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Biomedical subjects

E W Johns

Publications and source records attributed to E W Johns.

At least 19 recordsLinked to original sources

Comparisons of the structures of the chromosomal high mobility group proteins HMG1 and HMG2 prepared under conditions of neutral and acidic pH.

The chromosomal proteins HMG1 and 2 have been prepared by salt extraction and phosphocellulose chromatography at neutral pH (Isackson, P.J., Debold, W.A. and Reeck, G.R. (1980) FEBS Lett. 119, 337-342) to minimize protein denaturation. The structures of these phosphocellulose-prepared high mobility group proteins have been compared with those of high mobility group proteins using the previously described acid-extraction conditions which fully denature the proteins. When compared in the same solvent conditions the acid-extracted proteins did not refold to give the same level of alpha-helical and tertiary folded structures as the phosphocellulose-prepared proteins, suggesting that acid treatment can cause some irreversible damage to the proteins. This finding was supported by changes in the structure observed when phosphocellulose-prepared HMG1 was neutralized after exposure to acid. Gel filtration studies reveal no differences in the size of the high mobility group proteins, phosphocellulose-prepared and acid-extracted proteins both being largely monomeric in solution. Little difference was detected in the DNA-binding properties of the two types of protein, nor was there any difference in the oxidation state of the cysteines. However, isoelectric focusing analysis revealed differences in the subfractions of HMG2 prepared by the two methods.

Animals↗

The characterisation of 1SF monomer nucleosomes from hen oviduct and the partial characterisation of a third HMG14/17-like in such nucleosomes.

Nucleosomes released from oviduct nuclei during brief micrococcal nuclease digestions are enriched in transcribed sequences (bloom K.S. and Anderson, J.N. (1978) Cell, 15, 141-150). Such nucleosomes released into this 1Sf supernatant fraction are enriched in proteins HMG14, 17 and a third lower molecular weight protein which we show in this paper to be related to HMG14 and 17. This protein, which we call HMGY, runs as a doublet on polyacrylamide gels. A similar doublet is present in smaller quantities in chicken erythrocyte nuclei. Monomer nucleosomes in the 1SF supernatant have been separated by polyacrylamide gel electrophoresis into two main bands. The slower moving band contains the three HMG proteins HMG14, 17 and Y but lacks histone H1.

Amino Acids↗

The high mobility group proteins and transcribed nucleosomes.

Monomer nucleosomes released from nuclei during brief micrococcal nuclease digestions are enriched in transcribed sequences (Bloom and Anderson, 1978). These nucleosomes are depleted in H1 and enriched in three high mobility group proteins HMG14, HMG17 and another HMG-like protein. Analysis of such nucleosomes by polyacrylamide gel electrophoresis reveal that they are heterogenous. Similarly, monomer nucleosomes soluble in 0.1 M NaCl separate on polyacrylamide gels into mainly two types of particle, one of which has HMG14 and HMG17 bound. However, the DNA of the HMG-nucleosomes from chick erythrocytes is not enriched in globin sequences, suggesting that protein rearrangement may have occurred.

Animals↗

Conformation studies of histone H1(0) in comparison with histones H1 and H5.

The class of lysine-rich histones, H1, found in most eukaryotic cells is largely replaced by another class of lysine-rich histones, H5, in avian and other erythrocytes. Erythrocytes are transcriptionally inert and this state has been attributed to the presence of H5. Although there are many sequence differences between H1 and H5 both molecules have very similar structures with three well-defined domains: a flexible basic N-terminal region, an apolar globular central region and a flexible basic C-terminal region. The lengths of the N-terminal regions are different for H1 and H5 whereas the lengths of the central and C-terminal regions are very similar. Considerable interest attaches to the findings that another type of mammalian lysine-rich histone H1(0) has an apolar region exhibiting considerable sequence homology (70%) with the central globular region of H5. The abundance of H1 in cells has been found to correlate inversely with their mitotic activities. Conformational studies using high-resolution nuclear magnetic resonance and optical spectroscopy have been made of H1 and its conformational behaviour has been compared with those of H1 and H5. H1 has been found to contain a central globular region of similar size to those found in H1 and H5. However, the conformation and stability of the globular domain of H1 are very similar to the globular region of H5 rather than H1. H1 appears to be a hybrid containing a major feature of the H5 histone. The globular regions of H1 and H5 are known to bind to a specific site on the nucleosome sealing off two turns of DNA. It is proposed that H1 binds to the same site.

Amino Acid Sequence↗

Histone H1o: its location in chromatin.

Histone H1o is an H5-like protein found in mammals. Its location in chromatin from animal tissues has been studied by micrococcal nuclease digestion and by quantitation. It was found that H1o occurs in the linker region of chromatin, and replaces H1 there as it does so. As much as a third of the H1 becomes replaced, at least in some tissues. The abundance of H1o was similar in bulk chromatin and in a mononucleosome population which was putatively enriched in transcribed DNA sequences. It was concluded that H1o probably does not suppress transcription.

Animals↗

The isolation of three new high mobility group nuclear proteins.

In addition to the four high mobility group non-histone chromosomal proteins HMG 1, 2, 14 and 17 and histone H1, perchloric acid extracts of nuclei contain a number of other smaller low molecular weight proteins. Three of these proteins (HMG 18, 19A, and 19B) have been purified and characterized. Protein HMG 18 has high lysine and alanine contents, resembling histone H1. Proteins HMG 19A and 19B have high contents of basic and acidic amino acids and resemble HMG proteins 1, 2, 14 and 17. N-terminal sequence analyses of the proteins show that they are not degradation products of histones or the other HMG proteins. However, there are sequence similarities between HMG 18 and histone H5, and between HMG 19B and HMG 17, supporting the view that the HMG proteins and the lysine-rich histones are functionally related.

Amino Acid Sequence↗

The isolation, characterization and partial sequences of the chicken erythrocyte non-histone chromosomal proteins HMG14 and HMG17. Comparison with the homologous calf thymus proteins.

Non-histone chromosomal proteins HMG14 and HMG17 were isolated from chicken erythrocyte nuclei. The proteins were characterized by amino acid analysis and by N-terminal sequence analyses. Comparison with the corresponding data for the calf thymus proteins shows that 11% of the residues in HMG14 protein and 5% of the residues in HMG17 protein differ between the two species. Proteins HMG14 and HMG17 therefore do not appear to exhibit the evolutionary stability shown by the nucleosome core histones. Detailed evidence for the amino acid sequence data has been deposited as Supplementary Publication SUP 50101 (4 pages) at the British Library Lending Division, Boston Spa, Wetherby, West Yorkshire LS23 7BQ, U.K., from whom copies may be obtained on the terms given in Biochem. 4. (1978) 169, 5.

Amino Acid Sequence↗

Structural studies on two high-mobility-group proteins from calf thymus, HMG-14 and HMG-20 (ubiquitin), and their interaction with DNA.

High mobility group (HMG) protein 14, which, like HMG-17, has been implicated in the structure of 'active chromatin' is shown by 270-MHz NMR and by circular dichroism to be in a disordered conformation in free solution. At low ionic strength protein HMG-14 binds to DNA by weak attachment of the N-terminal half of the molecule and is released by 0.3 M NaCl, the ionic strength at which the protein is extracted from chromatin. The protein HMG-20 (ubiquitin), a constituent of the conjugate protein A 24, is shown to be a highly stable compact globular protein that remains folded over a pH range of 1--13 and has a half-denaturation temperature of 85 degrees C when thermally denatured. Circular dichroism indicates 28% helix and 12% beta sheet. Despite having 15% basic residues it binds only very weakly to DNA. A detailed study of the folding of ubiquitin has been made by a combination of several NMR approaches, including decoupling, nuclear Overhauser enhancement and titration. Several line assignments have been made and it is shown that, although the tyrosine and histidine are buried residues, they are not adjacent to one another nor are they close to either of the phenylalanines, of which at least one is also a buried residue.

Amino Acid Sequence↗