Search PubMed⌕ Search

Biomedical subjects

Y H Edwards

Publications and source records attributed to Y H Edwards.

98 records · Page 6Linked to original sources

Human enolase isozymes: electrophoretic and biochemical evidence for three loci.

1. Four major enolase isozymes have been identified in human tissues and are referred to as L, M, 'intermediate' and 'fast'. The M isozyme is the major form found in skeletal muscle and heart extracts and the L isozyme the major form found in extracts of liver and most other tissues. The 'intermediate' and 'fast' isozymes are most active in brain but are observed as weak components in most other tissues including heart but are not seen in skeletal muscle. It was observed that during fetal development of heart and skeletal muscle the L form declines in activity while the M form increases in activity. 2. The kinetic properties, heat stabilities and molecular sizes of the main enolase isozymes have been compared. Although the isozymes share many features in common, the 'fast' isozyme is more stable when subjected to heat treatment than either the L or M isozymes. Further, the 'fast' isozyme retains its dimeric structure and activity in the absence of magnesium ions while the L and M isozymes dissociate and lose activity. The 'intermediate' isozyme has properties which are intermediate to those of the L and 'fast' isozymes. 3. The 'intermediate' isozyme can be partially dissociated to equal quantities of L and 'fast' isozymes by storage at room temperature or by freezing and thawing in the presence of 2 M-NaCl. Conversely, mixtures of L with 'fast' and M with 'fast' give rise to an 'intermediate' isozyme after freezing and thawing. 4. Evidence derived from this study has led to the suggestion that three separate gene loci are involved in the determination of human enolase. It is proposed that one of these, ENO1, determines the L isozyme which is the homodimer alphaalpha; another locus, ENO2, determines the 'fast' isozyme which is the homodiner betabeta; and the third locus, ENO3, determines the M isozyme which is the homodimer gammagamma. The 'intermediate' isozyme seen as a strong component in brain and as a weak component in most other tissues is thought to be the heterodimer alphabeta. In heart however it is probably mainly betagamma.

Brain↗

The distributions of subunit numbers and subunit sizes of enzymes: a study of the products of 100 human gene loci.

1. A tabulation of subunit numbers and subunit sizes of a series of enzymes which have been studied electrophoretically in man is presented. The series of subunit numbers cover the isozyme products of 100 distinct gene loci. For 99 of these, estimates of subunit size are given. 2. The distribution of subunit numbers in the whole series is as follows: monomers, 28; dimers, 43; trimers, 4; tetramers, 24; octamers, 1. 3. The subunit sizes range from 13,000 to 116,000. The average subunit size for the whole series is close to 45,800. This corresponds to an average polypeptide chain length of about 425 amino acids. 4. No significant differences were found between the average subunit sizes for the separate classes of enzyme with different subunit numbers. 5. The enzymes were categorized in six different types according to the classification of the International Enzyme Commission. It was found that the oxido-reductases differed from the other types (transferases, hydrolases, lyases, isomerases, ligases) in showing a much greater proportion of multimeric enzymes. Only 1 out of 24 oxido-reductases appeared to be a monomer, whereas in the other enzyme types approximately one-third of the enzymes considered appeared to be monomers. No significant differences in subunit size were found between the various enzyme types. 6. It was found that, in general, where two or more separate gene loci are concerned in determining sets of isozymes with the same or very similar enzyme characteristics, there is a close correlation in subunit size and in most, though not all, cases the subunit numbers are the same.

Chromosome Mapping↗

Isozymes of glyceraldehyde-3-phosphate dehydrogenase in man and other mammals.

Multiple electrophoretically distinct forms of glyceraldehyde-3-phosphate dehydrogenase have been observed in human and other mammalian tissues. The human isozymes appear to have essentially the same structural and kinetic properties. An apparent correlation between red-cell age and the relative intensities of the isozymes supports the idea that the isozymes arise as a result of post-translational modification of the polypeptide chain. The possibility that a second locus is involved in the determination of these isozymes is discussed.

Adult↗