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Structural details of the thermophilic filamentous bacteriophage PH75 determined by polarized Raman microspectroscopy
Masamichi Tsuboi1, James M Benevides, Priya Bondre
1Division of Cell Biology and Biophysics, School of Biological Sciences, University of Missouri-Kansas City, 5100 Rockhill Road, Kansas City, Missouri 64110, USA.
Abstract:
The filamentous virus PH75, which infects the thermophile Thermus thermophilus, consists of a closed DNA strand of 6500 nucleotides encapsidated by 2700 copies of a 46-residue coat subunit (pVIII). The PH75 virion is similar in composition to filamentous viruses infecting mesophilic bacteria but is distinguished by in vivo assembly at 70 degrees C and thermostability to at least 90 degrees C. Structural details of the PH75 assembly are not known, although a fiber X-ray diffraction based model suggests that capsid subunits are highly alpha-helical and organized with the same symmetry (class II) as in the mesophilic filamentous phages Pf1 and Pf3 [Pederson et al. (2001) J. Mol. Biol. 309, 401-421]. This is distinct from the symmetry (class I) of phages fd and M13. We have employed polarized Raman microspectroscopy to obtain further details of PH75 architecture. The spectra are interpreted in combination with known Raman tensors for modes of the pVIII main chain (amide I) and Trp and Tyr side chains to reveal the following structural features of PH75: (i) The average pVIII peptide group is oriented with greater displacement from the virion axis than peptide groups of fd, Pf1, or Pf3. The data correspond to an average helix tilt angle of 25 degrees in PH75 vs 16 degrees in fd, Pf1, and Pf3. (ii) The indolyl ring of Trp 37 in PH75 projects nearly equatorially from the subunit alpha-helix axis, in contrast to the more axial orientations for Trp 26 of fd and Trp 38 of Pf3. (iii) The phenolic rings of Tyr 15 and Tyr 39 project along the subunit helix axis, and one phenoxyl engages in hydrogen-bonding interaction that has no counterpart in either fd or Pf1 tyrosines. Also, in contrast to fd, Pf1, and Pf3, the packaged DNA genome of PH75 exhibits no Raman anisotropy, suggesting that DNA bases are not oriented unidirectionally within the nucleocapsid assembly. The structural findings are discussed in relation to intrasubunit and intersubunit interactions that may confer hyperthermostability to the PH75 virion. A refined molecular model is proposed for the PH75 capsid subunit.
Insights
This study reveals the unique thermostable structure of filamentous phage PH75, highlighting its coat protein orientation and DNA arrangement, crucial for survival at high temperatures.
Area of Science:
- Structural biology
- Virology
- Biophysics
Background:
- Filamentous phage PH75 infects the thermophile Thermus thermophilus, assembling in vivo at 70°C and exhibiting thermostability up to 90°C.
- Previous models suggest PH75 shares class II symmetry with phages Pf1 and Pf3, distinct from class I phages like fd and M13.
- Detailed structural information regarding PH75's assembly and thermostability mechanisms remains largely unknown.
Purpose of the Study:
- To elucidate the detailed architecture of the PH75 virion using polarized Raman microspectroscopy.
- To investigate the structural basis for PH75's hyperthermostability.
- To propose a refined molecular model for the PH75 capsid subunit.
Main Methods:
- Polarized Raman microspectroscopy was employed to analyze the PH75 virion structure.
- Spectra were interpreted using known Raman tensors for pVIII coat protein main chain (amide I) and Trp/Tyr side chains.
- Comparison with structural data from phages fd, Pf1, and Pf3 was performed.
Main Results:
- The pVIII coat protein subunits in PH75 exhibit a greater displacement from the virion axis (25° helix tilt) compared to other filamentous phages (16°).
- Specific orientations of tryptophan (Trp 37) and tyrosine (Tyr 15, Tyr 39) side chains were identified, including a unique hydrogen-bonding interaction involving a tyrosine residue.
- The PH75 genome's DNA shows no Raman anisotropy, indicating a lack of unidirectional base orientation within the nucleocapsid, unlike in fd, Pf1, and Pf3.
Conclusions:
- The unique structural features, including pVIII subunit orientation and specific side-chain interactions, likely contribute to PH75's exceptional thermostability.
- The random orientation of DNA bases may be a consequence of the high-temperature assembly process or contribute to viral stability.
- A refined molecular model for the PH75 capsid subunit is proposed based on these spectroscopic findings.
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