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Two-step cloning and expression in Escherichia coli of the DNA restriction-modification system StyLTI of Salmonella typhimurium.

The StyLTI restriction-modification system is common to most strains of the genus Salmonella, including Salmonella typhimurium. We report here the two-step cloning of the genes controlling the StyLTI system. The StyLTI methylase gene (mod) was cloned first. Then, the companion endonuclease gene (res) was introduced on a compatible vector. A strain of S. typhimurium sensitive to the coliphage lambda was constructed and used to select self-modifying recombinant phages from a Res- Mod+ S. typhimurium genomic library in the lambda EMBL4 cloning vector. The methylase gene of one of these phages was then subcloned in pBR328 and transferred into Escherichia coli. In the second step, the closely linked endonuclease and methylase genes were cloned together on a single DNA fragment inserted in pACYC184 and introduced into the Mod+ E. coli strain obtained in the first step. Attempts to transform Mod- E. coli or S. typhimurium strains with this Res+ Mod+ plasmid were unsuccessful, whereas transformation of Mod+ strains occurred at a normal frequency. This can be understood if the introduction of the StyLTI genes into naive hosts is lethal because of degradation of host DNA by restriction activity; in contrast to most restriction-modification systems, StyLTI could not be transferred into naive hosts without killing them. In addition, it was found that strains containing only the res gene are viable and lack restriction activity in the absence of the companion mod gene. This suggests that expression of the StyLTI endonuclease activity requires at least one polypeptide involved in the methylation activity, as is the case for types I and III restriction-modification systems but not for type II systems.

Cloning, Molecular↗

DMB (DNMT-magnetic beads) assay: measuring DNA methyltransferase activity in vitro.

DNA methylation is an epigenetic modification of DNA that leads to heritable alterations in transcriptional regulation and conformational changes in chromatin structure of higher eukaryotes. Mammalian DNA methyltransferases, which are the enzymes responsible for DNA methylation, have attracted the attention of both basic and clinical researchers because they appear to participate in embryogenesis and carcinogenesis via chromatin modification. DNA methyltransferase catalyzes the transfer of a methyl group into DNA strands. Since traditional assays for DNA methyltransferase activity in vitro have insufficient reproducibility, there is a need in the art for more sensitive and quantitative methods for measuring enzymatic activity. We report a novel assay system, in which the activity of a DNA methyltransferase is measured as the incorporation of tritium into biotinylated DNA oligonucleotides. The DNA is immobilized onto magnetic beads with streptavidin covalently attached to the bead surface. The radioactive DNA can easily be separated from the unreacted radioactive substrate using a magnet. The radioactivity is counted by the liquid scintillation system. This DMB assay is simple and easy, has very low background, and, most importantly, is highly reproducible for the precise enzymatic analysis of any DNA methyltransferase in vitro.

Animals↗

A new method for detection of small modifications in genomic DNA, applied to the human delta-beta globin gene cluster.

Cloned DNA fragments were subcloned in filamentous coliphages fd 103 or M 13; the recombinant single-stranded DNAs were then used to form hybrids with genomic DNA as well as with complementary recombinant single-stranded DNA. Hybrids were submitted to S1-nuclease treatment alone or in combination with restriction enzyme digestions. This method was used to analyze the delta-beta globin gene cluster from the total genomic DNA of a beta 0-thalassemic patient. A modification located approximately 530 base pairs upstream from the cap site of the beta-globin gene was detected in only one thalassemic chromosome of this patient. Sequence analysis have shown that the patient was homozygous for a single nucleoside change (dC----dT) which remains undetected by our hybridization method, leading to a codon 39 nonsense mutation; they have demonstrated too that he was heterozygous for the modification mentioned and detected by S1-nuclease, which corresponds to an additional sequence d(T-A-T-A) in a 52 alternating purine-pyrimidine run, leading to a complex change from d[(A-T)7(T)7] to d[(A-T)11(T)3].

Base Sequence↗

Inhibition of simian virus 40 DNA replication by specific modification of T-antigen with oxidized ATP.

We covalently bound periodate-oxidized ATP (oATP) to purified simian virus 40 (SV40) large T-antigen and determined the effect of this modification on viral DNA replication and three other biochemical activities of T-antigen. The oATP bound specifically to T-antigen, inhibiting the ATPase activity and preventing T-antigen from activating SV40 DNA replication in vitro. In contrast, binding of oATP had no effect on the DNA-binding activity of T-antigen nor on its ability to form a complex with DNA polymerase alpha. These results provide direct biochemical evidence suggesting that the T-antigen ATPase activity is necessary for viral DNA replication.

Adenosine Triphosphatases↗

DNA restriction and modification systems in Salmonella. III. SP, a Salmonella potsdam system allelic to the SB system in Salmonella typhimurium.

By screening 42 Salmonella strains with P3, a temperate bacteriophage with an unusually wide host range, five new DNA restriction and modification systems (R-M systems) were identified in five different serotypes in Kauffmann-White group C. One of these systems, SP, in a Pl-sensitive strain of S. potsdam, was analyzed genetically by Pl transduction methods in which SP was transferred into S. typhimurium and C. coli/S. typhimurium hybrids. It was found that the genes of the SP system were allelic and functionally homologous to the genes of the SB system of S. typhimurium.

Alleles↗

Site-specific DNA substrates for human excision repair: comparison between deoxyribose and base adducts.

BACKGROUND: The genetic integrity of living organisms is maintained by a complex network of DNA repair pathways. Nucleotide excision repair (NER) is a versatile process that excises bulky base modifications from DNA. To study the substrate range of this system, we constructed bulky deoxyribose adducts that do not affect the chemistry of the corresponding bases. These novel adducts were incorporated into double-stranded DNA in a site-specific manner and the repair of the modified sites was investigated. RESULTS: Using restriction enzymes as a probe for DNA modification, we confirmed that the resulting substrates contained the bulky deoxyribose adducts at the expected position. DNA containing these unique adducts did not stimulate DNA repair synthesis when mixed with an NER-competent human cell extract. Inefficient repair of deoxyribose adducts was confirmed by monitoring the release of single-stranded oligonucleotides during the excision reaction that precedes DNA repair synthesis. As a control, the same human cell extract was able to process a base adduct of comparable size. CONCLUSIONS: Our results indicate that modification of DNA bases rather than disruption of the sugar-phosphate backbone is an important determinant for damage recognition by the human NER system. Specific positions in DNA may thus be modified without eliciting NER responses. This observation suggests new strategies for anticancer drug design to generate DNA modifications that are refractory to repair processes.

DNA Adducts↗

[Modification of the DNA of bacteriophage Sd in situ by O-beta-diethylaminoethylhydroxylamine].

The interaction of a O-derivated analog of hydroxylamine-O-beta-diethylaminoethyl-hydroxylamine (OHA) with bacteriophage SD DNA in situ was studied. It was established that OHA modifies the cytidine of phage DNA up to 2% from the total cytidine quantity. The terminal ratio products of modification cytidine corresponds to the ration of modification products for completely denaturated DNA. The results obtained are interpreted in terms of locally denaturated regions spaced in the whole genome of SD bacteriophage.

Bacteriophages↗

Human DNA methyltransferase 1 is required for maintenance of the histone H3 modification pattern.

DNA methyltransferase 1 (DNMT1) plays an essential role in murine development and is thought to be the enzyme primarily responsible for maintenance of the global methylation status of genomic DNA. However, loss of DNMT1 in human cancer cells affects only the methylation status of a limited number of pericentromeric sequences. Here we show that human cancer cells lacking DNMT1 display at least two important differences with respect to wild type cells: a profound disorganization of nuclear architecture, and an altered pattern of histone H3 modification that results in an increase in the acetylation and a decrease in the dimethylation and trimethylation of lysine 9. Additionally, this phenotype is associated with a loss of interaction of histone deacetylases (HDACs) and HP1 (heterochromatin protein 1) with histone H3 and pericentromeric repetitive sequences (satellite 2). Our data indicate that DNMT1 activity, via maintenance of the appropriate histone H3 modifications, contributes to the preservation of the correct organization of large heterochromatic regions.

Animals↗

Active-site modification of mammalian DNA polymerase beta with pyridoxal 5'-phosphate: mechanism of inhibition and identification of lysine 71 in the deoxynucleoside triphosphate binding pocket.

Pyridoxal 5'-phosphate is a potent inhibitor of the DNA polymerase activity of recombinant rat DNA polymerase beta. Kinetic studies indicate that the mechanism of PLP inhibition is complex. In a lower range of PLP concentration, inhibition is competitive with respect to substrate dNTP, whereas at higher levels of PLP several forms of enzyme combine with PLP and are involved in the overall inhibition, and a possible model for these interactions during the catalytic process is suggested. Reduction of the PLP-treated enzyme with sodium [3H]borohydride results in covalent incorporation of about 4 mol of PLP/mol of enzyme, and the modified enzyme is not capable of DNA polymerase activity. The presence of dNTP during the modification reaction blocks incorporation of 1 mol of PLP/mol of enzyme, and the enzyme so modified is almost fully active. This protective effect is not observed in the absence of template-primer. Tryptic peptide mapping of the PLP-modified enzyme reveals four major sites of modification. Of these four sites, only one is protected by dNTP from pyridoxylation. Sequence analysis of the tryptic peptide corresponding to the protected site reveals that it spans residues 68-80 in the amino acid sequence of the enzyme, with Lys 71 as the site of pyridoxylation. These results indicate that Lys 71 is at or near the binding pocket for the dNTP substrate.

Amino Acid Sequence↗

Sumo-1 modification regulates the DNA binding activity of heat shock transcription factor 2, a promyelocytic leukemia nuclear body associated transcription factor.

Heat shock transcription factor 2 (HSF2) is a transcription factor that regulates heat shock protein gene expression, but the mechanisms regulating the function of this factor are unclear. Here we report that HSF2 is a substrate for modification by the ubiquitin-related protein SUMO-1 and that HSF2 colocalizes in cells with SUMO-1 in nuclear granules. Staining with anti-promyelocytic leukemia antibodies indicates that these HSF2-containing nuclear granules are PML bodies. Our results identify lysine 82 as the major site of SUMO-1 modification in HSF2, which is located in a "wing" within the DNA-binding domain of this protein. Interestingly, SUMO-1 modification of HSF2 results in conversion of this factor to the active DNA binding form. This is the first demonstration that SUMO-1 modification can directly alter the DNA binding ability of a transcription factor and reveals a new mechanism by which SUMO-1 modification can regulate protein function.

Biological Transport↗

[Enzymatic ligation of DNA fragments containing phosphoamide modification of the internucleotide bonds].

DNA fragments with the point amidophosphate (cyclohexylamido- or morpholido-) modification in the sugar-phosphate backbone were synthesized and separated into individual diastereoisomer. The isomers were separated by the reversed-phase HPLC (RPC), and chirality at phosphorus was assigned by a stereochemical correlation scheme using phosphorothioate standards. The RPC-retention time values for Rp-isomers were found to be lower than for Sp-analogues. Amidophosphate DNA fragments were used as P- and OH-components in the T4 DNA-ligation. The enzyme does not ligate amidated fragments with modified internucleotide linkage near 5'- or 3'-end, independently of the amidophosphate chirality. When an unmodified phosphodiester linkage separates the amidophosphate group from 3'-end in O-component, the ligation occurs only with Sp-isomer, whereas Rp-analogue does not give the ligation product. In the P-component of the ligation, configuration of the modified linkage separated from 5'-phosphate by an unmodified linkage does not affect the result of the enzymatic reaction: both Sp-and Rp-stereomers do take part in the ligation. As a result of the ligation of the modified fragments on unmodified templates a set of 31-mers was obtained. They contain FokI and EcoRI recognition sites with the cleavage points of both endonucleases coinciding and being amidated. Upon treatment of duplex DNA consisted of unmodified and amidated strands with these endonucleases Sp-configuration did not hinder the cleavage of the unmodified strand, whereas Rp-configuration inhibited the EcoRI and did not affect the FokI cleavage.

Base Sequence↗

Cleavage properties of site-specific restriction endonucleases.

Among the various restriction sites present on a DNA molecule, the restriction endonucleases prefer specific ones. This site preference may be an inherent property of the restriction endonucleases or may reflect the complexities inherent in the DNA molecule. The site preference of restriction endonucleases can be amplified by the use of intercalators that bind to DNA. This can lead to the production of large and partially cleaved DNA fragments. General protein inhibitors that react with sulfhydryl groups can affect the activities of some restriction endonucleases. This can result in the formation of partially digested DNA fragments. Another approach leading to the formation of large DNA fragments involves base substitution or modification of DNA molecules. New restriction sites can be exposed by relaxing the specificity of some restriction endonucleases. Under conditions of relaxed specificity, the recognition sequence shrinks to the core sequence, which is usually two nucleotides shorter than the normal recognition sequence. When the core restriction sequences are unmasked by relaxation of restriction-endonuclease specificity, the normal restriction sequences inaccessible in some DNAs can be exposed by the prevention of DNA modification. All manipulations described here lead to the formation of DNA fragments that are different (large or new) from normal restriction-endonuclease digestion products. These DNA fragments have potential applications in the mapping of DNA, gene-cloning experiments, and genetic experiments on deletion or substitution.

DNA Restriction Enzymes↗

Methylation status of Sillago japonica satellite DNA examined by bisulfite modification.

A member of Sillago japonica satellite DNA contained internal subrepeats in its 174 bp unit. S. Japonica genomic DNA isolated from liver tissue was subjected to bisulfite modification, and the DNA sequences of about 40 bp flanked by both subrepeats were amplified by polymerase chain reaction (PCR). This protocol, combination of bisulfite reaction and PCR, converts cytosines in the genomic DNA to thymines in the amplified DNA, whereas 5-methylcytosines in the genomic DNA remain as cytosines. Sequence analysis of the amplified DNA fragments revealed that most of the cytosine residues at CpG were methylated in this region.

Animals↗

Regulation of a restriction and modification system via DNA inversion in Mycoplasma pulmonis.

An invertible DNA element of 6.8 kb, designated the hsd1 locus, was identified in the chromosome of Mycoplasma pulmonis. Infection of host cells with mycoplasma virus P1 revealed that the organism's restriction and modification (R-M) properties are controlled by inversion of hsd1. The nucleotide sequence of hsd1 revealed several genes, the predicted amino acids of which bear striking similarity to the subunits of the type I R-M enzymes previously found only in enteric bacteria.

Amino Acid Sequence↗

Changing nucleosome positions in vivo through modification of the DNA rotational information.

The effects of the rotational information of DNA in determining the in vivo localization of nucleosomal core particles (ncps) have been studied in the Saccharomyces cerevisiae 5 S rRNA repeat gene. The distribution of the phased series of flexibility signals present in this DNA has been altered by inserting in its centre a 25 bp tract. The effects of such alteration on the in vivo distribution of the helically phased, alternatively located ncps have been determined relative to a reference 21 bp insertion mutant. The results show that the answers provided in vitro and in vivo by the yeast 5 S rRNA gene sequence to specific modifications of the DNA rotational frame are similar, thus pointing to the relevance of DNA rotational information in vivo.

Chromosomes, Fungal↗

Site-specific DNA transesterification by vaccinia topoisomerase: effects of benzo[alpha]pyrene-dA, 8-oxoguanine, 8-oxoadenine and 2-aminopurine modifications.

Vaccinia DNA topoisomerase forms a covalent DNA-(3'-phosphotyrosyl)-enzyme intermediate at a specific target site 5'-C+5C+4C+3T+2T+1p downward arrow N-1 in duplex DNA. Here we study the effects of base modifications on the rate and extent of single-turnover DNA transesterification. Chiral trans opened C-10 R and S adducts of benzo[a]pyrene (BP) 7,8-diol 9,10-epoxide were introduced at single N6-deoxyadenosine (dA) positions within the 3'-G+5G+4G+3A+2A+1T-1A-2 sequence of the nonscissile DNA strand. The R and S BPdA adducts intercalate from the major groove on the 5' and 3' sides of the modified base, respectively, and perturb local base stacking. We found that R and S BPdA modifications at +1A reduced the transesterification rate by a factor of 700-1000 without affecting the yield of the covalent topoisomerase-DNA complex. BPdA modifications at +2A reduced the extent of transesterification and elicited rate decrements of 200- and 7000-fold for the S and R diastereomers, respectively. In contrast, BPdA adducts at the -2 position had no effect on the extent of the reaction and relatively little impact on the rate of cleavage. A more subtle probe of major groove contacts entailed substituting each of the purines of the nonscissile strand with its 8-oxo analog. The +3 oxoG modification slowed transesterification 35-fold, whereas other 8-oxo modifications were benign. 8-Oxo substitutions at the -1 position in the scissile strand slowed single-turnover cleavage by a factor of six but had an even greater slowing effect on religation, which resulted in an increase in the cleavage equilibrium constant. 2-Aminopurine at positions +3, +4, or +5 in the nonscissile strand had no effect on transesterification per se but had synergistic effects when combined with 8-oxoA at position -1 in the scissile strand. These findings illuminate the functional interface of vaccinia topoisomerase with the DNA major groove.

7,8-Dihydro-7,8-dihydroxybenzo(a)pyrene 9,10-oxide↗

[Interaction of DNA and hydrogen peroxide. A method of localizing pyrimidine bases in DNA].

Incomplete modification with hydrogen peroxide of the DNA fragments labeled at one terminus is shown to be useful for localisation of C and T residues along the polynucleotide chain. The fragments can be split at modified residues with piperidine after hydrogen peroxide treatment. The rate of the reaction of the single-stranded fragments is extremely fast, much higher than that of the double-stranded DNA. Splitting of the DNA takes place at C if pH 7,4, and at T at pH 9,6. The modification can be used to investigate the DNA structure and function.

Base Sequence↗