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Actions of human DNA glycosylases on uracil-containing DNA, methylated DNA and their reconstituted chromatins.

Extracts of human lymphoblastoid cells catalyzed complete release of uracil (Ura) from PBS1 DNA, which contains Ura instead of thymine as a normal component (Ura-DNA), and 3-methyladenine (3-MeAde) from DNA methylated with methyl methanesulfonate (Me-DNA). These two activities, Ura-DNA glycosylase and 3-MeAde-DNA glycosylase, differed in heat stability. Cell extracts released Ura more rapidly and 3-MeAde more slowly from alkali-denatured preparations of Ura- and Me-DNA, respectively, than from native DNA's. On incubation with reconstituted chromatins, prepared from Ura-DNA and Me-DNA, respectively, with calf thymus chromosomal protein by salt gradient dialysis, cell extracts released all the Ura but only about half of the 3-MeAde residues, although both these chromatins were degraded by micrococcal nuclease until about half of the nucleotides became acid soluble. The activities of Ura-DNA and 3-MeAde-DNA glycosylase of xeroderma pigmentosum cells were similar to those of normal cells.

Animals

Evidence for a relationship between DNA methylation and DNA replication from studies of the 5-azacytidine-reactivated allocyclic X chromosome.

We examined the sequence of DNA synthesis of the human active, inactive and reactivated X chromosomes in mouse-human hybrid cells. The two independent reactivants, induced by 5-azacytidine (5-azaC), expressed human hypoxanthinephosphoribosyl transferase (HPRT), and one also expressed human glucose-6-phosphate dehydrogenase (G6PD) and phosphoglycerate kinase (PGK). Restriction enzyme analysis of DNA methylation at the re-expressed loci revealed hypomethylation of CpG clusters, that characterizes the relevant genes on the active X. The transfer of active and inactive X chromosomes from the native environment of the human fibroblast to the foreign environment of the hybrid cell did not affect the specific replication sequence of either human X chromosome. The silent X chromosome when reactivated, remained allocyclic, and the first bands to replicate were the same as prior to reactivation. In one reactivant, however, further progression of replication was significantly altered with respect to the order in which bands were synthesized. This alteration in the replication of the silent X following 5-azaC-induced reactivation suggests that DNA methylation may modulate the replication kinetics of chromosomal DNA.

Animals

Purification, sequence, and cellular localization of a novel chromosomal protein that binds to methylated DNA.

Methylation of mammalian DNA can lead to repression of transcription and alteration of chromatin structure. Recent evidence suggests that both effects are the result of an interaction between the methylated sites and methyl-CpG-binding proteins (MeCPs). MeCP1 has previously been detected in crude nuclear extracts. Here we report the identification, purification, and cDNA cloning of a novel MeCP called MeCP2. Unlike MeCP1, the new protein is able to bind to DNA that contains a single methyl-CpG pair. By staining with an antibody, we show that the distribution of MeCP2 along the chromosomes parallels that of methyl-CpG. In mouse, for example, MeCP2 is concentrated in pericentromeric heterochromatin, which contains a large fraction (about 40%) of all genomic 5-methylcytosine.

Amino Acid Sequence

RglB facilitated cloning of highly methylated eukaryotic DNA: the human L1 transposon, plant DNA, and DNA methylated in vitro with human DNA methyltransferase.

In vitro methylation of Bluescribe plasmid DNA (pBS) with human placental DNA methyltransferase to 6% 5-methylcytosine (mC) reduced transformation efficiencies in rglB+ host strains C600 and DS410 by almost 2 orders of magnitude. By contrast, the rglB- derivative of DS410 showed no reduction in transformation efficiency with methylation while the rglB- derivative of C600 was partially tolerant to methylation. Further, we show that the 1.8 kilobase (kb) and 1.2 kb KpnI fragments derived from the human L1 repeat have respectively 18.3% and 2.3% mC in vivo. Using these hyper- and hypo-methylated genomic segments ligated into the pBS plasmid, transformants with the highly methylated 1.8 kb L1 insert were recovered at 17 to 40 fold higher frequency with the rglB- host strains than with the rglB+ hosts. In addition, recombinant phage (lambda 2001) containing inserts of plant genomic DNA with 26.7% mC (from Petunia hybrida) when plated on rglB- hosts gave titres up to 222 times higher than on the rglB+ strains.

Cell Line

Inhibition of DNA methylation by S-adenosylethionine with the production of methyl-deficient DNA in regenerating rat liver.

Ethionine, a liver carcinogen, was administered p.o. (300 mg/kg) to rats 17 hr after partial hepatectomy. At 6 hr after administration of the ethionine, hepatic S-adenosylethionine levels were 30- to 40-fold greater than the hepatic level of S-adenosylmethionine. A 10-fold ratio of S-adenosylethionine to S-adenosylmethionine still persited at 24 hr after ethionine administration. When given at 17 hr after partial hepatectomy, ethionine produced a 30% inhibition of DNA synthesis, measured by the incorporation of [methyl-3H]thymidine at 23 to 24 hr after partial hepatectomy (6 to 7 hr after ethionine administration). DNA synthesized during this interval was methyl deficient as judged by the reduced incorporation of radioactivity from L-[methyl-3H]methionine into 5-methylcytosine residues of DNA. In an assay for DNA methylation in vitro using whole nuclei, the methyl-deficient DNA was methylated by S-adenosylmethionine 8 times more than was control DNA; the DNA methylation was competitively inhibited by S-adenosylethionine. These data suggest that S-adenosylethionine, formed in vivo from ethionine, competitively inhibits the methylation of DNA in vivo by S-adenosylmethionine, resulting in the production of methyl-deficient DNA.

Animals

Effect of site-specific DNA methylation and mutagenesis on recognition by methylated DNA-binding protein from human placenta.

Methylated DNA-binding protein (MDBP) from human placenta is the first protein shown to bind specifically to certain DNA sequences only when they are methylated at cytosine residues. Among the sites recognized by MDBP is pB site 1, a pBR322-derived sequence which has a high affinity for MDBP when methylated at all CpG positions. We have substituted pB site 1 with 5-methyl-cytosine (m5C) residues at one to three of its CpG dinucleotides on one strand by the use of m5C-containing oligonucleotides. MDBP binds best when all three CpG dinucleotides in the region 5'-ATCGTCACGGCGAT-3' are methylated. Even more binding is obtained when both strands are methylated. Alteration of various residues in this binding site by oligonucleotide-directed mutagenesis decreased the binding. However, two mutations which increased the dyad symmetry of part of the binding site yielded ligands with a higher affinity for MDBP.

Base Sequence

Studies on the biological role of DNA methylation. II. Role of phiX174 DNA methylation in the process of viral progeny DNA synthesis.

In vivo inhibition of bacteriophage phiX174 DNA methylation by nicotinamide resulted in the accumulation of replicative intermediates with multiple-genome length single-stranded "tails". These abnormal replicative intermediates could not be chased into viral single-stranded circular DNA. The effect of nicotinamide on phage maturation and accumulation of abnormal replicative intermediates could be reversed by washing out the inhibitor. The results suggest that the single methyl group present in the viral DNA serves as a recognition site for a specific endonuclease, probably the gene A protein product, that is responsible for the excision of the single-stranded one-genome long viral DNA, before final maturation of the virus occurs.

Coliphages

Mutation in THO2, a component of THO/TREX complex, causes transcriptional gene silencing and genome-wide DNA methylation changes.

DNA methylation plays important roles in silencing of transgenes, endogenous genes, and transposable elements (TEs). To identify genes involved in antagonizing transcriptional or DNA hypermethylation-induced gene silencing, a genetic screening was conducted and thus a tho2-8 mutant was recovered. THO2 is a major component of the THO/TREX (Transcription-Export) complex, which plays essential roles in mRNA export. The tho2-8 mutation caused overaccumulation of DNA methylation on a d35S promoter ahead of LUC, suggesting its roles in antisilencing of transgenes. This mutation also resulted in significant genome-wide alterations in DNA methylation in a locus-specific manner, including 2513 hyper-DMRs and 1717 hypo-DMRs. The hyper-DMRs in the tho2-8 mutant not only exhibited a considerable overlap with those in DNA demethylation mutants (like ros1-7), but also with hypo-DMRs from nrpd1-3 and nrpe1-11 mutants, demonstrating that THO2 is able to protect those loci targeted by DNA demethylation and/or RdDM pathways from hypermethylation. The tho2-8 mutant also contained a plethora of CHH hypo-DMRs, which overlapped in large numbers with those from the nrpd1-3 and nrpe1-11 mutants, indicating that THO2 is required for the establishment/maintenance of DNA methylation at many loci. Additionally, the tho2-8 mutation caused an increase in overall 24-nt siRNA levels and many upregulated and downregulated DEGs/DETEs. The effects of THO2 on DNA methylation patterns appeared to be associated with the functioning of Pol IV and Pol V because THO2 physically interacted with NRPD7 and was necessary for normal accumulation levels of several Pol V-dependent IGNs' transcripts. Thus, this study provided valuable insights into new roles of THO2 in DNA methylation patterning.

DNA Methylation

Gene regulatory mechanisms downstream of DNA methylation.

Cytosine DNA methylation is a conserved epigenetic modification that regulates gene expression, represses transposable elements and maintains genome stability across diverse eukaryotes. Although major advances have uncovered the pathways involved in the establishment, maintenance and removal of DNA methylation, the downstream mechanisms by which this mark influences transcriptional programmes and shapes chromatin structure are less well understood. Here, we review how specialized reader proteins and transcription factors interpret DNA methylation to preserve methylation patterns, recruit effector complexes, regulate chromatin accessibility and interact with parallel epigenetic systems to mediate transcriptional silencing and activation across mammals and plants. We highlight that robust transcriptional and epigenetic states emerge from overlapping, layered and partially redundant DNA methylation-dependent mechanisms. Together, these insights provide a framework for understanding how DNA methylation shapes the epigenome to regulate development, differentiation and disease progression.

Journal Article

A tunable, ultrasensitive threshold in enzymatic activity governs the DNA methylation landscape.

DNA methylation is a widely studied epigenetic mark, affecting gene expression and cellular function at multiple levels. DNA methylation in the mammalian genome occurs primarily at cytosine-phosphate-guanine (CpG) dinucleotides, and patterning of the methylation landscape (i.e., the presence or absence of CpG methylation at a given genomic location) exhibits a generally bimodal distribution. Although much is known about the enzymatic writers and erasers of CpG methylation, it is not fully understood how these enzymes, along with genetic, chromatin, and regulatory factors, control the genome-wide methylation landscape. In this study, methylation is analyzed at annotated CpG islands (CGIs) and independent CpGs as a function of their proximity to other CpG substrates. Analysis is aided by a computationally efficient stochastic mathematical model of methylation dynamics, enabling parameterization from data. We find that methylation exhibits a switch-like dependence on local CpG density with a threshold of 7-8 CpGs per 100 bp and a Hill coefficient of 4-5. The threshold and steepness of the switch is modified in cell lines in which key enzymes are knocked out. Modeling further elucidates how enzymatic parameters, including catalytic rates and lengthscales of inter-CpG interaction, tune the properties of the switch. Together, the results support a model in which competition between opposing TET1-3 demethylating enzymes and DNA methyltransferases (DNMT3A/B) results in an ultrasensitive switch, analogous to the protein phosphorylation switch (termed "zero-order ultrasensitivity"). Our study provides insight to the mechanisms underlying establishment and maintenance of bimodal DNA methylation landscapes, and further provides a flexible pipeline for gleaning molecular insights to the cellular methylation machinery across cell-specific, epigenomic data sets.

DNA Methylation

Til 1--a human lymphoblastoid cell line with minimal DNA methylation.

Methylation has been shown to be correlated with several fundamental cellular processes, including changes in gene expression, alterations in chromatin structure and inactivation of the mammalian X chromosome. It is possible, therefore, that the methylation status of a particular sequence may reflect involvement in a number of processes. Given this potentially confused situation, it is clear that many studies would be facilitated if unmethylated or minimally methylated DNA from a mammalian source were available. A major use of such DNA would be in the construction of long-range physical maps. In many cases, long-range physical maps are a prerequisite for the eventual isolation of disease genes that have been localised to a particular chromosomal region by other means (e.g. genetic linkage studies). Many of the enzymes used in such long-range mapping experiments are methylation sensitive, which makes it difficult to determine how many sites for a particular enzyme are present in any DNA sequence. Here we report the finding of a minimally methylated DNA in the human lymphoblastoid cell line, Til 1. The methylation level of Til 1 DNA was analysed in several ways and compared with that in human lymphocytes, placental tissue and other lymphoblastoid cell lines. The results showed clear and reproducible differences in methylation among the cell types, both at a global level and in the vicinities of specific DNA sequences. Lymphocyte DNA had the highest level of methylation while placental DNA and cell line DNA had lower but similar levels. Til 1 had abnormally low levels of 5-methylcytosine when measured directly, and no detectable methylation at any of the restriction sites examined.

5-Methylcytosine

Characterization of MeCP2, a vertebrate DNA binding protein with affinity for methylated DNA.

Methylated DNA in vertebrates is associated with transcriptional repression and inactive chromatin. Two activities have been identified, MeCP1 and MeCP2, which bind specifically to DNA containing methyl-CpG pairs. In this report we characterize MeCP2. We show that it is more abundant than MeCP1, is more tightly bound in the nucleus, and is distinguishable chromatographically. The two proteins share widespread expression in somatic mammalian cells, and barely detectable expression in early embryonic cells. DNAs containing thymidine which has a methyl group at position 5 are not ligands for the MeCPs. The possible role of MeCP2 in methylation-associated gene inactivation was tested in in vitro transcription extracts. Purified MeCP2 inhibited transcription from both methylated and nonmethylated DNA templates in vitro, probably due to the presence of nonspecific DNA binding domains within the protein. We hypothesise that MeCP2 normally binds methylated DNA in the context of chromatin, contributing to the long-term repression and nuclease-resistance of methyl-CpGs.

Animals

Repair studies on methylated DNA of CHO cells.

DNA methylation pattern was investigated on Chinese hamster ovary (CHO) cells after treatment with N-(14C)-methyl-N-nitrosourea (14C-MNU). The main target was the N-7 position of guanine, exceeding the methylation in the O6 position of guanine by a factor of 8 and that in the N-3 position of guanine and adenine by a factor of 20. No DNA repair could be observed within 2 hours after methylation. Pretreatment of cells with gamma irradiation (7 rad) before application of MNU induced repair of N-7-methylguanine. This methylation product was decreased to about 50% within two hours, whereas the repair of the other methylated bases was not influenced. The analysis was carried out by high performance liquid chromatography after acid hydrolysis of isolated DNA. 14C-methylated products were determined by liquid scintillation counting.

Animals

Reduced levels of histones H1o and H1b, and unaltered content of methylated DNA in rainbow trout hepatocellular carcinoma chromatin.

The levels of histone subtypes and DNA methylation of aflatoxin-induced rainbow trout hepatocellular carcinoma and adult liver nuclei were compared. The hepatocellular carcinoma nuclei were enriched in the ubiquitinated species of histone H2A and depleted in histones H1o and H1b. The 5-methylcytosine content and methylation patterns of the vitellogenin genes and the transcriptionally inactive TPG-3 protamine gene were not altered in the trout hepatocellular carcinoma DNA. Thus, undermethylation of DNA is not a general feature of chemically induced tumors in vivo.

5-Methylcytosine

3-(Methylnitrosamino)propionitrile: occurrence in saliva of betel quid chewers, carcinogenicity, and DNA methylation in F344 rats.

3-(Methylnitrosamino)propionitrile (MNPN), a potent carcinogen in F344 rats, was detected for the first time in the saliva of betel quid chewers at levels ranging from 0.5 to 11.4 micrograms/liter. The tumorigenic properties of MNPN and its potential to methylate DNA in F344 rats were evaluated. Groups of 21 male and 21 female rats were given 60 s.c. injections over a 20-week period (total doses 0.055 and 0.23 mmol per rat). The experiment was terminated after 106 weeks. MNPN at the higher dose induced 18 (86%) malignant tumors of the nasal cavity in male and 15 (71%) in female rats. The lower dose induced nine (43%) liver tumors. Groups of four or five male F344 rats were treated with a single s.c. or i.v. injection of MNPN (0.4 mmol/kg). MNPN was also administered to rats by swabbing the oral cavity (2.21 mmol/kg). The levels of 7-methylguanine and O6-methylguanine, formed 0.5-36 h after treatment, were measured in the liver, nasal mucosa, esophagus, and oral issues. The highest levels of methylated guanines were detected in the nasal cavity independent of the route of administration. The results of this study demonstrate that MNPN is present in the saliva of betel quid chewers and is a potent carcinogen in F344 rats.

Adult

[Changes in DNA methylation in alfalfa plants infected with Cuscuta and tissue differences in DNA methylation of the parasite plants].

The tissue-specific differences in the 5-methylcytosine (m5C) content in total DNA of the parasite plant Cuscuta reflexa have been found: DNA from apical parts of the plant is less methylated (m5C = 4,2 mol %) as compared to the DNA from haustoria and posthaustorial regions (m5C = 5,4 mol %). The base compositions of total DNA preparations from C. reflexa grown on various hosts are similar. The m5C amount in stem DNA of the alfalfa plant infected with C. reflexa is by approximately 25% higher than that in the non-infected plant DNA. The GC content in alfalfa DNA does not change as a result of infection. Thus, the parasite induces the hypermethylation of DNA in the host plant. It is assumed that the changes in DNA methylation induced by the parasite plant may play a regulatory role and may cause changes in transcription and replication of host DNA.

Cytosine

[DNA-methylase activities from animal mitochondria and nuclei: different specificity of DNA methylation].

DNA-methylase activities which methylate cytosine residues in homo- and heterologous DNA were detected in mitochondria and nuclei from rat liver and beef heart. Adenine modifying DNA-methylases in mitochondria and nuclei were not found. DNA from mitochondria and nuclei differ significantly in the methylation degree and in the pattern of the 5-methyl-cytosine distribution by pyrimidine isostichs as DNA in vivo and in vitro being methylated. Mitochondrial DNA methylase has the maximum activity at 30 degrees and pH 7.8 this enzyme(s) differ(s) from the nuclear one(s) in the pH dependence of its activity. After exhaustive in vitro methylation of various DNA by the nuclear enzyme DNA-methylase from mitochondria additionally introduces CH3 groups from S-adenosylmethionine into these DNA (about 3 times more CH3 groups than nuclear enzyme). Nuclear DNA-methylase also methylates DNA which is previously fully-methylated by the mitochondrial enzyme, but to a lesser degree. In conditions of exhaustive DNA methylation mitochondrial enzyme introduces into E. coli B DNA about four times more methyl groups as compared to the nuclear one. After the methylation of E. coli B DNA by mitochondrial enzyme the label (3H-methyl) was detected predominantly in mono-, and in case of nuclear enzyme--in di- and tripyrimidine fragments. Mitochondrial DNA-methylase differs from the nuclear one in the nature of recognized DNA sequences; these enzymes seems to be represented by different proteins. The mitochondrial enzyme methylates shorter nucleotide sequences in DNA as compared to the nuclear DNA-methylase. All these data suggest there exist organoid specificity of genome methylation in animal cell and the modification-restriction systems in animal nucleus and mitochondria are different in character.

Animals