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PMID: 320003 Published · ppublish English Journal Article

Bacteriophage-T7-induced DNA-priming protein. A novel enzyme involved in DNA replication.

European journal of biochemistry ·Vol. 72 ·No. 3 ·1977-02-00 ·Pages 543-58

Scherzinger E, Lanka E, Morelli G, Seiffert D, Yuki A

Abstract

The T7gene-4 protein has been purified to near homogeneity using a complementation assay in vitro, and it is designated T7 DNA-priming protein (DNA primase). The purified enzyme enables T7 DNA polymerase to initate DNA synthesis on various circular single-stranded DNA templates by a mechanism which involes the synthesis of a very short RNA primer. The oligoribonucleotide, which is linked to the product DNA via a 3':5'-phosphodiester bond, starts with pppA-C and terminates predominantly with AMP. When only ATP and CPT are precursors, the RNA primer is found to be primarily a tetranucleotide of the sequence pppA-C-C-A. Using oligoribonucleotides in place of ribonucleoside triphosphates as chain initators, T7 DNA-priming protein drastically increases the efficiency with which T7 DNA polymerase can utilize particular tetranucleotide primers containing A and C residues. T7 DNA-priming protein also enables T7 DNA polymerase to make use of native or nicked duplex T7 DNA as template-primer. This reaction does not require ribonucleoside triphosphates, although their addition enhances DNA synthesis 2--4 fold. The product formed in their absence is covalently attached to the template DNA and is found to contain a few long branches when examined by electron microscopy. In the presence of ribonucleoside triphosphates most of the newly made product arises from imitation of DNA chains de novo. Incubation of three proteins: T7 DNA-priming protein, T7 DNA polymerase, and T7 DNA-binding protein, with ribonucleoside and deoxyribonucleoside triphosphates, and with phiX174DNA as template leads to the generation of 'rolling circle-like' structures as visualized in the electron microscope. Single-stranded regions at the tail-circle junction indicate that initations can occur de novo on the displaced complementary strand. This is consistent with a discontinuous mode of 'lagging' strand synthesis and suggests that the same proteins may also be responsible for fork propagation in vivo.

MeSH Terms
Bacterial Proteins/isolation & purification,physiology Coliphages/metabolism DNA Replication DNA, Circular/metabolism DNA, Single-Stranded/metabolism DNA-Directed DNA Polymerase/metabolism Escherichia coli/metabolism Kinetics Microscopy, Electron Molecular Weight Nucleic Acid Conformation Nucleoproteins/isolation & purification,physiology Oligoribonucleotides Templates, Genetic Viral Proteins/isolation & purification,physiology
Chemicals
Bacterial Proteins DNA, Circular DNA, Single-Stranded Nucleoproteins Oligoribonucleotides Viral Proteins DNA-Directed DNA Polymerase
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Scherzinger E
Lanka E
Morelli G
Seiffert D
Yuki A
Article Info
Journal
European journal of biochemistry
Abbr.
Eur J Biochem
ISSN
0014-2956
Published
1977-02-00
Pages
543-58
Language
English
Region
England
NLM ID
0107600
Subset
IM
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