Initiation of genetic recombination: homologous pairing between duplex DNA molecules promoted by recA protein. 1980

E Cassuto, and S C West, and J Mursalim, and S Conlon, and P Howard-Flanders

recA protein has been shown to promote hydrogen bonding between single-stranded DNA fragments and duplex DNA molecules homologous to them. However, genetic and biochemical evidence indicates that genetic exchanges generally take place between duplex molecules. We therefore chose to study the interactions promoted by recA protein between intact duplex DNA molecules and molecules containing gaps that are believed to increase the frequency of genetic exchanges. In the present paper, we show that incubation of intact and gap-containing plasmid DNA in the presence of recA protein leads to homologous pairing between duplex molecules which can be detected by centrifugation analysis and electron microscopy. The reaction is completely dependent on an active recA gene product, on genetic homology between the DNA species involved, and on the presence of ATP; under certain conditions, its efficiency can be increased considerably by the presence of the single-stranded DNA binding protein of Escherichia coli.

UI MeSH Term Description Entries
D008854 Microscopy, Electron Microscopy using an electron beam, instead of light, to visualize the sample, thereby allowing much greater magnification. The interactions of ELECTRONS with specimens are used to provide information about the fine structure of that specimen. In TRANSMISSION ELECTRON MICROSCOPY the reactions of the electrons that are transmitted through the specimen are imaged. In SCANNING ELECTRON MICROSCOPY an electron beam falls at a non-normal angle on the specimen and the image is derived from the reactions occurring above the plane of the specimen. Electron Microscopy
D008962 Models, Theoretical Theoretical representations that simulate the behavior or activity of systems, processes, or phenomena. They include the use of mathematical equations, computers, and other electronic equipment. Experimental Model,Experimental Models,Mathematical Model,Model, Experimental,Models (Theoretical),Models, Experimental,Models, Theoretic,Theoretical Study,Mathematical Models,Model (Theoretical),Model, Mathematical,Model, Theoretical,Models, Mathematical,Studies, Theoretical,Study, Theoretical,Theoretical Model,Theoretical Models,Theoretical Studies
D011938 Rec A Recombinases A family of recombinases initially identified in BACTERIA. They catalyze the ATP-driven exchange of DNA strands in GENETIC RECOMBINATION. The product of the reaction consists of a duplex and a displaced single-stranded loop, which has the shape of the letter D and is therefore called a D-loop structure. Rec A Protein,RecA Protein,Recombinases, Rec A
D011995 Recombination, Genetic Production of new arrangements of DNA by various mechanisms such as assortment and segregation, CROSSING OVER; GENE CONVERSION; GENETIC TRANSFORMATION; GENETIC CONJUGATION; GENETIC TRANSDUCTION; or mixed infection of viruses. Genetic Recombination,Recombination,Genetic Recombinations,Recombinations,Recombinations, Genetic
D002352 Carrier Proteins Proteins that bind or transport specific substances in the blood, within the cell, or across cell membranes. Binding Proteins,Carrier Protein,Transport Protein,Transport Proteins,Binding Protein,Protein, Carrier,Proteins, Carrier
D004269 DNA, Bacterial Deoxyribonucleic acid that makes up the genetic material of bacteria. Bacterial DNA
D004277 DNA, Single-Stranded A single chain of deoxyribonucleotides that occurs in some bacteria and viruses. It usually exists as a covalently closed circle. Single-Stranded DNA,DNA, Single Stranded,Single Stranded DNA
D004926 Escherichia coli A species of gram-negative, facultatively anaerobic, rod-shaped bacteria (GRAM-NEGATIVE FACULTATIVELY ANAEROBIC RODS) commonly found in the lower part of the intestine of warm-blooded animals. It is usually nonpathogenic, but some strains are known to produce DIARRHEA and pyogenic infections. Pathogenic strains (virotypes) are classified by their specific pathogenic mechanisms such as toxins (ENTEROTOXIGENIC ESCHERICHIA COLI), etc. Alkalescens-Dispar Group,Bacillus coli,Bacterium coli,Bacterium coli commune,Diffusely Adherent Escherichia coli,E coli,EAggEC,Enteroaggregative Escherichia coli,Enterococcus coli,Diffusely Adherent E. coli,Enteroaggregative E. coli,Enteroinvasive E. coli,Enteroinvasive Escherichia coli
D000251 Adenosine Triphosphatases A group of enzymes which catalyze the hydrolysis of ATP. The hydrolysis reaction is usually coupled with another function such as transporting Ca(2+) across a membrane. These enzymes may be dependent on Ca(2+), Mg(2+), anions, H+, or DNA. ATPases,Adenosinetriphosphatase,ATPase,ATPase, DNA-Dependent,Adenosine Triphosphatase,DNA-Dependent ATPase,DNA-Dependent Adenosinetriphosphatases,ATPase, DNA Dependent,Adenosinetriphosphatases, DNA-Dependent,DNA Dependent ATPase,DNA Dependent Adenosinetriphosphatases,Triphosphatase, Adenosine
D001426 Bacterial Proteins Proteins found in any species of bacterium. Bacterial Gene Products,Bacterial Gene Proteins,Gene Products, Bacterial,Bacterial Gene Product,Bacterial Gene Protein,Bacterial Protein,Gene Product, Bacterial,Gene Protein, Bacterial,Gene Proteins, Bacterial,Protein, Bacterial,Proteins, Bacterial

Related Publications

E Cassuto, and S C West, and J Mursalim, and S Conlon, and P Howard-Flanders
January 1991, Biochimie,
E Cassuto, and S C West, and J Mursalim, and S Conlon, and P Howard-Flanders
February 1988, Seikagaku. The Journal of Japanese Biochemical Society,
E Cassuto, and S C West, and J Mursalim, and S Conlon, and P Howard-Flanders
October 1979, Proceedings of the National Academy of Sciences of the United States of America,
E Cassuto, and S C West, and J Mursalim, and S Conlon, and P Howard-Flanders
January 1992, Journal of molecular biology,
E Cassuto, and S C West, and J Mursalim, and S Conlon, and P Howard-Flanders
January 1982, The Journal of biological chemistry,
E Cassuto, and S C West, and J Mursalim, and S Conlon, and P Howard-Flanders
October 1980, Tanpakushitsu kakusan koso. Protein, nucleic acid, enzyme,
E Cassuto, and S C West, and J Mursalim, and S Conlon, and P Howard-Flanders
October 1989, The Journal of biological chemistry,
E Cassuto, and S C West, and J Mursalim, and S Conlon, and P Howard-Flanders
February 1991, Proceedings of the National Academy of Sciences of the United States of America,
E Cassuto, and S C West, and J Mursalim, and S Conlon, and P Howard-Flanders
May 1980, Cell,
E Cassuto, and S C West, and J Mursalim, and S Conlon, and P Howard-Flanders
November 1980, Cell,
Copied contents to your clipboard!