[C1 and cro repressors of lambda phages. I. Construction of vectors for expression of cro repressor of bacteriophage lambda imm434]. 1984

I N Bespalova, and P M Rubtsov, and M P Kirpichnikov, and K G Skriabin

Eight derivatives of recombinant plasmid pBRcro434, that consists of pBR322 and fragment of immunity region of phage lambda imm434 have been constructed and characterised. These derivatives contain the deletions in the region adjacent to OR3 operator and in the structural gene of cro-repressor of lambda imm434. The deletions have been produced by the treatment of pBRcro434 with exonuclease III of Escherichia coli and S1 nuclease of Aspergillus orizae and precisely mapped. The unique EcoRI-restriction sites have been reconstructed with the aim of using this deletion plasmids as a vectors for cloning.

UI MeSH Term Description Entries
D009154 Mutation Any detectable and heritable change in the genetic material that causes a change in the GENOTYPE and which is transmitted to daughter cells and to succeeding generations. Mutations
D009693 Nucleic Acid Hybridization Widely used technique which exploits the ability of complementary sequences in single-stranded DNAs or RNAs to pair with each other to form a double helix. Hybridization can take place between two complimentary DNA sequences, between a single-stranded DNA and a complementary RNA, or between two RNA sequences. The technique is used to detect and isolate specific sequences, measure homology, or define other characteristics of one or both strands. (Kendrew, Encyclopedia of Molecular Biology, 1994, p503) Genomic Hybridization,Acid Hybridization, Nucleic,Acid Hybridizations, Nucleic,Genomic Hybridizations,Hybridization, Genomic,Hybridization, Nucleic Acid,Hybridizations, Genomic,Hybridizations, Nucleic Acid,Nucleic Acid Hybridizations
D010582 Bacteriophage lambda A temperate inducible phage and type species of the genus lambda-like viruses, in the family SIPHOVIRIDAE. Its natural host is E. coli K12. Its VIRION contains linear double-stranded DNA with single-stranded 12-base 5' sticky ends. The DNA circularizes on infection. Coliphage lambda,Enterobacteria phage lambda,Phage lambda,lambda Phage
D010957 Plasmids Extrachromosomal, usually CIRCULAR DNA molecules that are self-replicating and transferable from one organism to another. They are found in a variety of bacterial, archaeal, fungal, algal, and plant species. They are used in GENETIC ENGINEERING as CLONING VECTORS. Episomes,Episome,Plasmid
D012097 Repressor Proteins Proteins which maintain the transcriptional quiescence of specific GENES or OPERONS. Classical repressor proteins are DNA-binding proteins that are normally bound to the OPERATOR REGION of an operon, or the ENHANCER SEQUENCES of a gene until a signal occurs that causes their release. Repressor Molecules,Transcriptional Silencing Factors,Proteins, Repressor,Silencing Factors, Transcriptional
D002850 Chromatography, Gel Chromatography on non-ionic gels without regard to the mechanism of solute discrimination. Chromatography, Exclusion,Chromatography, Gel Permeation,Chromatography, Molecular Sieve,Gel Filtration,Gel Filtration Chromatography,Chromatography, Size Exclusion,Exclusion Chromatography,Gel Chromatography,Gel Permeation Chromatography,Molecular Sieve Chromatography,Chromatography, Gel Filtration,Exclusion Chromatography, Size,Filtration Chromatography, Gel,Filtration, Gel,Sieve Chromatography, Molecular,Size Exclusion Chromatography
D002874 Chromosome Mapping Any method used for determining the location of and relative distances between genes on a chromosome. Gene Mapping,Linkage Mapping,Genome Mapping,Chromosome Mappings,Gene Mappings,Genome Mappings,Linkage Mappings,Mapping, Chromosome,Mapping, Gene,Mapping, Genome,Mapping, Linkage,Mappings, Chromosome,Mappings, Gene,Mappings, Genome,Mappings, Linkage
D004262 DNA Restriction Enzymes Enzymes that are part of the restriction-modification systems. They catalyze the endonucleolytic cleavage of DNA sequences which lack the species-specific methylation pattern in the host cell's DNA. Cleavage yields random or specific double-stranded fragments with terminal 5'-phosphates. The function of restriction enzymes is to destroy any foreign DNA that invades the host cell. Most have been studied in bacterial systems, but a few have been found in eukaryotic organisms. They are also used as tools for the systematic dissection and mapping of chromosomes, in the determination of base sequences of DNAs, and have made it possible to splice and recombine genes from one organism into the genome of another. EC 3.21.1. Restriction Endonucleases,DNA Restriction Enzyme,Restriction Endonuclease,Endonuclease, Restriction,Endonucleases, Restriction,Enzymes, DNA Restriction,Restriction Enzyme, DNA,Restriction Enzymes, DNA
D004279 DNA, Viral Deoxyribonucleic acid that makes up the genetic material of viruses. Viral DNA
D005786 Gene Expression Regulation Any of the processes by which nuclear, cytoplasmic, or intercellular factors influence the differential control (induction or repression) of gene action at the level of transcription or translation. Gene Action Regulation,Regulation of Gene Expression,Expression Regulation, Gene,Regulation, Gene Action,Regulation, Gene Expression

Related Publications

I N Bespalova, and P M Rubtsov, and M P Kirpichnikov, and K G Skriabin
February 1982, Bioscience reports,
I N Bespalova, and P M Rubtsov, and M P Kirpichnikov, and K G Skriabin
December 2004, Journal of theoretical biology,
I N Bespalova, and P M Rubtsov, and M P Kirpichnikov, and K G Skriabin
January 1980, Methods in enzymology,
I N Bespalova, and P M Rubtsov, and M P Kirpichnikov, and K G Skriabin
September 1983, Journal of molecular biology,
I N Bespalova, and P M Rubtsov, and M P Kirpichnikov, and K G Skriabin
January 1982, Doklady Akademii nauk SSSR,
I N Bespalova, and P M Rubtsov, and M P Kirpichnikov, and K G Skriabin
January 1981, Journal of molecular and applied genetics,
I N Bespalova, and P M Rubtsov, and M P Kirpichnikov, and K G Skriabin
September 1991, FEBS letters,
I N Bespalova, and P M Rubtsov, and M P Kirpichnikov, and K G Skriabin
April 1981, Nature,
I N Bespalova, and P M Rubtsov, and M P Kirpichnikov, and K G Skriabin
March 2001, Molecular biotechnology,
I N Bespalova, and P M Rubtsov, and M P Kirpichnikov, and K G Skriabin
January 1997, Methods in molecular biology (Clifton, N.J.),
Copied contents to your clipboard!