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Biomedical subjects

M Ehrlich

Publications and source records attributed to M Ehrlich.

At least 127 records · Page 7Linked to original sources

Different charge forms of aromatic-L-amino-acid decarboxylase.

The isoelectric points (pI) of aromatic-L-amino-acid decarboxylase (AADC) from two species, rat and cow, were determined by chromatofocusing. The enzyme from both rat brain and adrenal has a pI of 5.5, while the bovine adrenal enzyme has a different pI of 5.0. Thus, the variation of isoelectric point for AADC is limited to species differences but not tissue differences.

Adrenal Glands↗

A human DNA-binding protein is methylation-specific and sequence-specific.

A nuclear protein isolated from human placenta, methylated DNA-binding protein (MDBP), binds selectively to DNA enriched in 5-methylcytosine. We now demonstrate that MDBP is a sequence-specific, as well as methylation-specific, DNA-binding protein. From ten restriction fragments of pBR322 DNA methylated with human DNA methyltransferase, one was bound to MDBP very much more strongly than any of the others. For this preferential binding to MDBP, the DNA had to be methylated. By a DNase I protection experiment (DNase I footprinting), a 22-base sequence within this methylated restriction fragment was shown to be specifically protected by MDBP. The sequence-specificity of MDBP coupled with its dependence on DNA methylation suggests that this is one of the proteins which modulates important functions of human DNA methylation in vivo.

5-Methylcytosine↗

DNA cytosine methylation and heat-induced deamination.

The heat-induced conversion of 5-methylcytosine (m5C) residues to thymine residues and of cytosine to uracil residues in single-stranded DNA was studied. The calculated rates for deamination at 37 degrees C and pH 7.4 were approximately 9.5 X 10(-10) and 2.1 X 10(-10) sec-1, respectively. N4-Methyldeoxycytidine, which is in the DNA of certain thermophilic bacteria, was more heat-resistant than was deoxycytidine and much more than was 5-methyldeoxycytidine. Thermophilic bacteria which contain N4-methylcytosine rather than m5C in their genomes may thereby largely avoid heat-induced mutation due to deamination, which is incurred by the many organisms that contain m5C in their DNA.

5-Methylcytosine↗

Hypoplastic left heart syndrome: report of a unique survivor.

A remarkable patient is described, a child who has survived until the age of 7 years with hypoplastic left heart syndrome (mitral and aortic atresia) without surgical intervention. The child has led an active, normal life and, aside from minimal cyanosis, has remained asymptomatic. The unique clinical course for this patient is the result of a number of favorable hemodynamic factors that have not been previously reported in an individual patient with hypoplastic left heart syndrome and intact ventricular septum widely patent ductus arteriosus, adequate retrograde coronary flow, unrestricted pulmonary venous return, and absence of significant vascular obstructive disease. This documentation of long-term survival in a child without surgical treatment for mitral and aortic atresia suggests that successful early palliative treatment for infants with this syndrome could also result in a favorable prognosis.

Angiocardiography↗

The accessibility of 5-methylcytosine to specific antibodies in double-stranded DNA of Xanthomonas phage XP12.

Antibodies specifically directed to 5-methylcytidine were raised in rabbits and purified by affinity chromatography. The accessibility of 5-methyldeoxycytidine (m5dCyd) to such antibodies was studied with DNAs from various origins. The reaction was followed by measuring the retention of radiolabelled DNA by antibodies on nitrocellulose filters, by immunoprecipitation, by gel filtration and was visualized with the electron microscope. Antibodies did not bind to Escherichia coli B DNA, which is deficient in m5dCyd. Denatured and native DNA from calf thymus, which contains m5dCyd as a minor nucleoside, was weakly retained on the filters whereas DNA extracted from Xanthomonas oryzae XP12 bacteriophage, which is rich in m5dCyd, was well recognized even in the native form.

5-Methylcytosine↗

Human DNA sequences exhibiting gamete-specific hypomethylation.

Three human DNA sequences have been cloned from DNA regions which are strikingly undermethylated in sperm, highly methylated in adult somatic tissues, and methylated to an intermediate extent in tissues of extraembryonic origin. It is proposed that some such DNA sequences may function specifically early in embryogenesis or during gametogenesis. They may be subsequently extensively methylated in the embryonic cell lineage and methylated to a lesser extent in extraembryonic tissues in order to allow embryogenesis to proceed.

Base Sequence↗

Pattern of undermethylation of the major satellite DNA of mouse sperm.

Enzymatic hydrolysis and base analysis by high performance liquid chromatography showed that mouse satellite DNA had 30-50% less 5-methylcytosine in sperm than in somatic tissue (1.59 mols % vs 2.40-3.11 mols %). Maxam-Gilbert sequencing and analysis of the intensity of the cytosine bands indicated that the level of methylation of the eight CpGs of the consensus sequence in sperm satellite DNA ranged from 0 to about 50%, considerably lower than the levels reported in somatic tissues. The Mn1I site containing one of these CpGs was cut much more extensively in satellite DNA from sperm than from liver, confirming the undermethylation of this site in sperm DNA.

5-Methylcytosine↗

DNA methylation is not increased in mouse-human somatic cell hybrids.

The level of DNA methylation in three mouse-human cell lines that retained different human chromosomes and in the parental mouse and human lines has been determined by high-pressure liquid chromatography (HPLC). The level of methylation is similar in the hybrid and parental cells, indicating that interspecific somatic cell hybridization followed by preferential chromosome segregation can occur without an increase in overall DNA methylation.

Animals↗

DNA methylation in thermophilic bacteria: N4-methylcytosine, 5-methylcytosine, and N6-methyladenine.

While determining the minor and major base composition of the DNA from 17 types of thermophilic bacteria by high performance liquid chromatography (HPLC) of enzymatic digests, we have discovered a novel base, N4-methylcytosine (m4C). Its structure was proven by comparison of the DNA-derived nucleoside to the analogous authentic compound by HPLC, UV spectroscopy, and mass spectroscopy. Eight of the bacterial DNAs contained m4C. Only two contained the common minor base, 5-methylcytosine (m5C), and neither of these was from an extreme thermophile. The other prevalent modified base of bacterial DNA, N6-methyladenine (m6A), was found in nine of the DNAs. Restriction analysis revealed that four of the DNAs had dam-type (Gm6ATC) methylation patterns. Due to the propensity of m5C residues to be deaminated by heat to thymine residues and to inefficient repair of the resulting mismatched base pairs, thermophiles with optimal growth temperatures of greater than or equal to 60 degrees C generally may avoid having m5C in their genomes. Instead, some of them have deamination-resistant m4C residues.

5-Methylcytosine↗

Quantitative reversed-phase high-performance liquid chromatography of major and modified nucleosides in DNA.

Improved, highly accurate high-performance liquid chromatographic methods for the measurement of the major and modified nucleosides in enzymatic digests of DNA using a single column are described. Four high resolution separation protocols (isocratic, binary, ternary and high speed) with specifically improved selectivity for 5-methyldeoxycytidine (m5dCyd) from Ade, dIno and Guo are presented. From a detailed study of the various factors contributing to the precision and accuracy of the measurement, optimized conditions and quantitative protocols were established. The ternary buffer allows for the first time the determination of N6-methyldeoxyadenosine (m6dAdo) in the same chromatographic analysis with the other deoxyribonucleosides. The binary system allows quantitation of the absolute amounts of each ribo- and deoxyribonucleoside as well as the mole % of each as the second buffer elutes 5'dA and the internal standard 8-bromoguanosine. The isocratic system allows precise quantitation of the mole % of each ribo- and deoxyribonucleoside while eliminating the need for buffer change valves, buffer cycling and column re-equilibration. Also, a high-speed isocratic system is described which permits separation of the deoxyribonucleosides in 6 min. The quantitative, enzymatic hydrolysis of DNA was evaluated by comparing a 40-h, three-enzyme system with a 4-h, two-enzyme procedure. The latter protocol proved to be an excellent hydrolysis method. These high resolution liquid chromatography techniques provide the most precise, sensitive and accurate measurement of m5dCyd available, in a straightforward method using as little as 1 microgram of DNA, and have allowed us to demonstrate: the existence of tissue-specific differences in levels of m5dCyd in DNA of humans, monkeys, rats and mice; that m5dCyd levels in DNA change during fetal development; that genomic undermethylation of DNA is correlated with cancer and the presence of m6dAdo in DNA of thermophilic organisms.

Animals↗

Mouse mammary tumor virus DNA methylation: tissue-specific variation.

Mouse mammary tumor virus-specific DNA sequences endogenous to the BALB/c mouse are shown to exhibit variable levels of methylation in a tissue-specific manner. In DNA from both lactating mammary gland and spleen, MMTV-specific sequences were hypomethylated at specific HpaII and HhaI sites. These variably methylated sites were found in the terminal repetitive sequences of the endogenous viral genomes. The specific hypomethylation of a HpaII site in Mtv-9 is associated with expression of a 1.6 kb transcript in the lactating mammary gland.

5-Methylcytosine↗

Human placental DNA methyltransferase: DNA substrate and DNA binding specificity.

We have partially purified a DNA methyltransferase from human placenta using a novel substrate for a highly sensitive assay of methylation of hemimethylated DNA. This substrate was prepared by extensive nick translation of bacteriophage XP12 DNA, which normally has virtually all of its cytosine residues replaced by 5-methylcytosine (m5C). Micrococcus luteus DNA was just as good a substrate if it was first similarly nick translated with m5dCTP instead of dCTP in the polymerization mixture. At different stages in purification and under various conditions (including in the presence or absence of high mobility group proteins), the methylation of m5C-deficient DNA and that of hemimethylated DNA were compared. Although hemimethylated , m5C-rich DNAs were much better substrates than were m5C-deficient DNAs and normal XP12 DNA could not be methylated, all of these DNAs were bound equally well by the enzyme. In contrast, from the same placental extract, a DNA-binding protein of unknown function was isolated which binds to m5C-rich DNA in preference to the analogous m5C-poor DNA.

DNA (Cytosine-5-)-Methyltransferases↗

DNA methylation inhibits the transfecting activity of replicative- form phi X174 DNA.

Replacement of virtually all the cytosine residues with 5-methylcytosine residues in the complementary strand of the replicative form (RF) of phi X174 DNA caused a 300- to 500-fold loss in its transfecting activity. Similar results were obtained with analogously methylated M13 RF. Transfection experiments with phi X RF hemimethylated in only part of the molecule, as assessed by analysis with restriction endonucleases, indicated that gene A of phi X, which needs to be nicked at a specific site by the gene A protein for RF replication, was not the main target for this inhibition by DNA methylation. We propose that the loss of transfecting activity was due to hemimethylation of the phi X RF interfering with the processively catalyzed movement of the replication fork.

5-Methylcytosine↗

Ligation of highly modified bacteriophage DNA.

After digestion by TaqI or nicking by DNAase I, five highly modified bacteriophage DNAs were tested as substrates for T4 DNA ligase. The DNAs used were from phages T4, XP12, PBS1, SP82, and SP15, which contain as a major base either glucosylated 5-hydroxymethylcytosine, 5-methylcytosine, uracil, 5-hydroxymethyluracil, or phosphoglucuronated, glucosylated 5-(4',5'-dihydroxypentyl)uracil, respectively. The relative ability of cohesive-ended TaqI fragments of these DNAs and of normal, lambda DNA to be ligated was as follows: lambda DNA = XP12 DNA greater than SP82 DNA approximately equal to nonglucosylated T4 DNA greater than T4 DNA = PBSI1 DNA much greater than SP15 DNA. Taq I-T4 DNA fragments were also inefficiently ligated by Escherichia coli DNA ligase. However, annealing-independent ligation of DNAase I-nicked T4, PBS1, and lambda DNAs was equally efficient. We conclude that the poor ligation of Taq I fragments of T4 and PBS1 DNAs was due to the hydroxymethylation (and glucosylation) of cytosine residues at T4's cohesive ends and the substitution of uracil residues for thymine residues adjacent to PBS1's cohesive ends destabilizing the annealing of the restriction fragments. Only SP15 DNA with its negatively charged, modified base was unable to serve as a substrate for T4 DNA ligase in an annealing-independent reaction; therefore, its modification directly interfered with enzyme binding or catalysis.

Bacteriophages↗

The 5-methylcytosine content of DNA from human tumors.

The over-all 5-methylcytosine (m5C) content of DNA from normal tissues varies considerably in a tissue-specific manner. By high-performance liquid chromatography, we have examined the m5C contents of enzymatic digests of DNA from 103 human tumors including benign, primary malignant and secondary malignant neoplasms. The diversity and large number of these tumor samples allowed us to compare the range of DNA methylation levels from neoplastic tissues to that of normal tissues from humans. Most of the metastatic neoplasms had significantly lower genomic m5C contents than did most of the benign neoplasms or normal tissues. The percentage of primary malignancies with hypomethylated DNA was intermediate between those of metastases and benign neoplasms. These findings might reflect an involvement of extensive demethylation of DNA in tumor progression. Such demethylation could be a source of the continually generated cellular diversity associated with cancer.

5-Methylcytosine↗

Tissue-specific differences in DNA methylation in various mammals.

The only naturally occurring modified base in vertebrate DNA is 5-methylcytosine. Using a precise high-performance liquid chromatographic analysis of DNA enzymatically digested to deoxynucleosides, we have shown that rats, mice and four types of monkey display tissue-specific as well as species-specific differences in the extent of methylation of their cytosine residues. Several similarities in the patterns of tissue-specific DNA methylation in these mammals and in the previously studied human samples were observed. Compared to most other types of DNA examined, brain and thymus DNAs were hypermethylated which suggests that this hypermethylation is a determinant or a necessary byproduct of mammalian differentiation. In all of the studied rodents and primates, the highly repeated DNA sequence fraction was more methylated than the moderately repetitive or single copy fractions. The tissue-specific differences in overall DNA methylation showed no correlation with what is known about average cell turnover rates nor with the percentage of the genome that is transcribed. Liver regeneration in the rat following partial hepatectomy did not detectably alter 5-methylcytosine levels in liver DNA. A considerable increase in the extent of methylation of total liver DNA was observed during normal development of the rat. The latter phenomenon may be due to a major change in the cellular composition of the liver.

5-Methylcytosine↗