Search PubMed⌕ Search

Biomedical subjects

A R Mitchell

Publications and source records attributed to A R Mitchell.

At least 55 records · Page 3Linked to original sources

Direct vision chorion biopsy and chromosome-specific DNA probes for determination of fetal sex in first-trimester prenatal diagnosis.

Fetal sex was determined prenatally by molecular analysis of DNA from chorionic biopsy specimens taken in the first trimester of pregnancy. Single villi were obtained transcervically under direct vision with ultrasound guidance. The results of restriction endonuclease analysis of Y-chromosome-specific DNA from the biopsy specimens of 13 patients were confirmed in all cases by fetal karyotype analysis of cultures of biopsy specimens taken in parallel and of cultures of the products of conception. Prenatal sex determination by this method takes only 3-4 days and is not subject to the same errors as F-body identification.

Adolescent↗

Satellite DNA relationships in man and the primates.

We have investigated the genomes of a series of primates to identify the presence of sequences related to human satellite DNAs I, II and III by restriction enzyme digestion and hybridisation with probes of these satellite DNAs. Where we have found such related sequences we have examined the extent to which they have diverged by measuring the stability of the hybrids. DNA satellite III is the oldest sequence being common to species which have diverged some 24 million years ago. In contrast DNA satellites I and II are of much more recent origin. Our results permit us to draw conclusions about the way these sequences have evolved, and how the evolution of repeated DNA sequences may be related to the evolution of the primate lineage.

Animals↗

Automated enzyme assays by use of a centrifugal analyzer with fluorescence detection.

The first commercially available centrifugal analyzer having fluorescence detection capability was used to develop kinetic fluorometric assays for several proteinases. The substrates were all synthetic oligopeptides incorporating 7-amino-4-trifluoromethylcoumarin, a molecule that can be detected either spectrophotometrically or fluorometrically. We thus compared the centrifugal analyzer spectrophotometric and fluorometric detection systems, finding fluorescence detection to be 50-fold more sensitive. We also compared the sensitivity of the fluorescence detector to that of a conventional spectrofluorometer by determining the minimum detection limit for each enzyme on both instruments; we found them to be similar in sensitivity. As an illustrative application, we measured the cathepsin B-like activity in serum samples from 55 women. The median enzyme activity of women taking oral contraceptives and pregnant women was increased two- and threefold, respectively, over the control group (about 5% CV within run, and 10% CV between runs).

Autoanalysis↗

Specific arrangements of human satellite III DNA sequences in human chromosomes.

DNA was extracted from various rodent-human somatic cell hybrids that contained single or a few human chromosomes. These DNAs were examined by a combination of restriction endonuclease digestion, gel electrophoresis, and filter hybridisation to radioactive satellite DNA probes following transfer of the denatured restriction fragments from a gel to a nitrocellulose filter. In this way the arrangement of sequences homologous to human satellite III were examined on human chromosomes 1, 7, 11, 15, 22 and X. It was found that the distribution of restriction endonuclease sites within satellite III DNA is different on different chromosomes.

Animals↗

Mechanisms and prevention of trifluoroacetylation in solid-phase peptide synthesis.

A novel mechanism for trifluoroacetylation in solid-phase peptide synthesis, independent of the coupling step, has been elucidated. It involves the presence of trifluoroacetoxymethyl groups on the resin support, which react with resin-bound amines by an intersite nucleophilic reaction. The trifluoroacetoxymethyl groups are generated from preexisting hydroxymethyl sites during treatment with trifluoroacetic acid in dichloromethane or by acidolysis of the benzyl ester bond between the peptide and the resin. The transfer of trifluoroacetyl from hydroxyl to amine occurs during the subsequent neutralization with tertiary amine. The mechanism was first elucidated by model studies with aminomethyl-resins. Then the expected transfer of trifluoroacetyl groups from trifluoroacetoxymethyl-resin to the alpha-amino group of N(epsilon)-benzyloxycarbonyllysine benzyl ester in solution was demonstrated; k(2), 6 x 10(-4) M(-1). Lysine-resins were used to examine the extent of trifluoroacetylation under the conditions of solid-phase peptide synthesis. After a series of acid/base cycles simulating synthetic conditions but without coupling, the poorly nucleophilic alpha-amino group was approximately 1-2% trifluoroacetylated per cycle when attached to resins already containing hydroxymethyl groups. Standard benzyl ester resins without preexisting hydroxymethyl groups gave comparable levels of trifluoroacetylation after the first few synthetic cycles because of gradual acid cleavage of the ester and accumulation of trifluoroacetoxymethyl sites. Peptide chain termination resulting from trifluoroacetylation by this mechanism could be prevented (<0.02% per cycle) by the use of the aminoacyl-4-(oxymethyl)-phenylacetamidomethyl-resin support, which can be synthesized free from extraneous functionalities and which is stable to trifluoroacetic acid under the conditions of solid-phase peptide synthesis.

Acetylation↗

The fate of DNA satellites I, II, III and ribosomal DNA in a familial dicentric chromosome 13:14.

In a family with a stable dicentric 13:14 translocation chromosome, the distribution of DNA sequences complementary to satellite DNAs I, II and III and ribosomal RNA were studied. The translocation chromosome showed a loss of sequences complementary to all three satellite DNAs, located in the short arms of the acrocentric chromosomes, but slightly more of the sequences complementary to satellite I were retained than of the other two satellite DNAs. The fact that material was lost from all three satellites indicates that they are not present as single discrete blocks in these chromosomes, when we would expect to find the distal sequences lost and the proximal ones retained, but consist of interspersed blocks with each sequence represented by more than one, and probably several blocks. There was a total loss of ribosomal DNA from the nucleolar organiser regions of the chromosomes involved in the 13:14 translocation, but an interesting finding was the presence of extra ribosomal DNA and satellite DNAs I, II and III in one chromosome 22 which was found in seven out of nine individuals of the family with the 13:14 translocation, and in only one of five individuals without the translocation. There may be a compensatory mechanism present when certain sequences are elminated during chromosomal rearrangements. The relationship of such mechanisms to reproductive fitness is discussed.

Base Sequence↗

The distribution of sequences complementary to human satellite DNAs I, II and IV in the chromosomes of chimpanzee (Pan troglodytes), gorilla (Gorilla gorilla) and orang utan (Pongo pygmaeus).

Human satellite DNAs I, II and IV were transcribed to yield radioactive complementary RNAs (cRNAs). These cRNAs were hybridised to metaphase chromosomes of man, chimpanzee (Pan troglodytes), gorilla (Gorilla gorilla) and orang utan (Pongo pygmaeus). The results of this in situ hybridisation were analysed quantitatively and compared with accepted chromosome homologies based on Giemsa banding patterns. The cRNA to satellite II (cRNAII) did not hybridise to chimpanzee chromosomes, although its hybridisation to chromosomes of gorilla and orang utan yielded more autoradiograph grains than hybridisation to human chromosomes, and cRNAIV hybridised to many chromosomes of gorilla and chimpanzee but was almost entirely restricted to the Y chromosome in orang utan. Most sites of hybridisation were located on homologous chromosomes in all four species, but there were a number of sites which showed no correspondence between satellite DNA location and chromosome banding patterns, and others where a given chromosomal location hybridised with different cRNAs in each species. These results are in contrast to those found for many transcribed DNA sequences, where the same sequence is usually located at homologous chromosome sites in different species, and appear to cast doubt on many proposed models of satellite DNA function.

Animals↗

The location of DNA homologous to human satellite III DNA in the chromosomes of chimpanzee (Pan troglodytes), gorilla (Gorilla gorilla) and orang utan (Pongo pygmaeus).

Radioactive RNA with sequences complementary to human DNA satellite III was hybridised in situ to metaphase chromosomes of the chimpanzee (Pan troglodytes), the gorilla (Gorilla gorilla) and the orangutan (Pongo pygmaeus). A quantitative analysis of the radioactivity, and hence of the chromosomal distribution of human DNA satellite III equivalent sequences in the great apes, was undertaken, and the results compared with interspecies chromosome homologies based upon Giemsa banding patterns. In some instances DNA with sequence homology to human satellite III is present on the equivalent ("homologous") chromosomes in identical positions in two or more species although quantitative differences are observed. In other cases there appears to be no correspondence between satellite DNA location and chromosome homology determined by banding patterns. These results differ from those found for most transcribed DNA sequences where the same sequence is located on homologous chromosomes in each species.

Animals↗

The chromosomal distribution of human satellite III DNA during meiosis.

In human meiotic cells DNA satellite II is located in the same sites as in mitotic cells, but in prophase the areas are less condensed. This differs from the situation in Plethodon where the sites of heavy satellite DNA are condensed throughout meiotic prophase (MacGregor and Kezer, 1971). The difference may be ascribed to the fact that Plethodon heavy satellite is pericentrically located, whereas few if any of the human satellite sites are actually at centromeres. A second difference is found in sperm, where the Plethodon satellite is located at a single site in the rear of the nucleus, while the satellite regions in mad do not have a common or constant orientation, suggesting that the respective satellites may well be functionally different.

Chromosomes↗