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O Clay

Publications and source records attributed to O Clay.

5 recordsLinked to original sources

The gene distribution of the human genome.

Linear correlations exist between the GC levels of third codon positions (GC3) of individual human genes and the GC levels of long genomic sequences and DNA molecules (50-100 kb in size) embedding the genes. These linear relationships allow the positioning of the GC3 histogram of cDNA sequences from the databases relative to the CsCl profile of human DNA. In turn, this allows an estimate of the relative concentrations of genes in genomic regions of different GC content. An estimate obtained by using current sequence data and Gaussian decompositions of the GC3 histogram and of the CsCl profile indicates that the GC-richest (non-ribosomal) component of the human genome is at least 17 times as gene-rich as the GC-poor regions. Moreover, our results suggest that the most recent physical maps of the human genome consisting of overlapping YACs cover less than 50% of the genes.

Chromosome Mapping

Human coding and noncoding DNA: compositional correlations.

As the correlations between GC levels in third codon positions (GC3) and intergenic sequence GC levels can be used to assess the distribution of genes in the human genome, they were studied in detail. Previous work from our laboratory has demonstrated the existence of linear correlations between GC levels of exons, introns, third codon positions, 5' flanking regions of genes, and long genomic DNA sequences (> or = 10 kb) or DNA molecules (50-100 kb) in which the genes are embedded. The present study confirms and extends the previous results using a larger set of data. Furthermore, an analysis of 4270 human genomic DNA and cDNA sequences has allowed us to confirm a correlation of GC3 against GC1+2. Recent additions to the sequence database have also allowed separate analyses of the 5' flanking regions of CpG island and non-CpG island genes as well as analyses of 3' flanking regions, which suggest that the GC levels of 3' flanking regions are closer to those of intergenic DNA than are those of other regions of genes.

Base Composition

Periodicity of eight nucleotides in purine distribution around human genomic CpG dinucleotides.

Mammalian genomes, unlike the genomes of Drosophila and yeast, are characterized by CpG methylation and concomitant CpG depletion, which is caused by the enhanced mutation rate of 5-methylcytosine. To find out whether local nucleotide sequences around existing methylated CpG dinucleotides have common patterns, we analyzed a large population of CpG-poor regions in human DNA, which are typically methylated. We detected a novel periodic variation in the numbers of purine bases around CpGs in the noncoding parts of these sequences. This periodicity of eight nucleotides gradually diminished over 64 nucleotides on each side of the central CpG. Furthermore, the frequencies of the 5' and 3' nearest neighbors of CpGs in CpG-poor regions were biased towards cytosine and guanine, respectively. Such biased sequence contexts may have helped to stabilize CpGs against depletion during mammalian evolution.

Animals

Short introns interrupting the Oct-2 POU domain may prevent recombination between POU family genes without interfering with potential POU domain 'shuffling' in evolution.

Transcription factors are often encoded by gene families that share the same type of DNA binding domain. The POU domain genes are one such paradigm. We compared the genomic DNA encoding the POU domain of the Oct-2 genes in human and mouse. In both species this domain is split into a cluster of four exons by short, highly diverged introns. We postulate that the main role of these introns is to prevent ectopic homologous recombination with other members of the POU gene family, with its potentially deleterious effects in somatic and germline cells. Such rapidly diverging introns may generally promote evolution by facilitating the maintenance of duplicated genes. The use of different codons for the same protein domain among members of a gene family may be a slower process that serves a similar purpose. Introns that split conserved domains such as the POU domain do not conform to the exon shuffling hypothesis originally put forward by W. Gilbert (1978). However, we note that the introns flanking the POU domain are in the same phase, i.e. interrupt codons in the same reading frame. Thus we propose that the entire POU domain, which is encoded by a tight cluster of exons, has been shuffled together during evolution as a functional unit, or 'shufflon'.

Animals

Evidence for erosion of mouse CpG islands during mammalian evolution.

In housekeeping and many tissue-specific genes, the promoter is embedded in a so-called CpG island. We have compared the available human and mouse DNA sequences with respect to their CpG island properties. While mouse sequences showed a simple gradient distribution of G + C content and CpG densities, man had a distinct peak of sequences with typical CpG island characteristics. Pairwise comparison of 23 orthologous genes revealed that mouse almost always had a less pronounced CpG island than man, or none at all. In both species the requirements for a functional CpG island may be similar in that most DNA regions with a density of six or more CpG per 100 bp remain unmethylated. However, the mouse has apparently experienced more accidental CpG island methylation, suggested by local TpG and CpA excess. We propose that: (1) in mouse the CpG islands do not represent the ancestral state but have been eroded during evolution, and (2) this erosion may be related to the mouse's small body mass and short life-span, allowing for a more relaxed control of gene activity.

Animals