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[Effect of phosphorylation by protein kinase C on the DNA binding activity of high mobility group protein I].

High mobility group protein I (HMG-I) is a nonhistone chromosomal protein. The present study aims to examine phosphorylation of HMG-I by protein kinase C (PKC) and its effect on HMG-I's DNA binding activity. HMG-I, extracted and purified from rat brain was phosphorylated in vitro equally well by PKC alpha, beta, gamma and delta. Phosphoamino acid analysis indicated that both serine and threonine residues were phosphorylated. The nonphosphorylated HMG-I was shown to bind specifically to the fragment of DNA containing bp -708 to -458 of RC3 genomic DNA, which is abundant in A-T sequences. In contrast, phosphorylation of HMG-I by PKC resulted in an attenuation of binding to the DNA fragment. It is suggested that phosphorylation of HMG-I by PKC may regulate DNA binding activity of HMG-I, thereby possibly altering its biological functions.

Animals↗

Postsynthetic modification of high mobility group proteins. Evidence that high mobility group proteins are acetylated.

High mobility group proteins were isolated from calf thymus and duck erythrocyte nuclei and the possibility was investigated that these proteins undergo acetylation similar to that occurring in some histones. Dinitrophenylation of the proteins followed by acid hydrolysis and amino acid analysis indicated that 2 to 3% of the lysine residues present were unavailable for reaction with fluorodinitrobenzene. Extensive enzymatic degradation with trypsin and pronase and subsequent amino acid analysis showed a significant amount of material eluting at the position of epsilon-N-acetyllysine. Recovery and acid hydrolysis of this material generated a peak eluting in the lysine position. In vitro radioactive labeling of calf thymus nuclei with [3H]acetate yielded labeled high mobility group proteins. All of these findings are in accord with the conclusion that high mobility group proteins are acetylated and that acetylation occurs as a postsynthetic modification of these proteins.

Acetylation↗

Interaction of a non-histone chromatin protein (high-mobility group protein 2) with DNA.

1. The interaction with DNA of the calf thymus chromatin non-histone protein termed the high-mobility group protein 2 has been studied by sedimentation analysis in the ultracentrifuge and by measuring the binding of the 125I-labelled protein to DNA. The results have been compared with those obtained previously by us [Eur. J. Biochem. (1974) 47, 263-270] for the interaction of high-mobility group protein 1 with DNA. Although the binding parameters are similar for these two proteins, high-mobility group protein 2 differs from high-mobility group protein 1 in that the former appears to change the shape of the DNA to a more compact form. 2. The molecular weight of high-mobility group protein 2 has been determined by equilibrium sedimentation and a mean value of 26 000 was obtained. 3. A low level of nuclease activity detected in one preparation of high-mobility group protein 2 has been investigated.

Animals↗

Characterization of human SMARCE1r high-mobility-group protein.

The high-mobility-group (HMG) proteins are chromatin-associated proteins that are common to all higher organisms. They bind DNA in a sequence-specific or non-sequence-specific way to induce DNA bending, and regulate chromatin function and gene expression. Here we report the characterization of an HMG box-containing gene, designated human Smarce1r gene. It contained an open reading frame (ORF) encoding 317 amino acids and had 86% and 94% identity with the murine Smarce1r ORF at the nucleic acid and amino acid level, respectively. A putative nuclear localization signal, one HMG domain, and a coiled-coil domain were localized. A single transcript of 1.6 kb was ubiquitously expressed in various human tissues except for the fetal brain in which the transcript was barely detected. Western blot analysis revealed that human SMARCE1r was expressed in specific tissues such as colon and placenta. Subcellular fractionation, DNA-affinity column chromatography, and electrophoretic mobility shift assays showed that human SMARCE1r was associated with the nuclear matrix and that it possessed DNA binding activity, as expected.

Amino Acid Sequence↗

A mini review of the high mobility group proteins of insects.

High mobility group (HMG) proteins are an abundant class of chromosomal proteins facilitate assembly of higher order structures. The mammalian HMG proteins have been grouped into three distinct families on the basis of their characteristic functional sequence: the HMGB, the HMGN, and the HMGA family. The HMG proteins of Drosophila melanogaster and Chironomus tentans are the best characterized dipteran insect HMG proteins. Three abundant members of this group of nonhistone proteins were detected in those insects. Two of them belong to the HMGB family and one to the HMGA family. The possible relatedness of these proteins to the formation of higher order nucleoprotein structures and their possible role in the regulation of transcription is discussed.

Amino Acid Motifs↗

Studies of acetylation and deacetylation in high mobility group proteins. Identification of the sites of acetylation in high mobility group proteins 14 and 17.

Duck erythrocytes were incubated with [3H]acetate both in the presence and absence of sodium butyrate. Subsequent perchloric acid extraction of the nuclei, followed by selective acetone precipitation, CM-Sephadex ion exchange chromatography, and gel filtration yielded radioactively labeled high mobility group (HMG) proteins HMG-14 and HMG-17 in pure form. Extensive enzymatic degradation of the proteins followed by amino acid analysis of the digests yielded a significant amount of material eluting in the position of epsilon-N-acetyllysine. Furthermore, automated Edman degradation of intact 3H-labeled HMG-14 and HMG-17 identified the specific sites of acetylation of these proteins. In both erythrocyte HMGs isolated from cells not exposed to butyrate, the lysine residue at position 2 was the only one found to be labeled. However, one additional site in HMG-14 and two additional sites in HMG-17 were found in the proteins from cells incubated in butyrate. Finally, studies of the enzymatic deacetylation of HMG-14 and HMG-17 confirmed that both nuclear proteins serve as deacetylase substrates and that butyrate inhibits their deacetylation, just as in the case of other HMG proteins and nucleosomal core histones.

Acetates↗

A study of the localization of high mobility group proteins in chromatin.

High mobility group (HMG) proteins from fetal calf thymus and mouse brain chromatin were purified and compared electrophoretically. The four major HMG proteins characteristic of fetal calf thymus chromatin (HMG's 1, 2, 14, and 17) were also found to be present in mouse brain chromatin. Nuclei from these two eucaryotic tissues were digested with DNase I and micrococcal nuclease and the acid-soluble proteins solubilized by the two nucleases in both tissues were analyzed on starch gels. Limited digestion of fetal calf thymus nuclei with DNase I led to the solubilization of a substantial fraction of proteins HMG-1 and HMG-2 together with smaller amounts of H1. In addition, limited digestion with micrococcal nuclease released approximately 70% of HMG's 1 and 2 and variable amount of H1 into the soluble fraction. The observation that HMG proteins 1 and 2 are selectively solubilized under conditions in which active genes have been shown to be preferentially digested in various other cell types suggests their selective association with chromatin regions which are transcriptionally competent.

Animals↗

Changes in superhelicity are introduced into closed circular DNA by binding of high mobility group protein I/Y.

Mammalian high mobility group HMG-I/Y chromatin proteins bind to the minor groove of A.T-rich DNA sequences with high affinity both in vivo and in vitro. Topoisomerase I-mediated relaxation assays, analyzed by one- and two-dimensional agarose gel electrophoresis, indicate that binding of recombinant human HMG-I/Y to closed circular DNA introduces positive supercoils at low protein to nucleotide molar ratios and negative supercoils at higher ratios. This is interpreted to mean that HMG-I/Y binding initially causes bending of the DNA helix followed by unwinding of the helix. In contrast, binding of another minor groove binding ligand, netropsin, introduces positive supercoils only. An in vitro produced mutant HMG-I/Y protein lacking the negatively charged carboxyl-terminal domain binds A.T-rich DNA approximately 1.4-fold better than the native protein, yet it is estimated to be 8-10-fold more effective at introducing negative supercoils. This finding suggests that the highly acidic C-terminal region of the HMG-I/Y protein may function as a regulatory domain influencing the amount of topological change induced in DNA substrates by binding of the protein. Footprinting of HMG-I/Y on negatively supercoiled A.T-rich DNA using diethylpyrocarbonate suggests that the protein is able to recognize, bind to, and alter the conformation of non-B-form DNA.

Amino Acid Sequence↗

Structural and functional consequences of mutations within the hydrophobic cores of the HMG1-box domain of the Chironomus high-mobility-group protein 1a.

The high-mobility-group protein 1 box domain (HMG1-BD) is a structural element found in several DNA-binding proteins in eukaryotic cells. Its structure is dominated by three alpha-helices. The spatial arrangement of these helices into an L-shaped molecule is maintained by a number of apolar residues organized into a main and a secondary hydrophobic core. To analyze the significance of these residues for proper folding, conformational stability, and ability to bind and bend DNA, we have mutated the highly conserved Trp14 of the Chironomus HMG1a protein and have synthesized a series of N-terminally truncated forms. The observed alterations in DNA-binding and DNA-bending characteristics were correlated with structural consequences, as revealed by CD spectroscopy, limited trypsin digestion, and transverse urea gradient gel electrophoresis. Mutation of the Trp14 residue (Chironomus [W14A]HMG1a) and deletion of the seven N-terminal residues, respectively, which are members of the main and the secondary core of Chironomus HMG1a, both resulted in a substantial unfolding of the protein. Unexpectedly, these mutants still retained their ability to bind and bend DNA. Conformational analysis of wild-type cHMG1a and [W14A]cHMG1a showed that the proteins unfold at 2-4 M urea. In contrast, their DNA complexes persisted even at 6-8 M of the denaturant. Multiple contacts between the HMG1-BD and the DNA are probably responsible for the unusual stability of the complexes.

Amino Acid Sequence↗

The isolation and partial sequence of peptides produced by cyanogen bromide cleavage of calf thymus non-histone chromosomal high-mobility-group protein 2. Sequence homology with non-histone chromosomal high-mobility-group protein 1.

Peptides produced by CNBr cleavage of non-histone chromosomal protein HMG 2 (CNBr peptides) were isolated and characterized, and their partial sequences were determined. The present sequence data account for over half of the sequence of the protein HMG (high-mobility-group) 2 molecule, and, together with previously published results, provide interesting information on the charge distribution within the molecule. Comparison of the CNBr-peptide-sequence data for protein HMG 2 with the previously published data on the CNBr peptides from protein HMG 1 reveals extensive sequence homology between the two proteins. Detailed evidence for the amino acid-sequence data has been deposited as Supplementary Publication SUP 50095 (6 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. J. (1978) 169, 5.

Amino Acid Sequence↗

DNA-binding properties of the tandem HMG boxes of high-mobility-group protein 1 (HMG1).

High-mobility-group protein 1 (HMG1) is a conserved chromosomal protein with two homologous DNA-binding HMG-box domains, A and B, linked by a short basic region to an acidic carboxy-terminal tail. NMR spectroscopy on the free didomain (AB) shows that the two HMG boxes do not interact. The didomain has a higher affinity for all DNA substrates tested than single HMG-box domains and has a significantly higher ability to distort DNA by bending and supercoiling. The interaction of the didomain with DNA is stabilized by the presence of the basic region (approximately 20 residues, 9 of which are Lys) that links the second HMG box to the acidic tail in intact HMG1; this may be, at least in part, why this region also enhances supercoiling of relaxed circular DNA by the didomain and circularization of short DNA fragments (in the presence of ligase). Competition assays suggest significantly different structure-specific preferences of single and tandem HMG boxes for four-way junction and supercoiled plasmid DNA. Binding to supercoiled DNA appears to be promoted by protein oligomerization, which is pronounced for the didomains. Electron microscopy suggests that the oligomers are globular aggregates, associated with DNA looping. One box versus two (or several) is likely to be an important determinant of the properties of (non-sequence specific) HMG-box proteins.

Binding Sites↗

High mobility group protein HMGA1 expression in breast cancer reveals a positive correlation with tumour grade.

Members of the HMGA protein (high mobility group protein A) family act as master switches of the chromatin structure by bending DNA and thus modulating the formation of transcription factor complexes of a number of target genes. Accordingly, HMGA proteins have been shown to be associated with the development and/or progression of a variety of benign and malignant tumours. Nevertheless, the HMGA1 expression studies published so far have not included primary breast cancer samples. In this study we have investigated the HMGA1 expression patterns in a series of 170 breast cancer samples by immunohistochemistry. We have found a strong variation in HMGA1 expression between the tumours. Based on an immunoreactive score (IRS) 14.1% of the tumour samples were scored to IRS 8-12 (strong positivity for HMGA1), 24.7% were scored to IRS 4-6 (moderate positivity), 25.3% were scored to IRS 1-3 (weak positivity), and 35.9% showed no positivity at all. Immunoreaction could be detected in all histological types of breast cancers analysed with the exception of invasive papillary and cribriform carcinoma. Statistical analysis revealed a strong correlation between tumour grade and HMGA1 expression (rs=0.3516, p<0.0001). Thus, the HMGA1 expression level can be considered a potential prognostic marker for breast cancer.

Breast Neoplasms↗

Stimulation of transcription from different RNA polymerase II promoters by high mobility group proteins 1 and 2.

High mobility group proteins (HMGs) 1 and 2 are shown to stimulate transcription in vitro from a number of RNA polymerase II promoters. Greatest effects were seen on transcription from the SV40 late promoter, then the SV40 early promoter with similar levels of transcription enhancement being seen for the human metallothionein 2A, adenovirus major late and chicken feather keratin promoters. The results indicate that HMGs 1 and 2 act to increase initiation of transcription in vitro and differential effects on the promoters are consistent with their action being in part to enhance the binding or functional activity of promoter-specific transcription factors.

Adenoviruses, Human↗

Evidence for the location of high mobility group protein T in the internucleosomal linker regions of trout testis chromatin.

Antibodies against the trout testis non"histone chromosomal protein, high mobility group protein T (HMG-T), have been elicited in goats. The antiserum was shown to be specific for HMG-T and did not cross-react with histone 1 or with the other two trout testis HMG proteins, H6 and ubiquitin. Purified anti-HMG-T IgG was used to determine the location of HMG-T within chromatin subunits separated on sucrose gradients. Binding of fluorescent labeled anti-HMG-T to these subunits clearly supports the notion that this protein is associated not with the nucleosome core but rather with the internucleosomal linker regions, and previously suggested (Levy W., B., Wong, N.C.W., and Dixon, G. H. (1977) Proc. Natl. Acad. Sci. U.S.A. 74, 2810-2814).

Animals↗

Localization of nuclear proteins related to high mobility group protein 14 (HMG 14) in polytene chromosomes.

An antibody was raised against "high mobility group" nuclear protein 14 (HMG 14) from calf thymus, known to be associated with actively transcribed chromatin. By means of indirect immunofluorescence, it was shown to react with the nuclei of mouse fibroblasts and of brain cells from Xenopus and Drosophila, but not of Xenopus erythrocytes. The antibody was used to detect immunologically related proteins in giant chromosomes of the midge, Chironomus pallidivittatus. Indirect immunofluorescence with anti-HMG 14 antibody in polytene nuclei was restricted to the active puffs. Giant puffs (Balbiani rings) exhibited especially intense fluorescence in their peripheral regions. An inducible puff site, the Balbiani ring 6 locus, showed no reaction with the antibody prior to induction. When puff formation began, the chromosome site assumed a very intense fluorescence, which disappeared again when the Balbiani ring was recondensed. - Protein extracts of salivary gland nuclei were found on immunoblots to contain one major protein fraction that reacted with the anti-HMG 14 antibody. The electrophoretic mobility of this fraction was similar to that of calf thymus HMG 17. - It is concluded that actively transcribed puffs in polytene chromosomes contain HMG 14-related protein(s) that are not present in potentially active gene loci prior to induction.

Animals↗

A nuclear protein complex containing high mobility group proteins B1 and B2, heat shock cognate protein 70, ERp60, and glyceraldehyde-3-phosphate dehydrogenase is involved in the cytotoxic response to DNA modified by incorporation of anticancer nucleoside analogues.

Thiopurine treatment of human leukemia cells deficient in components of the mismatch repair system (Nalm6) initiated apoptosis after incorporation into DNA, as revealed by caspase activation and terminal deoxynucleotidyl transferase-mediated nick end labeling assay. To elucidate the cellular sensor(s) responsible for recognition of DNA damage in cells with an inactive mismatch repair system, we isolated a multiprotein nuclear complex that preferentially binds DNA with thioguanine incorporated. The components of this nuclear multiprotein complex, as identified by protein mass spectroscopy, included high mobility group proteins 1 and 2 (HMGB1, HMGB2), heat shock protein HSC70, protein disulfide isomerase ERp60, and glyceraldehyde 3-phosphate dehydrogenase. The same complex was also shown to bind synthetic oligodeoxyribonucleotide duplexes containing the nonnatural nucleosides 1-beta-D-arabinofuranosylcytosine or 5-fluoro-2'-deoxyuridine. Fibroblast cell line derived from Hmgb1(-/-) murine embryos had decreased sensitivity to thiopurines, with an IC(50) 10-fold greater than Hmgb1-proficient cells (P < 0.0001) and exhibited comparable sensitivity to vincristine, a cytotoxic drug that is not incorporated into DNA. These findings indicate that the HMGB1-HMGB2-HSC70-ERp60-glyceraldehyde 3-phosphate dehydrogenase complex detects changes in DNA structure caused by incorporation of nonnatural nucleosides and is a determinant of cell sensitivity to such DNA modifying chemotherapy.

Antimetabolites, Antineoplastic↗