Replication fork arrest at relocated replication terminators on the Bacillus subtilis chromosome

Author:

Franks A H1,Wake R G1

Affiliation:

1. Department of Biochemistry, University of Sydney, New South Wales, Australia.

Abstract

The replication terminus region of the Bacillus subtilis chromosome, comprising TerI and TerII plus the rtp gene (referred to as the terC region) was relocated to serC (257 degrees) and cym (10 degrees) on the anticlockwise- and clockwise-replicating segments of the chromosome, respectively. In both cases, it was found that only the orientation of the terC region that placed TerI in opposition to the approaching replication fork was functional in fork arrest. When TerII was opposed to the approaching fork, it was nonfunctional. These findings confirm and extend earlier work which involved relocations to only the clockwise-replicating segment, at metD (100 degrees) and pyr (139 degrees). In the present work, it was further shown that in the strain in which TerII was opposed to an approaching fork at metD, overproduction of the replication terminator protein (RTP) enabled TerII to function as an arrest site. Thus, chromosomal TerII is nonfunctional in arrest in vivo because of a limiting level of RTP. Marker frequency analysis showed that TerI at both cym and metD caused only transient arrest of a replication fork. Arrest appeared to be more severe in the latter situation and caused the two forks to meet at approximately 145 degrees (just outside or on the edge of the replication fork trap). The minimum pause time erected by TerI at metD was calculated to be approximately 40% of the time taken to complete a round of replication. This significant pause at metD caused the cells to become elongated, indicating that cell division was delayed. Further work is needed to establish the immediate cause of the delay in division.

Publisher

American Society for Microbiology

Subject

Molecular Biology,Microbiology

Reference25 articles.

1. Ahn K. S. 1994. Expression of the rtp gene of Bacillus subtilis. PhD. thesis. University of Sydney Sydney Australia.

2. Autoregulation of the gene encoding the replication terminator protein of Bacillus subtilis;Ahn K. S.;Gene,1993

3. Anagnostopoulos C. P. J. Piggot and J. A. Hoch. 1993. The genetic map of Bacillus subtilis p. 425-461. In A. L. Sonenshein J. A. Hoch and R. Losick (ed.) Bacillus subtilis and other gram-positive bacteria: biochemistry physiology and molecular genetics. American Society for Microbiology Washington D.C.

4. Replication arrest;Baker T. A.;Cell,1995

5. Sequence features of the replication terminus of the Bacillus subtilis chromosome;Carrigan C. M.;Nucleic Acids Res.,1987

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