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Rescue of Recombinant Newcastle Disease Virus from cDNA
Published on: October 11, 2013
Nuclease resistant circular DNAs copurify with infectivity in scrapie and CJD
1Yale University Medical School, 333 Cedar Street, New Haven, CT 06510, USA. laura.manuelidis@yale.edu
Abstract:
In transmissible encephalopathies (TSEs), it is commonly believed that the host prion protein transforms itself into an infectious form that encodes the many distinct TSE agent strains without any nucleic acid. Using a Ф29 polymerase and chromatography strategy, highly infectious culture and brain preparations of three different geographic TSE agents all contained novel circular DNAs. Two circular "Sphinx" sequences, of 1.8 and 2.4 kb, copurified with infectious particles in sucrose gradients and, as many protected viruses, resisted nuclease digestion. Each contained a replicase ORF related to microviridae that infect commensal Acinetobacter. Infectious gradient fractions also contained nuclease-resistant 16 kb mitochondrial DNAs and analysis of >4,000 nt demonstrated a 100% identity with their species-specific sequences. This confirmed the fidelity of the newly identified sequences detailed here. Conserved replicase regions within the two Sphinx DNAs were ultimately detected by PCR in cytoplasmic preparations from normal cells and brain but were 2,500-fold less than in parallel-infected samples. No trace of the two Sphinx replicases was found in enzymes, detergents, or other preparative materials using exhaustive PCR cycles. The Sphinx sequences uncovered here could have a role in TSE infections despite their apparently symbiotic, low-level persistence in normal cells and tissues. These, as well as other cryptic circular DNAs, may cause or contribute to neurodegeneration and infection-associated tumor transformation. The current results also raise the intriguing possibility that mammals may incorporate more of the prokaryotic world in their cytoplasm than previously recognized.
Insights
Novel circular DNAs, termed "Sphinx" sequences, were discovered in transmissible spongiform encephalopathies (TSEs). These DNA elements may play a role in TSE pathogenesis and neurodegeneration.
Area of Science:
- Neuroscience
- Virology
- Molecular Biology
Background:
- Transmissible spongiform encephalopathies (TSEs) are conventionally attributed to prion protein misfolding.
- The role of nucleic acids in TSE pathogenesis remains a subject of investigation.
Purpose of the Study:
- To investigate the potential presence of novel nucleic acid structures in TSE infectious agents.
- To identify any genetic material associated with TSE infectivity.
Main Methods:
- Utilized Ф29 polymerase and chromatography for purification of infectious TSE agents.
- Employed sucrose gradient ultracentrifugation and nuclease digestion assays.
- Conducted Polymerase Chain Reaction (PCR) to detect specific DNA sequences in infected and normal tissues.
Main Results:
- Identified novel circular DNA sequences, named "Sphinx" (1.8 and 2.4 kb), within infectious TSE preparations.
- Sphinx DNA sequences contained replicase open reading frames (ORFs) related to Microviridae.
- Detected Sphinx DNA replicase regions in normal cells and brain tissue at significantly lower levels than in infected samples.
Conclusions:
- Sphinx DNA sequences may be involved in TSE infections, despite their low-level presence in normal tissues.
- These circular DNA elements could contribute to neurodegeneration and tumor formation.
- The findings suggest a potentially greater role for prokaryotic elements in mammalian cytoplasm than previously understood.
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