NMR structure of a vestigial nuclease provides insight into the evolution of functional transitions in viral dsDNA packaging motors.
Nucleic Acids Res. 2020 Oct 21;:
Authors: Mahler BP, Bujalowski PJ, Mao H, Dill EA, Jardine PJ, Choi KH, Morais MC
Abstract
Double-stranded DNA viruses use ATP-powered molecular motors to package their genomic DNA. To ensure efficient genome encapsidation, these motors regulate functional transitions between initiation, translocation, and termination modes. Here, we report structural and biophysical analyses of the C-terminal domain of the bacteriophage phi29 ATPase (CTD) that suggest a structural basis for these functional transitions. Sedimentation experiments show that the inter-domain linker in the full-length protein promotes oligomerization and thus may play a role in assembly of the functional motor. The NMR solution structure of the CTD indicates it is a vestigial nuclease domain that likely evolved from conserved nuclease domains in phage terminases. Despite the loss of nuclease activity, fluorescence binding assays confirm the CTD retains its DNA binding capabilities and fitting the CTD into cryoEM density of the phi29 motor shows that the CTD directly binds DNA. However, the interacting residues differ from those identified by NMR titration in solution, suggesting that packaging motors undergo conformational changes to transition between initiation, translocation, and termination. Taken together, these results provide insight into the evolution of functional transitions in viral dsDNA packaging motors.
PMID: 33089330 [PubMed - as supplied by publisher]
Novel functional insight in protein complex, possible new target for antibiotics - Phys.org
Novel functional insight in protein complex, possible new target for antibiotics - Phys.org
Novel functional insight in protein complex, possible new target for antibiotics Phys.orgResearchers at Utrecht University have gained new insights into the structure and function of a protein complex that maintains the outer membrane of a bacteria.
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New Protein Evolution Insight Could Improve Drug Design - Drug Discovery & Development
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New Protein Evolution Insight Could Improve Drug Design
Drug Discovery & Development
The team used a variety of techniques to characterize the two versions of the enzyme, including X-ray crystallography and nuclear magnetic resonance, analyses of DHFR amino-acid sequences and evaluations of the enzyme's functionality in cells and in ...
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New Protein Evolution Insight Could Improve Drug Design - Drug Discovery & Development
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Abstract
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