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DNA sequence requirements for replication of polyomavirus DNA in vivo and in vitro
C Prives1, Y Murakami, F G Kern
1Department of Biological Sciences, Columbia University, New York, New York 10027.
Abstract:
Cell extracts of FM3A mouse cells replicate polyomavirus (Py) DNA in the presence of immunoaffinity-purified Py large T antigen, deoxynucleoside triphosphates, ATP, and an ATP-generating system. This system was used to examine the effects of mutations within or adjacent to the Py core origin (ori) region in vitro. The analysis of plasmid DNAs containing deletions within the early-gene side of the Py core ori indicated that sequences between nucleotides 41 and 57 define the early boundary of Py DNA replication in vitro. This is consistent with previously published studies on the early-region sequence requirements for Py replication in vivo. Deleting portions of the T-antigen high-affinity binding sites A and B (between nucleotides 57 and 146) on the early-gene side of the core ori led to increased levels of replication in vitro and to normal levels of replication in vivo. Point mutations within the core ori region that abolish Py DNA replication in vivo also reduced replication in vitro. A mutant with a reversed orientation of the Py core ori region replicated in vitro, but to a lesser extent that wild-type Py DNA. Plasmids with deletions on the late-gene side of the core ori, within the enhancer region, that either greatly reduced or virtually abolished Py DNA replication in vivo replicated to levels similar to those of wild-type Py DNA plasmids in vitro. Thus, as has been observed with simian virus 40, DNA sequences needed for Py replication in vivo are different from and more stringent than those required in vitro.
Insights
Polyomavirus (Py) DNA replication in vitro was studied using cell extracts. Key DNA sequences essential for in vivo replication were found to be less critical in vitro, highlighting differences in replication requirements.
Area of Science:
- Molecular Biology
- Virology
- Genetics
Background:
- Polyomavirus (Py) DNA replication is a complex process involving viral and cellular factors.
- Understanding the precise DNA sequences and regulatory elements governing Py DNA replication is crucial for deciphering viral pathogenesis.
Purpose of the Study:
- To investigate the role of specific DNA sequences within the Py core origin (ori) and adjacent regions in viral DNA replication.
- To compare the in vitro replication requirements with in vivo findings to identify sequence-dependent differences.
Main Methods:
- Utilized cell extracts from FM3A mouse cells for in vitro replication assays.
- Employed immunoaffinity-purified Py large T antigen, deoxynucleoside triphosphates, and an ATP-generating system.
- Constructed and analyzed plasmid DNAs with various deletions and point mutations within the Py core ori and enhancer regions.
Main Results:
- Identified nucleotides 41–57 as the early boundary for Py DNA replication in vitro, consistent with in vivo studies.
- Deletion of T-antigen binding sites A and B increased in vitro replication but maintained normal in vivo levels.
- Mutations abolishing in vivo replication also reduced in vitro replication, while enhancer region deletions had minimal impact on in vitro replication.
Conclusions:
- Py DNA replication in vitro is less stringent regarding specific DNA sequences compared to in vivo replication.
- The study reveals distinct sequence requirements for Py DNA replication in vitro versus in vivo, similar to observations with simian virus 40.
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