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The mechanism of DNA replication primer synthesis by RNA polymerase

Abstract

RNA primers for DNA replication are usually synthesized by specialized enzymes, the primases1. However, some replication systems have evolved to use cellular DNA-dependent RNA polymerase for primer synthesis1,2. The main requirement for the replication primer, an exposed RNA 3′ end annealed to the DNA template, is not compatible with known conformations of the transcription elongation complex3, raising a question of how the priming is achieved. Here we show that a previously unrecognized kind of transcription complex is formed during RNA polymerase-catalysed synthesis of the M13 bacteriophage replication primer. The complex contains an overextended RNA–DNA hybrid bound in the RNA-polymerase trough that is normally occupied by downstream double-stranded DNA, thus leaving the 3′ end of the RNA available for interaction with DNA polymerase. Transcription complexes with similar topology may prime the replication of other bacterial mobile elements and may regulate transcription elongation under conditions that favour the formation of an extended RNA–DNA hybrid.

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Figure 1: Properties of the priming complex.
Figure 2: Overextended RNA–DNA hybrid causes formation of the priming complex.
Figure 3: Structure of the priming complex.

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References

  1. Kornberg, A. & Baker, T. A. DNA Replication 2nd edn (Freeman, New York, 1992)

    Google Scholar 

  2. Geider, K. & Kornberg, A. Conversion of the M13 viral single strand to the double-stranded replicative forms by purified proteins. J. Biol. Chem. 249, 3999–4005 (1974)

    CAS  PubMed  Google Scholar 

  3. Nudler, E. Transcription elongation: structural basis and mechanisms. J. Mol. Biol. 288, 1–12 (1999)

    Article  CAS  Google Scholar 

  4. Zenkin, N. & Severinov, K. The role of RNA polymerase sigma subunit in promoter-independent initiation of transcription. Proc. Natl Acad. Sci. USA 101, 4396–4400 (2004)

    Article  ADS  CAS  Google Scholar 

  5. Horiuchi, K. Initiation mechanisms in replication of filamentous phage DNA. Genes Cells 2, 425–432 (1997)

    Article  CAS  Google Scholar 

  6. Komissarova, N. & Kashlev, M. Transcriptional arrest: Escherichia coli RNA polymerase translocates backward, leaving the 3′ end of the RNA intact and extruded. Proc. Natl Acad. Sci. USA 94, 1755–1760 (1997)

    Article  ADS  CAS  Google Scholar 

  7. Korzheva, N. et al. A structural model of transcription elongation. Science 289, 619–625 (2000)

    Article  ADS  CAS  Google Scholar 

  8. Nechaev, S. & Severinov, K. Inhibition of Escherichia coli RNA polymerase by bacteriophage T7 gene 2 protein. J. Mol. Biol. 289, 815–826 (1999)

    Article  CAS  Google Scholar 

  9. Kramer, M. G., Espinosa, M., Misra, T. K. & Khan, S. A. Characterization of a single-strand origin, ssoU, required for broad host range replication of rolling-circle plasmids. Mol. Microbiol. 33, 466–475 (1999)

    Article  CAS  Google Scholar 

  10. Kramer, M. G., Khan, S. A. & Espinosa, M. Plasmid rolling circle replication: identification of the RNA polymerase-directed primer RNA and requirement for DNA polymerase I for lagging strand synthesis. EMBO J. 16, 5784–5795 (1997)

    Article  CAS  Google Scholar 

  11. Masai, H. & Arai, K. Frpo: a novel single-stranded DNA promoter for transcription and for primer RNA synthesis of DNA replication. Cell 89, 897–907 (1997)

    Article  CAS  Google Scholar 

  12. Masukata, H. & Tomizawa, J. A mechanism of formation of a persistent hybrid between elongating RNA and template DNA. Cell 62, 331–338 (1990)

    Article  CAS  Google Scholar 

  13. Kashlev, M. et al. Histidine-tagged RNA polymerase of Escherichia coli and transcription in solid phase. Methods Enzymol. 274, 326–334 (1996)

    Article  CAS  Google Scholar 

  14. Kuznedelov, K., Korzheva, N., Mustaev, A. & Severinov, K. Structure-based analysis of RNA polymerase function: the largest subunit's rudder contributes critically to elongation complex stability and is not involved in the maintenance of RNA–DNA hybrid length. EMBO J. 21, 1369–1378 (2002)

    Article  CAS  Google Scholar 

  15. Mustaev, A. et al. Strategies and methods of cross-linking of RNA polymerase active center. Methods Enzymol. 371, 191–206 (2003)

    Article  CAS  Google Scholar 

Download references

Acknowledgements

This work is dedicated to Dmitry Salonin who inspired it. We thank A. Mustaev for crosslinking reagents. This work was supported by an NIH R01 grant and a Borroughs Wellcome Career Award to K.S.

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Correspondence to Nikolay Zenkin or Konstantin Severinov.

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Reprints and permissions information is available at npg.nature.com/reprintsandpermissions. The authors declare no competing financial interests.

Supplementary information

Supplementary Figure 1

This figure shows a schematic view of formation of the priming complex on bacteriophage M13 origin of replication during primer synthesis by DNA-dependent RNA polymerase. The unusual topology of the origin leads to conformational rearrangement during RNA polymerase transcription that extrudes the 3' end of the primer RNA, base-paired to template DNA, from the RNAP catalytic centre and makes it available for interaction with DNA polymerase. (DOC 78 kb)

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Zenkin, N., Naryshkina, T., Kuznedelov, K. et al. The mechanism of DNA replication primer synthesis by RNA polymerase. Nature 439, 617–620 (2006). https://doi.org/10.1038/nature04337

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