Progress in Botany pp 292-306 | Cite as
Replication: Arrest of Prokaryotic DNA Replication
Abstract
DNA replication can be separated into three distinct steps: initiation at an origin of replication, elongation, and termination. The vast majority of studies of DNA replication in prokaryotic and eukaryotic systems have been dedicated to understanding the nature and regulation of the events occurring at replication origins and to characterizing established elongating replication forks. In recent years, interest in termination of replication in prokaryotic systems has increased because of the potential role of this process as a coordinating link between the conclusion of a cycle of DNA replication and the onset of cell division. In E. coli cells, DNA replication initiates at a unique origin, oriC, and proceeds bidirectionally around the circular chromosome. The opposing replication forks meet roughtly 180° away from oriC in the terminus region, terC (Bird et al. 1972; Prescott and Kuempel 1972).
Keywords
Replication Fork Inverted Repeat Region Replication Arrest Helicase Assay Replication TerminusPreview
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References
- Ahn KS, Malo MS, Smith MT, Wake RG (1993) Gene 132: 7–13.PubMedCrossRefGoogle Scholar
- Bachmann BJ (1990) Microbiol Rev 54: 130–197.PubMedGoogle Scholar
- Baker T (1995) Cell 80: 521–524.PubMedCrossRefGoogle Scholar
- Bastia D, Germino J, Crosa JH (1981) Proc Natl Acad Sci USA 78: 2095–2099.PubMedCrossRefGoogle Scholar
- Bedrosian CL, Bastia D (1991) Proc Natl Acad Sci USA 88: 2618–2622.PubMedCrossRefGoogle Scholar
- Bierne H, Ehrlich SD, Michel B (1994) J Bacteriol 176: 4165–4167.PubMedGoogle Scholar
- Bird RE, Louarn J, Martuscelli J et al. (1972) J Mol Biol 70: 549–566.PubMedCrossRefGoogle Scholar
- Brewer BJ, Fangman WL (1988) Cell 55: 637–643.PubMedCrossRefGoogle Scholar
- Brewer BJ, Lochshon D, Fangman WL (1992) Cell 71: 267–276.PubMedCrossRefGoogle Scholar
- Bruand C, Ehrlich SD, Janniere L (1991) EMBO J 10: 2171–2177.PubMedGoogle Scholar
- Bussiere DE, Bastia D, White SW (1995) Cell 80: 651–660.PubMedCrossRefGoogle Scholar
- Carrigan CM, Haarsma JA, Smith JA et al. (1987) Nucleic Acids Res 15: 8501–8509.PubMedCrossRefGoogle Scholar
- Carrigan CM, Pack RA, Smith MT et al. (1991) J Mol Biol 222: 197–207.PubMedCrossRefGoogle Scholar
- Coskun-Ari FF, Skokotas A, Moe GR et al. (1994) J Biol Chem 269: 4027–4034.PubMedGoogle Scholar
- Crosa JH, Luttrop L, Falkow S (1976) J Bacteriol 126: 454–466.PubMedGoogle Scholar
- deMassy B, Bejar S, Louarn J et al. (1987) Proc Natl Acad Sci USA 84: 1759–1763.CrossRefGoogle Scholar
- Francios V, Louarn J, Louarn J-M (1989) Mol Microbiol 3: 995–1002.CrossRefGoogle Scholar
- Gahn TA, Schildkraut CL (1989) Cell 58: 527–535.PubMedCrossRefGoogle Scholar
- Gottlieb PA, Wu S, Zhang X et al. (1992) J Biol Chem 267: 7434–7443.PubMedGoogle Scholar
- Greenfeder SA, Newlon CS (1992) Mol Cell Biol 12: 4056–4066.PubMedGoogle Scholar
- Handeli S, Klar A, Meuth M et al. (1989) Cell 57: 909–920.PubMedCrossRefGoogle Scholar
- Hernandez P, Lamm SS, Bjerknes CA et al. (1988) EMBO J 7: 303–308.PubMedGoogle Scholar
- Hiasa H, Marians KJ (1992) J Biol Chem 267: 11379–11385.PubMedGoogle Scholar
- Hiasa H, Marians KJ (1994) J Biol Chem 269: 26959–26968.PubMedGoogle Scholar
- Hidaka M, Akiyama M, Horiuchi T (1988) Cell 55: 467–475.PubMedCrossRefGoogle Scholar
- Hidaka M, Kobayashi T, Takenaka S et al. (1989) J Biol Chem 264: 21031–21037.PubMedGoogle Scholar
- Hidaka M, Kobayashi T, Horiuchi T (1991) J Bacteriol 173: 391–393.PubMedGoogle Scholar
- Hidaka M, Kobayashi T, Ishimi Y et al. (1992) J Biol Chem 267: 5361–5365.PubMedGoogle Scholar
- Hill TM (1992) Annu Rev Microbiol 46: 603–633.PubMedCrossRefGoogle Scholar
- Hill TM (1996) In: Escherichia coliand Salmonella thyphimurium: cellular and molecular biology ( 2nd edn ). Am Soc Microbiol, Washington, DC, pp 1602–1614.Google Scholar
- Hill TM, Marians KJ (1990) Proc Natl Acad Sci USA 87: 2481–2485.PubMedCrossRefGoogle Scholar
- Hill TM, Henson JM, Kuempel PL (1987) Proc Natl Acad Sci USA 84: 1754–1758.PubMedCrossRefGoogle Scholar
- Hill TM, Kopp BJ, Kuempel PL (1988a) J Bacteriol 170: 662–668.Google Scholar
- Hill TM, Pelletier AJ, Tecklenburg ML et al. (1988b) Cell 55: 459–466.CrossRefGoogle Scholar
- Hill TM, Tecklenburg ML, Pelletier AJ et al. (1989) Proc Natl Acad Sci USA 86: 1593–1597.PubMedCrossRefGoogle Scholar
- Horiuchi T, Hidaka M (1988) Cell 54: 515–523.PubMedCrossRefGoogle Scholar
- Kaul S, Mohanty BK, Sahoo T et al. (1994) Proc Natl Acad Sci USA 91: 11143–11147.PubMedCrossRefGoogle Scholar
- Khatri GS, MacAllister T, Sista PR et al. (1989) Cell 59: 667–674.PubMedCrossRefGoogle Scholar
- Kobayashi T, Hidaka M, Horiuchi T (1989) EMBO J 8: 2435–2441.PubMedGoogle Scholar
- Kobayashi T, Hidaka M, Nishizawa M et al. (1992) Mol Gen Genet 233: 355–362.PubMedCrossRefGoogle Scholar
- Kolter R, Helinski D (1978) J Mol Biol 124: 425–441.PubMedCrossRefGoogle Scholar
- Kralicek AV, Day AJ, Wake R et al. (1991) Biochem J 275: 823–833.PubMedGoogle Scholar
- Kuempel PL, Duerr SA (1979) Cold Spring Harbor Symp Quant Biol 43: 563–567.PubMedGoogle Scholar
- Kuempel PL, Duerr SA, Seeley NR (1977) Proc Natl Acad Sci USA 74: 3927–3931.PubMedCrossRefGoogle Scholar
- Kuempel PL, Duerr SA, Maglothin PD (1978) J Bacteriol 134: 902–912.PubMedGoogle Scholar
- Kuempel PL, Pelletier AJ, Hill TM (1989) Cell 59: 581–583.PubMedCrossRefGoogle Scholar
- Langley DB, Smith MT, Lewis PJ et al. (1993) Mol Microbiol 10: 771–779.PubMedCrossRefGoogle Scholar
- Lee EH, Romberg A (1992) J Biol Chem 267: 8778–8784.PubMedGoogle Scholar
- Lee EH, Romberg A, Hidaka M et al. (1989) Proc Natl Acad Sci USA 86: 9104–9108.PubMedCrossRefGoogle Scholar
- Lewis PJ, Wake RG (1989) J Bacteriol 171: 1402–1408.PubMedGoogle Scholar
- Lewis PJ, Smith MT, Wake RG (1989) J Bacteriol 171: 3564–3567.PubMedGoogle Scholar
- Lewis PJ, Ralston GB, Christopherson RI et al. (1990) J Mol Biol 214: 73–84.PubMedCrossRefGoogle Scholar
- Linskens MHK, Huberman JA (1988) Mol Cell Biol 8: 4927–4935.PubMedGoogle Scholar
- Little RD, Piatt HK, Schildkraut CL (1993) Mol Cell Biol 13: 6600–6613.PubMedGoogle Scholar
- Louarn J, Patte J, Louarn J-M (1977) J Mol Biol 115: 295–314.PubMedCrossRefGoogle Scholar
- Louarn J, Patte J, Louarn J-M (1979) Mol Gen Genet 172: 7–11.PubMedCrossRefGoogle Scholar
- Lovett MA, Sparks RB, Helinski DR (1975) Proc Natl Acad Sci USA 72: 2905–2909.PubMedCrossRefGoogle Scholar
- Masden CS, Ghivizzani SC, Hauswirth (1993) Mol Cell Biol 13: 2162–2171.Google Scholar
- Masters M, Broda P (1971) Nature New Biol 232: 137–140.PubMedGoogle Scholar
- Mehta PP, Bussiere DE, Hoffman DW et al. (1992) J Biol Chem 267: 18885–18889.PubMedGoogle Scholar
- Miyazaki C, Kawai Y, Ohtsubo H et al. (1988) J Mol Biol 204: 331–343.PubMedCrossRefGoogle Scholar
- Natarajan S, Kelley WL, Bastia D (1991) Proc Natl Acad Sci USA 88: 3867–3871.PubMedCrossRefGoogle Scholar
- Natarajan S, Kaul S, Miron A et al. (1993) Cell 72: 113–120.PubMedCrossRefGoogle Scholar
- Ohtsubo H, Vassino B, Ryder T et al. (1982) Gene 20: 245–254.PubMedCrossRefGoogle Scholar
- O’Sullivan MA, Anagnostopoulos C (1982) J Bacteriol 151: 135–143.PubMedGoogle Scholar
- Pabo C, Sauer R (1984) Annu Rev Biochem 53: 293–321.PubMedCrossRefGoogle Scholar
- Pelletier AJ, Hill TM, Kuempel PL (1989) J Bacteriol 171: 1739–1741.PubMedGoogle Scholar
- Prescott DM, Kuempel PL (1972) Proc Natl Acad Sci USA 69: 2842–2845.PubMedCrossRefGoogle Scholar
- Roecklein BA, Kuempel PL (1992) Mol Microbiol 6: 1655–1661.PubMedCrossRefGoogle Scholar
- Roecklein BA, Pelletier AJ, Kuempel PL (1991) Res Microbiol 142: 169–175.PubMedCrossRefGoogle Scholar
- Sahoo T, Mohanty BK, Petal I et al. (1995) EMBO J 14: 619–628.PubMedGoogle Scholar
- Schmid M (1996) In: Escherichia coliand Salmonella thyphimurium: cellular and molecular biology ( 2nd edn ). Am Soc Microbiol, Washington, DC, pp 1662–1671.Google Scholar
- Sharma B, Hill TM (1992) J Bacteriol 174: 7854–7858.PubMedGoogle Scholar
- Sista PR, Mukherjee S, Patel P et al. (1989) Proc Natl Acad Sci USA 86: 3026–3030.PubMedCrossRefGoogle Scholar
- Sista PR, Hutchinson CA, Bastia D (1991) Genes Dev 5: 74–82.PubMedCrossRefGoogle Scholar
- Skokotas A, Wrobleski M, Hill TM (1994) J Biol Chem 269: 20446–20455.PubMedGoogle Scholar
- Skokotas A, Hiasa H, Marians KJ et al. (1995) J Biol Chem 269: 20446–20455.Google Scholar
- Smith MT, Wake RG (1988) J Bacteriol 170: 4083–4090.PubMedGoogle Scholar
- Smith MT, Wake RG (1992) J Mol Biol 227: 648–657.PubMedCrossRefGoogle Scholar
- Smith MT, Langley DB, Wake RG (1994) J Mol Biol 241: 335–340.PubMedCrossRefGoogle Scholar
- Weiss AS, Wake RG (1983) J Mol Biol 171: 119–137.PubMedCrossRefGoogle Scholar
- Weiss AS, Wake RG (1984a) J Mol Biol 179: 745–750.CrossRefGoogle Scholar
- Weiss AS, Wake RG (1984b) Cell 39: 683–689.CrossRefGoogle Scholar
- Weiss AS, Hariharan IK, Wake RG (1981) Nature (Lond) 293: 673–675.CrossRefGoogle Scholar
- Yoshikawa H, Wake RG (1993) In: Sonenshein AL, Hoch JA, Losick R (eds) Bacillus subtilisand other Gram-positive bacteria: biochemistry, physiology and molecular genetics. Am Soc Microbiol, Washington, DC, pp 507–528.Google Scholar
- Young PA, Wake RG (1994) J Mol Biol 240: 275–280.PubMedCrossRefGoogle Scholar