Search PubMed⌕ Search

Biomedical subjects

R Holliday

Publications and source records attributed to R Holliday.

At least 73 records · Page 4Linked to original sources

Ambidextrous RNA.

Explore the source record for details and available documents.

Isomerism↗

DNA methylation and epigenetic inheritance.

Classical genetics has revealed the mechanisms for the transmission of genes from generation to generation, but the strategy of the genes in unfolding the developmental programme remains obscure. Epigenetics comprises the study of the mechanisms that impart temporal and spatial control on the activities of all those genes required for the development of a complex organism from the zygote to the adult. Epigenetic changes in gene activity can be studied in relation to DNA methylation in cultured mammalian cells and it is also possible to isolate and characterize mutants with altered DNA methylase activity. Although this experimental system is quite far removed from the epigenetic controls acting during development it does provide the means to clarify the rules governing the silencing of genes by specific DNA methylation and their reactivation by demethylation. This in turn will facilitate studies on the control of gene expression in somatic cells of the developing organism or the adult. The general principles of epigenetic mechanisms can be defined. There are extreme contrasts between instability or switches in gene expression, such as those in stem-line cells, and the stable heritability of a specialized pattern of gene activities. In some situations cell lineages are known to be important, whereas in others coordinated changes in groups of cells have been demonstrated. Control of numbers of cell divisions and the size of organisms, or parts of organisms, is also essential. The epigenetic determination of gene expression can be reversed or reprogrammed in the germ line. The extent to which methylation or demethylation of specific DNA sequences can help explain these basic epigenetic mechanisms is briefly reviewed.

Aging↗

The limited proliferation of cultured human diploid cells: regulation or senescence?

It has been widely accepted that the limited life span of human diploid fibroblasts in culture provides a valid experimental model for the study of aging at the cellular level. In spite of innumerable investigations the underlying cause of cessation of growth is not known. Many approaches are being used to test the specific hypothesis that cells at the end of their life span produce an inhibitor of the initiation of DNA synthesis which irreversibly arrests cells in G1, rather than resulting in cell death. This implies that there is positive control of cell proliferation and that the final population of noncycling cells is in a stable state. There appears to be a basic contradiction between this interpretation of published data and the long-standing view that cells actually become progressively senescent during phase III of their growth in vitro. The DNA inhibitor theory can be criticized on a number of grounds, and there is considerable evidence that fibroblasts at the end of their life span are heterogeneous and have a very complex pleiotropic phenotype. One effect of these changes would be to prevent DNA synthesis and normal progression through the cell cycle. The conclusion is that phase III cells are indeed senescent, presumably as a result of a general failure to maintain the integrity of macromolecules and other cellular components.

Aging↗

Evidence for allelic exclusion in Chinese hamster ovary cells.

Earlier results suggested that the functional hemizygosity of genes in pseudodiploid Chinese hamster ovary (CHO) cells is due to the silencing of one allele by DNA methylation. From this one could make a strong prediction that we have now been able to confirm by genetic experiments, using thymidine kinase (TK) alleles. TK- mutants induced by ethylmethane sulphonate (EMS) were all revertible to TK+ at high frequency by the demethylating agent 5-azacytidine (5-aza-CR). This revertibility was due to reactivation of a silent nonmutant TK allele. Further mutagenesis by EMS yielded TK- derivatives that were no longer revertible by 5-aza-CR; these are assumed to have mutations in both alleles. TK- cells were also transfected with equine herpes virus TK+ DNA, and the TK+ derivatives were shown to be markedly less stable than cells with the normal TK+ gene. CHO cells lack metallothionein activity (sensitive to cadmium), and also require proline for growth, because genes have become silenced during the establishment of the cell line. In both cases 5-aza-CR reactivates these genes to give the cadmium resistant and proline independent phenotypes. Long-term experiments with reactivants in the absence of selection showed that the genes become silent, presumably as a result of de novo methylation. A strain resistant to cytosine arabinoside (araCR) was also resistant to 5-azadeoxycytidine (5-aza-CdR), but not to 5-aza-CR, which would be expected if the araCR strain lacked deoxycytidine kinase.(ABSTRACT TRUNCATED AT 250 WORDS)

Alleles↗

Genomic imprinting and allelic exclusion.

In diploid cells, allelic exclusion reduces genes to functional haploidy, because only one of two alleles is active. It is best known in cells producing immunoglobulins, but other examples also exist. X-chromosome inactivation in female mammals is related to allelic exclusion, but in this case the dosage compensation mechanism extends to the whole chromosome. Functional hemizygosity in some mammalian cell lines is probably also due to allelic exclusion, where one autosomal allele is active and the other is methylated and inactive. In early development, it may be important to have only one functional copy of specific regulatory genes. If one considers the possible mechanisms whereby genes are switched from an active to an inactive form, or vice versa, complications arise if the same type of switch operates in two homologous chromosomes segregating independently at mitosis. This complication is avoided if one of the genes is totally inactive. It is therefore suggested that important regulatory gene are subject to allelic exclusion and that this provides a basis for genomic imprinting. Male or female gametes complement in the zygote, because they may have different inactive genes, and the active allele in each case is then functionally haploid in the zygote and developing embryo. These haploid genes would be those involved in critical switches of gene activity during the developmental process. Allelic exclusion imposed by imprinting might be based on the heritable DNA methylation of the regulatory regions of silent genes.

Animals↗

Food, reproduction and longevity: is the extended lifespan of calorie-restricted animals an evolutionary adaptation?

Calorie restriction results in an increased lifespan and reduced fecundity of rodents. In a natural environment the availability of food will vary greatly. It is suggested that Darwinian fitness will be increased if animals cease breeding during periods of food deprivation and invest saved resources in maintenance of the adult body, or soma. This would increase the probability of producing viable offspring during an extended lifespan. The diversion of limited energy resources from breeding to maintenance of the soma is seen as an evolutionary adaptation, fully compatible with the 'disposable soma' theory of the evolution of ageing.

Adaptation, Physiological↗

Maintenance of DNA methylation level in SV40-infected human fibroblasts during their in vitro limited proliferative life span.

Methylation level as expressed by the molar ratio of 5-methylcytosine content to the combined content of cytosine and 5-methylcytosine was determined by HPLC and uv adsorption of cellular DNA extracted from SV40-infected and pretransformed MRC-5 human diploid fibroblasts (HDFs) during their limited in vitro life span. The level decreased slightly during early passages, and then was maintained within a certain range in the subsequent pretransformed stage of serial passages. When HDFs were treated with 5-aza-2'-deoxycytidine (5-aza-CdR) at an effective concentration shortly after the SV40 infection, the level decreased and then increased or was maintained again within a certain range in the subsequent pretransformed state. The proliferative life span potential of SV40-infected HDFs was not significantly decreased by the 5-aza-CdR treatment. These results are in contrast to the established observations for uninfected HDFs, that methylation level decreases during serial passages, and that, after treatment with 5-aza-CdR, the level, as well as the proliferative life span, is decreased in comparison to untreated populations. These results show that SV40-infected pretransformed HDFs are in an intermediate state between normal finite growth and an established permanent line, in that they retain limited in vitro cell proliferation, while acquiring the ability to maintain methylation levels.

5-Methylcytosine↗

Chromosome error propagation and cancer.

A general characteristic of tumour cells is their unstable karyotype. It is suggested here that maintenance of the normal diploid cell depends on the presence of two copies of specific genes; a change in gene dosage of one or more of these genes, by chromosome nondisjunction or rearrangement, may trigger a general loss of accuracy in chromosome segregation at mitosis.

Chromosome Aberrations↗

Levels of DNA methylation in diploid and SV40 transformed human fibroblasts.

Total 5-methylcytosine (5mC) has been measured in the DNA of cultured human cells by HPLC chromatography. In agreement with other reports, the level of 5mC declines continuously during the serial passaging of diploid fibroblasts, strain MRC-5. On the contrary, fibroblasts infected with SV40, which have acquired most of the properties of transformed cells, maintain a constant level of 5mC, prior to dying out in the crisis period. MRC-5 and Werner's syndrome fibroblasts fully transformed and immortalised by SV40, also maintain a constant level of 5mC. These results indicate that the ability of cells to maintain DNA methylation is a necessary but not a sufficient step for immortalisation.

Cell Survival↗

Contemporary imaging methodology for diagnosis of lesions of the head and upper neck.

CT and MRI are the primary imaging modalities used to evaluate the various regions of the head and neck. From the preceding discussion one can see clearly that the choice of the appropriate imaging modality depends on a number of variables. There is no indisputable "winner" under all anatomical or pathological circumstances. The advantages and disadvantages of CT and MRI in certain clinical settings have been discussed. The information provided will enable one to exercise a rational choice in the selection of imaging modalities.

Diagnostic Imaging↗