4.8 Article

Cryo-EM structure and in vitro DNA packaging of a thermophilic virus with supersized T=7 capsids

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1813204116

关键词

virus assembly; DNA packaging; capsid; portal protein; cryo-EM

资金

  1. Wellcome Trust [108466, 206377]
  2. Wellcome Trust-National Institutes of Health Studentship [103460]
  3. Intramural Research Program of National Institute of Arthritis and Musculoskeletal and Skin Diseases
  4. Russian Foundation for Basic Research Grant [16-34-60137]
  5. Biotechnology and Biological Sciences Research Council [L021250/1]
  6. National Institutes of Health [R01GM10407]
  7. University of Leeds Astbury BioStructure Laboratory award
  8. BBSRC [BB/L021250/1] Funding Source: UKRI

向作者/读者索取更多资源

Double-stranded DNA viruses, including bacteriophages and herpesviruses, package their genomes into preformed capsids, using ATP-driven motors. Seeking to advance structural and mechanistic understanding, we established in vitro packaging for a thermostable bacteriophage, P23-45 of Thermus thermophilus. Both the unexpanded procapsid and the expanded mature capsid can package DNA in the presence of packaging ATPase over the 20 degrees C to 70 degrees C temperature range, with optimum activity at 50 degrees C to 65 degrees C. Cryo-EM reconstructions for the mature and immature capsids at 3.7-angstrom and 4.4-angstrom resolution, respectively, reveal conformational changes during capsid expansion. Capsomer interactions in the expanded capsid are reinforced by formation of intersubunit beta-sheets with N-terminal segments of auxiliary protein trimers. Unexpectedly, the capsid has T=7 quasi-symmetry, despite the P23-45 genome being twice as large as those of known T=7 phages, in which the DNA is compacted to near-crystalline density. Our data explain this anomaly, showing how the canonical HK97 fold has adapted to double the volume of the capsid, while maintaining its structural integrity. Reconstructions of the procapsid and the expanded capsid defined the structure of the single vertex containing the portal protein. Together with a 1.95-angstrom resolution crystal structure of the portal protein and DNA packaging assays, these reconstructions indicate that capsid expansion affects the conformation of the portal protein, while still allowing DNA to be packaged. These observations suggest a mechanism by which structural events inside the capsid can be communicated to the outside.

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