shown that the principal RNA recognition surface on the interior of infectious MS2 virions overlaps with the known peptides that bind the high affinity translational operator, TR, within the phage genome. The data also reveal the sequences of genomic fragments in contact with the coat protein shell. These show remarkable overlap with previous predictions based on the hypothesis that virion assembly is mediated by multiple sequences-specific contacts at RNA sites termed Packaging Signals (PSs). These PSs are variations on the TR stem-loop sequence and secondary structure. They act co-operatively to regulate the dominant assembly pathway and ensure cognate RNA encapsidation. In MS2, they also trigger conformational change in the dimeric capsomere creating the A/B quasi-conformer, 60 of which are needed to complete the T=3 capsid. This is the most compelling demonstration to date that this ssRNA virus, and by implications potentially very many of them, assemble via a PS-mediated assembly mechanism.

SELECTION OF CITATIONS
SEARCH DETAIL
...