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Teschke, C.

Publications and source records attributed to Teschke, C..

3 recordsLinked to original sources

A hydrophobic network: Intersubunit and intercapsomer interactions stabilizing the bacteriophage P22 capsid

dsDNA tailed phages and herpesviruses assemble their capsids using coat proteins that have the ubiquitous HK97 fold. Though this fold is common, we do not have a thorough understanding of the different ways viruses adapt it to maintain stability in various environments. The HK97-fold E-loop, which connects adjacent subunits at the outer periphery of capsomers, has been implicated in capsid stability. Here we show that in bacteriophage P22, residue W61 at the tip of the E-loop plays a role in stabilizing procapsids and in maturation. We hypothesize that a hydrophobic pocket is formed by residues I366 and W410 in the P-domain of a neighboring subunit within a capsomer, into which W61 fits like a peg. In addition, W61 likely bridges to residues A91 and L401 in P-domain loops of an adjacent capsomer, thereby linking the entire capsid together with a network of hydrophobic interactions. There is conservation of this hydrophobic network in the distantly related P22-like phages, indicating that this structural feature is likely important for stabilizing this family of phages. Thus, our data shed light on one of the varied elegant mechanisms used in nature to consistently build stable viral genome containers through subtle adaptation of the HK97 fold.\n\nIMPORTANCESimilarities in assembly reactions and coat protein structures of the dsDNA tailed phages and herpesviruses make phages ideal models to understand capsid assembly and identify potential targets for antiviral drug discovery. The coat protein E-loops of these viruses are involved in both intra-and intercapsomer interactions. In phage P22, hydrophobic interactions peg the coat protein subunits together within a capsomer, where the E-loop hydrophobic residue W61 of one subunit packs into a pocket of hydrophobic residues I366 and W410 of the adjacent subunit. W61 also makes hydrophobic interactions with A91 and L401 of a subunit in an adjacent capsomer. We show these intra-and intercapsomer hydrophobic interactions form a network crucial to capsid stability and proper assembly.

biochemistry

The architect of virus assembly: the portal protein complex nucleates procapsid assembly in bacteriophage P22

The genetic material of tailed dsDNA bacteriophages, herpesviruses and adenoviruses is packaged into a precursor capsid through a 12-mer ring-shaped protein complex called the portal protein, located at a unique 5-fold vertex. In several phages and viruses, including T4, {Phi}29, and HSV-1, the dodecameric portal protein forms a nucleation complex with scaffolding proteins to initiate procapsid assembly, thereby ensuring incorporation of only one portal complex per capsid. However, for bacteriophage P22, the role of its portal protein in initiation of procapsid assembly is unclear. We recently developed an in vitro P22 assembly assay where portal protein is co-assembled into procapsid-like particles. We also showed that scaffolding protein catalyzes oligomerization of monomeric portal protein into 12-mer rings, and possibly forming a scaffolding-protein nucleation complex that results in one portal complex per P22 procapsid. Here, we present evidence substantiating that P22 portal protein, similar to the other dsDNA viruses, can act as an assembly nucleator. We find that the presence of P22 portal protein is able to increase the rate of particle assembly. Additionally, we show that P22 portal protein proper contributes to proper morphology of the assembled particles. Our results highlight a key function of portal protein as an assembly initiator, a feature likely conserved among these classes of dsDNA viruses.

biochemistry

NMR Mapping of Disordered Segments from a Viral Scaffolding Protein Encapsulated in a 23 MDa Procapsid Complex

Scaffolding proteins are requisite for the capsid shell assembly of many tailed dsDNA bacteriophages, some archaeal viruses, herpesviruses, and adenoviruses. Despite their importance, no high-resolution structural information is available for scaffolding proteins within capsids. Here we use the inherent size limit of NMR to identify mobile segments of the phage P22 scaffolding protein in solution and when incorporated into a ~23 MDa procapsid complex. Free scaffolding protein gives NMR signals from both the N and C-terminus. When scaffolding protein is incorporated into P22 procapsids, NMR signals from the C-terminal helix-turn-helix (HTH) domain disappear due to binding to the procapsid interior. Signals from the N-terminal domain persist, indicating this segment retains flexibility when bound to procapsids. The unstructured character of the N-terminus coupled with its high content of negative charges, is likely important for the dissociation and release of scaffolding protein, during the genome packaging step accompanying phage maturation. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=63 SRC="FIGDIR/small/539965v1_ufig1.gif" ALT="Figure 1"> View larger version (14K): org.highwire.dtl.DTLVardef@15a637aorg.highwire.dtl.DTLVardef@138e675org.highwire.dtl.DTLVardef@a24879org.highwire.dtl.DTLVardef@441cfb_HPS_FORMAT_FIGEXP M_FIG C_FIG Scaffolding protein (SP) nucleates the assembly of phage P22 coat proteins into an icosahedral capsid structure that envelops the viral genome. NMR spectra of free SP show signals from the N-terminus (red) and a helix-turn-helix domain at the C-terminus (blue). When SP is incorporated into empty phage P22 procapsids to form a 23 MDa complex, the subset of signals from the N-terminal 40 residues persist indicating this segment is disordered. The unfolded nature of the N-terminus coupled with its negatively charged character, is important for the functional requirement of SP to exit the capsid as it becomes packaged with its genome.

biophysics