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R Kolodner

Publications and source records attributed to R Kolodner.

At least 55 records · Page 3Linked to original sources

Plasmid recombination intermediates generated in a Saccharomyces cerevisiae cell-free recombination system.

We have developed an assay utilizing Saccharomyces cerevisiae cell extracts to catalyze recombination in vitro between homologous plasmids containing different mutant alleles of the tet gene. Electrophoretic analysis of product DNA indicated that a number of novel DNA species were formed during the reaction. These species migrated through agarose gels as distinct bands with decreased electrophoretic mobility compared with the substrate DNA. The DNA from each individual band was purified and shown to be enriched 5- to 100-fold for tetracycline-resistant recombinants by using a transformation assay. The structure of the DNA molecules present in these bands was determined by electron microscopy. Recombination between circular substrates appeared to involve the formation and processing of figure-eight molecules, while recombination between circular and linear substrates involved the formation of molecules in which a circular monomer had a monomer-length linear tail attached at a region of homology.

Alleles↗

Escherichia coli strains containing mutations in the structural gene for topoisomerase I are recombination deficient.

Mutations in the gene encoding topoisomerase I of Escherichia coli were tested for their effect on plasmid recombination. Recombination was decreased 1,000-fold at 30 and 37 degrees C and occurred at approximately wild-type frequencies at 42 degrees C. The suppression of topA mutations at 42 degrees C did not appear to be a result of increased topoisomerase I activity at 42 degrees C.

DNA Topoisomerases, Type I↗

Exonuclease VIII of Escherichia coli. II. Mechanism of action.

Exonuclease VIII from Escherichia coli was shown to preferentially degrade linear duplex DNA, although a limited amount of activity with single-stranded linear DNA substrates was detected. No nucleolytic activity was observed with double-stranded circular substrates containing single strand breaks or gaps. Exonuclease VIII was shown to degrade linear duplex DNA from the 5' termini of the molecules and proceed in the 5' to 3' direction via a processive reaction mechanism. Initiation could occur from either a 5'-hydroxyl or 5'-phosphate residue at equal rates. The products of degradation of linear duplex DNA were an equivalent amount of 5'-mononucleotides and single-stranded DNA. Possible roles for exonuclease VIII in genetic recombination are discussed.

Base Sequence↗

Exonuclease VIII of Escherichia coli. I. Purification and physical properties.

Exonuclease VIII is an enzyme whose synthesis is induced as a result of sbcA mutations. The enzyme has been purified to near homogeneity from an Escherichia coli strain containing an sbcA mutation and mutations in the structural genes for exonuclease III, exonuclease V, and endonuclease I. The enzyme specifically degrades linear duplex DNA in a reaction which requires magnesium ions and is susceptible to inhibition by other divalent cations and by sulfhydryl-blocking reagents. Enzyme activity occurs over a broad pH range with peak activity at pH 8.5 in Tris buffer. The protein has a subunit Mr = 140,000, a sedimentation coefficient of 8.4 +/- 0.6, and a Stokes radius of 142 +/- 6 A, which is consistent with its active form being a multimer. Exonuclease VIII has a frictional coefficient of 2.6 which indicates that it has an asymmetric structure.

DNA, Viral↗

Genetic recombination of bacterial plasmid DNA. Physical and genetic analysis of the products of plasmid recombination in Escherichia coli.

Derivatives of plasmid pBR322 DNA containing tet mutations were constructed by inserting XhoI linkers at various sites in the tetracycline resistance gene. Monomer plasmids containing either the tet-10 allele located at nucleotide position 23 or the tet-14 allele located at nucleotide position 1267 were used to construct a circular dimer containing one copy of each allele and a circular trimer containing one copy of the tet-10 allele and two copies of the tet-14 allele. Genetic recombination of these plasmid DNAs to produce a functional tetracycline resistance gene could be detected as the production of tetracycline-resistant progeny during the growth of transformants or using a restriction mapping assay which detected the rearrangement of the mutant alleles. The structure of individual tetracycline-resistant recombination products was determined by restriction mapping. This analysis suggested that as many as 70% of the plasmid recombination events in Escherichia coli AB1157 could have involved gene conversion events. The formation of these recombination products was most easily predicted by a model involving figure 8 recombination intermediates and the formation of symmetric regions of heteroduplex. Recombination in JC10287 delta(srlR-recA)304 occurred at 5% of the wild-type frequency and appeared to occur by a similar mechanism. Recombination in JC9604 recA56 recB21 recC22 sbcA23 occurred at 20 times the wild-type frequency and appeared to involve multiple independent recombination events.

DNA Restriction Enzymes↗

Genetic recombination of homologous plasmids catalyzed by cell-free extracts of Saccharomyces cerevisiae.

We have developed an in vitro system utilizing yeast cell-free extracts to catalyze recombination events between homologous plasmids containing different mutant alleles of the Tet or ARG4 genes. The reaction increased the frequency of Tcr or Arg+ transformants (recombinants) from 2 X 10(-6) to 1-3 X 10(-3). Linearizing one substrate between the two tet mutations stimulated the reaction 2 to 4 fold. The reaction required rATP, Mg++, NAD, and DTT. The rad52-1 mutation decreased the reaction between linear and circular substrates 5 to 6 fold but had little effect with circular substrates. The structures of Tcr plasmids was analyzed by restriction endonuclease mapping and was consistent with a recombination reaction involving crossing-over and gene conversion. Recombination products were also observed directly by subjecting reaction mixtures to electrophoretic analysis. These results indicate that recombination events were catalyzed by the yeast extract.

Cell-Free System↗

The evolution of genes: the chicken preproinsulin gene.

We have characterized a clone carrying a chicken preproinsulin gene, which is present in only one copy in the chicken genome. The gene contains two introns: a 3.5 kb intron interrupting the region encoding the connecting peptide and a 119 bp intron interrupting the DNA corresponding to the 5' non-coding region of the mRNA. This is similar to the structure of rat insulin gene II; therefore it represents the common ancestor. Since the rat insulin gene I lacks a 499 bp intron in the coding region, the rat genes have evolved by a recent gene duplication followed by loss of this intron in one copy. The divergences between insulin gene sequences, and also between globin genes, show that changes at introns and silent positions in coding regions appear very rapidly (7 X 10(-9) substitutions per nucleotide site per year), but that the accumulation of changes in these sites saturates, although not completely, after about 100 million years. From this we conclude that not all of these sites are neutral and that they do not behave as accurate evolutionary clocks over long periods of time. However, nucleotide substitutions leading to amino acid replacements are an excellent clock. Our analysis indicates that this clock is driven by selection.

Animals↗

Cloning and direct examination of a structurally abnormal human beta 0-thalassemia globin gene.

Restriction endonuclease mapping permitted identification of a form of beta 0-thalassemia in which a partial deletion of the beta-globin structural gene occurred [Orkin, S. H., Old, J. M., Weatherall, D. J. & Nathan, D. G. (1979) Proc. Natil. Acad. Sci. USA 76, 2400-2404]. To analyze its structure more directly, this abnormal human gene has now been cloned in bacteriophage lambda gtWES. Restriction mapping of the cloned gene and of a normal beta-globin gene contained in the phage H beta G1 confirmed previous findings regarding the presence of a deletion toward the 3' end of the gene but could not establish its position more accurately. Electron microscopy of the hybrid of the beta-thalassemia gene with globin RNA (R-loop analysis) provided unequivocal evidence for a deletion with the beta-globin structural gene. Hybridization of restriction fragments of the mutant gene with homologous fragments of H beta G1 (heteroduplex analysis) revealed a continuous, internal deletion of about 0.6 kilobase of DNA in the mutant gene and permitted its localization within the beta-globin gene region. This deletion removed the terminal third of the large intervening sequence within the beta-globin gene, the entire 3' coding block (extending from codon 105 to the end of the gene), and approximately 150 base pairs of DNA past the end of the normal globin gene.

Bacteriophage lambda↗

Genetic recombination of bacterial plasmid DNA: electron microscopic analysis of in vitro intramolecular recombination.

a tetramer of pMB9 DNA containing a single EcoRI site per tetramer was used to investigate intramolecular recombination in Escherichia coli. When transformed into wild-type E. coli strains, the tetramer was converted into dimers and a small proportion of trimers and monomers. The conversion was blocked in recA strains and rec B recC recF strains but not in recB recC strains or recF strains. Extracts of E. coli converted the tetramer into dimers, trimers, and monomers. Figure of 8 molecules and catenanes were minor products. The proportion of recombinant molecules ranged from 7% to 14%. Intramolecular recombination in vitro was blocked in extracts of recA strains and recB recC recF strains but not significantly blocked in extracts of recB recC strains and recF strains. recA protein restored activity to recA extracts; activity in recB recC recF extracts was restored by purified exonuclease V (recBC nuclease) or a recF protein donor extract. Novobiocin and oxolinic acid inhibited the reaction by 70-80%.

Bacterial Proteins↗

The structure of rat preproinsulin genes.

In rat there are two nonallelic insulins, I and II. We have cloned and sequenced double stranded cDNA copies of both preproinsulin mRNA I and II. Using the cloned sequence as probe, we established by the Southern blotting technique a restriction map of the two chromosomal genes. This map indicates that an intron exists within the insulin II gene. To examine this in more detail, we have isolated both genes from a library of rat DNA cloned in phage lambda. Restriction endonuclease analysis and direct DNA sequencing revealed that gene II contains two introns: a 490 base pair intron between the region encoding amino acids 38 and 39 of proinsulin, and a 119 base pair intron, which is 17 base pairs upstream from the initiation codon. Gene I is not interrupted within the protein coding region, but possesses an intron homologous to the 119 base pair intron of insulin II. We are studying the structure of insulin genes from other species to determine if the 490 base pair intron was lost or inserted in the duplicated gene. We have identified nuclear RNA molecules larger than preproinsulin mRNA which contain the transcribed intronic sequences. These molecules represent a new precursor in insulin biosynthesis.

Adenoma, Islet Cell↗

The structure and evolution of the two nonallelic rat preproinsulin genes.

In the rat, there are two nonallelic genes for preproinsulin. The insulin end products are very similar and are equally expressed. We have isolated clones carrying these genes and their flanking sequences, and characterized them by DNA sequencing and electron microscopic analysis. We have established the primary structure of the preproinsulin mRNAs and the signal peptides of these two proteins. One of the genes contains two introns: a 499 bp intron interrupting the region encoding the connecting peptide and a 119 bp intron interrupting the segment encoding the 5 noncoding region of the mRNA. The introns are transcribed and present in a preproinsulin mRNA precursor. The other gene possesses the smaller, but not the larger, of the two introns. Calculations based on the divergence of the two preproinsulin nucleotide and amino acid sequences indicate that these genes are the products of a recent duplication. Thus one of the genes gained or lost an intron since that time.

Amino Acid Sequence↗

Inverted repeats in chloroplast DNA from higher plants.

The circular chloroplast DNAs from spinach, lettuce, and corn plants have been examined by electron microscopy and shown to contain a large sequence repeated one time in reverse polarity. The inverted sequence in spinach and lettuce chloroplast DNA has been found to be 24,400 base pairs long. The inverted sequence in the corn chloroplast DNA is 22,500 base pairs long. Denaturation mapping studies have shown that the structure of the inverted sequence is highly conserved in these three plants. Pea chloroplast DNA does not contain an inverted repeat. All of the circular dimers of pea chloroplast DNA are found to be in a head-to-tail confirmation. Circular dimers of spinach and lettuce were also found to have head-to-tail conformation. However, approximately 70-80% of the circular dimers in preparations of lettuce and spinach chloroplast DNA were found to be in a head-to-head conformation. We propose that the head-to-head circular dimers are formed by a recombination event between two circular monomers in the inverted sequence.

Journal Article↗

Gene 4 protein of bacteriophage T7. Purification physical properties, and stimulation of T7 DNA polymerase during the elongation of polynucleotide chains.

With the use of an in vitro complementation assay to measure activity, the gene 4 protein of bacteriophage T7 has been purified 1000-fold to yield a nearly homogeneous protein. The purified gene 4 protein is a single polypeptide having a molecular weight of 58,000. In addition to being essential for T7 DNA replication in vivo and in vitro, the gene 4 protein is required for DNA synthesis by the purified T7 DNA polymerase on duplex T7 DNA templates. In the absence of ribonucleoside 5'-triphosphates, DNA synthesis by the gene 4 protein and the T7 DNA polymerase is dependent on phosphodiester bond interruptions containing 3'-hydroxyl groups (nicks) in the duplex DNA. The reaction is specific for the T7 DNA polymerase, but any duplex DNA containing nicks can serve as template. The Km for nicks in the reaction is 3 x 10(-10) M.

Coliphages↗