Abstract
A DNA strand-transfer reaction is an early step in the transposition of phage Mu. It has been shown that an efficient reaction in vitro requires, in addition to buffer and salt, only the Mu A protein, Mu B protein, host protein HU, ATP, and Mg2+. We have determined that, of the three protein factors involved, only the Mu B protein has an ATPase activity. The Mu B ATPase is stimulated by Mu A protein and DNA but not by either of these factors alone. Double-stranded DNA is a much better cofactor than single-stranded DNA, but there is no apparent sequence specificity. In the absence of the Mu B protein and/or ATP, the intermolecular Mu DNA strand-transfer reaction is extremely inefficient, and the strand-transfer products are predominantly the result of an intramolecular reaction. This contrasts with the efficient intermolecular reaction that occurs if Mu B protein and ATP are provided. The Mu B protein, in the presence of Mu A protein and protein HU, therefore, seems to facilitate interactions between potential DNA target sites and pairs of Mu DNA ends.
MeSH Terms
Adenosine Triphosphatases/metabolism
Coliphages/enzymology
DNA, Viral/metabolism,ultrastructure
Escherichia coli/enzymology
Kinetics
Microscopy, Electron
Nucleic Acid Conformation
Viral Proteins/metabolism
Chemicals
DNA, Viral
Viral Proteins
Adenosine Triphosphatases
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Maxwell A
Craigie R
Mizuuchi K
References (18)
18 references, click to expand
-
Kinetics of Mu DNA synthesis.
Mol Gen Genet. 1977 Mar 7;151(2):169-74
PMID: 876022
-
Mechanism of bacteriophage mu transposition.
Annu Rev Genet. 1986;20:385-429
PMID: 3028246
-
Predominant end-products of prophage Mu DNA transposition during the lytic cycle are replicon fusions.
J Mol Biol. 1981 Aug 15;150(3):341-59
PMID: 6271975
-
Conservative integration of bacteriophage Mu DNA into pBR322 plasmid.
Proc Natl Acad Sci U S A. 1982 Jul;79(14):4362-6
PMID: 6214783
-
In vitro transposition of bacteriophage Mu: a biochemical approach to a novel replication reaction.
Cell. 1983 Dec;35(3 Pt 2):785-94
PMID: 6317201
-
Transposition without duplication of infecting bacteriophage Mu DNA.
Nature. 1984 Oct 11-17;311(5986):580-1
PMID: 6090947
-
Site-specific recognition of the bacteriophage Mu ends by the Mu A protein.
Cell. 1984 Dec;39(2 Pt 1):387-94
PMID: 6094016
-
Mechanism of transposition of bacteriophage Mu: polarity of the strand transfer reaction at the initiation of transposition.
Cell. 1984 Dec;39(2 Pt 1):395-404
PMID: 6094017
-
The DNA dependence of the ATPase activity of DNA gyrase.
J Biol Chem. 1984 Dec 10;259(23):14472-80
PMID: 6094559
-
Cloning of the A gene of bacteriophage Mu and purification of its product, the Mu transposase.
J Biol Chem. 1985 Feb 10;260(3):1832-5
PMID: 2981873
-
Amplification and purification of the bacteriophage Mu encoded B transposition protein.
J Biol Chem. 1985 Mar 10;260(5):2662-9
PMID: 2982832
-
DNA sequences at the ends of the genome of bacteriophage Mu essential for transposition.
Proc Natl Acad Sci U S A. 1985 Apr;82(7):2087-91
PMID: 2984681
-
Mechanism of transposition of bacteriophage Mu: structure of a transposition intermediate.
Cell. 1985 Jul;41(3):867-76
PMID: 2988793
-
Transpositional recombination in prokaryotes.
Annu Rev Biochem. 1985;54:863-96
PMID: 2992361
-
A defined system for the DNA strand-transfer reaction at the initiation of bacteriophage Mu transposition: protein and DNA substrate requirements.
Proc Natl Acad Sci U S A. 1985 Nov;82(22):7570-4
PMID: 2999771
-
Role of DNA topology in Mu transposition: mechanism of sensing the relative orientation of two DNA segments.
Cell. 1986 Jun 20;45(6):793-800
PMID: 3011279
-
Co-operativity and enzymatic activity in polymer-activated enzymes. A one-dimensional piggy-back binding model and its application to the DNA-dependent ATPase of DNA gyrase.
J Mol Biol. 1986 Jul 20;190(2):201-14
PMID: 3025451
-
Involvement of phage Mu-1 early functions in Mu-mediated chromosomal rearrangements.
Nature. 1978 Feb 9;271(5645):580-2
PMID: 340966