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V Gerke

Publications and source records attributed to V Gerke.

90 records · Page 5Linked to original sources

Characterization of a discontinuous epitope on annexin II by site-directed mutagenesis.

Recombinant annexin II mutants were generated to identify amino acids involved in the formation of the discontinuous epitope of the monoclonal antibody H28. Analysis of the various mutant proteins by immunoblotting and enzyme-linked immunosorbent assay revealed that residues Lys27, Arg62, Glu65, and Arg67 are indispensable for H28 reactivity. Residues in equivalent positions are also in close proximity in the recently determined X-ray structure of annexin V, a different member of the same family of Ca2+/lipid-binding proteins. Thus annexins II and V show a similar three-dimensional folding in this region of the molecule. Consequently, the Ca2+ binding sites and the residues phosphorylated by pp60src (Tyr23) and protein kinase C (Ser25) most likely reside on opposite sides of the annexin II molecule.

Amino Acid Sequence↗

Primary structure of human, chicken, and Xenopus laevis p11, a cellular ligand of the Src-kinase substrate, annexin II.

The p11 protein is a member of the S-100 family of Ca(2+)-binding proteins and serves within the cell as a ligand of the tyrosine kinase substrate, annexin II. To obtain more structural information on this molecule, we have isolated and characterized p11 cDNA clones from several different species. A comparison of the deduced amino acid (aa) sequences reveals that mammalian and avian p11 are highly similar (at least 90% identical at the aa level), whereas p11 from Xenopus laevis shows a considerable degree of sequence variation (the aa sequence identity drops to approx. 60% when compared to mammalian or chicken p11). Interestingly, the C-terminal 18 aa, which are unique to p11 within the S-100 family, show a relatively high conservation among species. This high evolutionary conservation is in line with a structurally and/or functionally important role of this C terminus, e.g., in annexin II binding.

Amino Acid Sequence↗

Characterization of the cell-cycle-regulated protein calcyclin from Ehrlich ascites tumor cells. Identification of two binding proteins obtained by Ca2(+)-dependent affinity chromatography.

The nearly complete amino acid sequence obtained for murine calcyclin from Ehrlich ascites tumor cells reveals a very strong similarity with the rat and human sequences previously deduced from corresponding cDNA clones. While mouse and rat calcyclins are identical, the human protein shows at three positions a conservative amino acid replacement. Using a mouse calcyclin affinity matrix, two proteins with molecular masses of about 36 kDa have been purified from Ehrlich ascites tumor cells. The interaction between these two proteins and the immobilized calcyclin is strictly Ca2(+)-dependent. Immunological criteria and partial sequence data identify the two calcyclin-binding proteins as the phospholipid-binding protein annexin II (p36) and the glycolytic enzyme glyceraldehyde-3-phosphate dehydrogenase. These observations suggest that calcyclin may exert its physiological function by a Ca2(+)-dependent interaction with cellular targets, e.g. annexin II or glyceraldehyde-3-phosphate dehydrogenase.

Amino Acid Sequence↗

Identification of a homologue for annexin VII (synexin) in Dictyostelium discoideum.

Immunological and biochemical data have been used to show that the slime mold Dictyostelium discoideum expresses a Ca2+/phospholipid-binding protein related to vertebrate annexins. The Dictyostelium protein (apparent molecular mass 46 kDa) is recognized by an antibody directed against an annexin consensus peptide and exhibits the properties characteristic for annexins, i.e. it interacts in a Ca2(+)-dependent manner with negatively charged phospholipids. Limited proteolysis converts the 46-kDa protein into a 32-kDa derivative which retains the Ca2+/phospholipid-binding properties of the 46-kDa polypeptide. Partial protein sequence data identify the Dictyostelium protein as the typical annexin and indicate that the 46-kDa protein is an annexin VII (synexin) homologue. The identification of an annexin in a simple eucaryote should lead to the introduction of genetic approaches to analyze the physiological role of the annexins.

Amino Acid Sequence↗

Consensus peptide antibodies reveal a widespread occurrence of Ca2+/lipid-binding proteins of the annexin family.

Antibodies generated against synthetic peptides that correspond to highly conserved sequence motifs in the annexins reacted with a variety of annexins from different species. These include Xenopus laevis and Drosophila melanogaster, which contain cross-reacting polypeptides of apparent Mr 34,000 and 30,000. As expected for typical annexins, the two Drosophila proteins interact in a Ca2+-dependent manner with phosphatidylserine liposomes.

Amino Acid Sequence↗

The p36 substrate of pp60src kinase is located at the cytoplasmic surface of the plasma membrane of fibroblasts; an immunoelectron microscopic analysis.

p36, a member of the family of Ca2+/lipid-binding proteins, is a major cellular substrate for the tyrosine kinase encoded by the src oncogene. It occurs in two distinct physical states, as either a monomer or a heterotetramer (protein I), which comprises two copies each of p36 and a p11 polypeptide. Immunofluorescence microscopy and cell fractionation studies suggest that p36 and p11 are located underneath the plasma membrane. To investigate whether p36 is indeed associated with the plasma membrane, we have examined its cellular distribution at the electron microscopic level with gold-labeled antibodies. In human fibroblasts, p36 is clearly associated with the cytoplasmic side of the plasma membrane and shows a uniform and regular distribution. Decoration with monoclonal antibodies against p11 reveals the same distribution, suggesting that the p36(2)p11(2) complex (protein I) occurs in the cell in a strict association with the plasma membrane. Titration experiments show that this association is Ca2+ dependent and still occurs at physiological Ca2+ concentrations (10(-7) M). Fodrin, a non-erythroid spectrin, known to bind p36 in vitro, shows a very similar distribution on the cytoplasmic side of the plasma membrane. The results suggest that in a resting and unstimulated cell p36 and p11 reside as a complex bound to the inner side of the plasma membrane.

Antibodies, Monoclonal↗

A protein associated with small nuclear ribonucleoprotein particles recognizes the 3' splice site of premessenger RNA.

A HeLa cell nuclear extract active in splicing of pre-mRNA has been fractionated to identify the component that interacts with the 3' splice site. The activity that binds this region in an RNAase T1 protection assay copurifies with a 70 kd protein which is recognized by anti-Sm antibodies. Protein blots probed with labeled mRNA precursors either containing or lacking an intact 3' splice site reveal that the 70 kd polypeptide can bind pre-mRNA after immobilization on nitrocellulose and that it shows a preference for sequences located between the 3' splice junction and the site of lariat formation. Cofractionation during chromatography and immunoprecipitation by anti-2,2,7-trimethylguanosine antibodies demonstrate that the 3' splice site binding component associates with small nuclear ribonucleoprotein particles in low (1 mM) but not high (15 mM) Mg++ concentrations.

HeLa Cells↗

Three Ca2+-binding proteins from porcine liver and intestine differ immunologically and physicochemically and are distinct in Ca2+ affinities.

Intestinal brush-border-derived membrane vesicles contain, after demembranation in the presence of Ca2+, a subset of polypeptides that are specifically solubilized by the addition of Ca2+ chelators. As described previously, this fractionation scheme leads to the enrichment of two major proteins (I and II), one of which has been shown to be identical to the cellular p36K target of Rous sarcoma virus-encoded tyrosine-specific protein kinase (Gerke, V., and Weber, K., (1984) EMBO J. 3, 227-233). We have applied a similar protocol to membrane vesicles from porcine liver and purified a third Ca2+-binding protein (III). All three proteins had wide tissue distributions, and were absent from brain, red blood cells, and cardiac and skeletal muscle. Relative amounts varied between tissues, with protein I low in liver and protein III very low in intestine. Despite their similar extractability the three proteins (I, II, and III) are clearly distinct as far as immunological, biochemical, and physicochemical properties are concerned. They also show characteristic differences in their affinities for Ca2+ ions. The association constants of Ca2+ binding for proteins I and III have been estimated by means of indirect methods to be 10(4) M-1 (protein I) and 10(6) M-1 (protein III), while the direct Hummel-Dreyer method reveals Ca2+ binding to protein II, characterized by an association constant of 0.4 X 10(5) M-1 in the absence and 0.2 X 10(5) M-1 in the presence of 2 mM MgCl2. Conformational changes upon binding Ca2+ are described for protein II using circular dichroism, fluorescence emission, and UV difference spectra. These alterations could be attributed to an increased exposure of tyrosine and tryptophan residues to a more aqueous environment, and led to increased hydrophobicity of protein II that would explain the observed Ca2+-dependent interaction with hydrophobic matrices like phenyl-Sepharose.

Animals↗

Calcium-dependent conformational changes in the 36-kDa subunit of intestinal protein I related to the cellular 36-kDa target of Rous sarcoma virus tyrosine kinase.

Protein I from intestinal epithelium is biochemically and immunologically related to the fibroblast 36-kDa substrate of the Rous sarcoma virus-encoded tyrosine protein kinase (Gerke and Weber (1984) EMBO J. 3, 227-233). Protein I is a Ca2+-binding protein containing two copies each of a 36- and 10-kDa subunit. Denaturation/renaturation experiments show that the 36-kDa subunit is a monomer, whereas the 10-kDa subunit forms a dimer. Mixing of the subunits leads to reconstituted protein I. Physicochemical properties of protein I and its isolated subunits reveal a Ca2+-dependent conformational change in the 36-kDa subunit which involves the exposure of 1 or more tyrosine residues to a more aqueous environment. This change points to a Ca2+ binding constant of about 10(4) M-1 in the presence of 2 mM Mg2+ and induces the ability of protein I and the 36-kDa subunit to bind in vitro to F-actin and nonerythroid spectrin. The same high Ca2+ requirement has been reported for the in vitro tyrosine phosphorylation of a 35-kDa protein from A-431 carcinoma cells by the epidermal growth factor receptor kinase (Fava and Cohen (1984) J. Biol. Chem. 259, 2636-2645). Here we show that this 35-kDa substrate is biochemically and immunologically related to the 36-kDa subunit of protein I, which in turn corresponds to the substrate of the Rous sarcoma virus kinase. The protein of A-431 cells exists not only as a monomer but also as a dimer. The latter fraction contains a 10-kDa polypeptide immunologically related to the corresponding subunit of protein I. Given past results on the A-431 system, we speculate that the monomer rather than the dimer is the preferred in vitro substrate for the epidermal growth factor receptor kinase. Thus, the 10-kDa subunit, which induces dimerization of the phosphorylatable large subunit, may act as an inhibitor.

Actins↗

The regulatory chain in the p36-kd substrate complex of viral tyrosine-specific protein kinases is related in sequence to the S-100 protein of glial cells.

The major cytoplasmic target of various tyrosine-specific protein kinases is a 36-kd protein (p36). This protein can exist as a monomer or as a complex with a small subunit which seems to have a regulatory function. Amino acid sequence analysis of the small subunit from porcine intestine documents a unique polypeptide of 95 residues with a calculated mol. wt. close to 11 kd (p11). Since an immunologically related subunit of the same electrophoretic mobility is also found in the corresponding complex of chicken intestine p11 is well conserved across species. Unexpectedly, the sequence of p11 shows a high homology with the glia-specific protein S-100 whose biological function is not known. Although both proteins are dimers of rather small polypeptides we have not been able to detect in our preparations of p11 the moderate Ca2+ binding known for S-100. Certain implications of this sequence relation are discussed.

Amino Acid Sequence↗

Identity of p36K phosphorylated upon Rous sarcoma virus transformation with a protein purified from brush borders; calcium-dependent binding to non-erythroid spectrin and F-actin.

Membrane vesicles derived from the apical side of procine intestinal epithelial cells retain, after demembranation in the presence of calcium, two major proteins (I, II) which are released by the addition of calcium chelators. We have purified and characterized these two calcium-binding proteins. Protein I has a mol. wt. of 85 000 and contains two copies of a 36-K subunit and an additional 10-K subunit. It binds in a calcium-dependent manner to F-actin as well as to non-erythroid spectrin. Immunofluorescence microscopy reveals protein I-related antigens in the terminal web of the intestinal cell and in a submembraneous cortical layer in various tissue culture cells. Biochemical and immunological results document that the 36-K subunit of protein I is identical with the cellular p36K recognized as a major substrate for tyrosine phosphorylation by the sarc gene kinase in Rous sarcoma virus-transformed cells. The biochemical properties of protein I agree with its location seen in immunofluorescence microscopy and cell fractionation and suggest that the actin-spectrin network in the cortical layer may be affected by virus transformation.

Actins↗

Isolation and characterization of mammalian villin and fimbrin, the two bundling proteins of the intestinal microvilli.

Using a Mg2+ rather than the standard Ca2+ precipitation method microvillus membrane vesicles of porcine intestinal epithelial cells with a relatively well preserved cytoskeleton are obtained. Such vesicles are long and relatively straight and retain some of the core filament structure typical of non-vesicularized microvilli. They are therefore a good starting material for the purification of mammalian F-actin bundling proteins. We have purified the two previously predicted bundling proteins villin and fimbrin from such preparations and show that in most but not all aspects they resemble their counterparts in chicken microvilli. The now documented F-actin severing activity of purified porcine villin explains the easy vesicularization of porcine microvilli in the traditional Ca2+ precipitation method.

Animals↗

The immunomodulatory beta-galactoside-specific lectin from mistletoe: partial sequence analysis, cell and tissue binding, and impact on intracellular biosignalling of monocytic leukemia cells.

Nanogram quantities of the beta-galactoside-specific lectin from mistletoe (ML-I) that is composed of two different types of subunits exhibit immunomodulatory potency and enhance cytokine secretion in vitro and in vivo. Partial sequence analysis of the carbohydrate-binding B chain revealed a ragged N-terminus and overall homologies to the B subunit of Ricin D and Ricin E. Two evolutionarily neutral substitutions were apparent in the otherwise identical N-terminal sequences of the two toxic chains within the lectin preparation. On the basis of the influence of chemical modification by group-specific reagents on ligand binding, the lectin was biotinylated with biotinyl-N-hydroxysuccinimide ester to allow monitoring of cell binding. Monocytic leukemia cells (THP-1) specifically bound the lectin with positive cooperativity at low lectin concentrations. Radiolabelled lectin could be found in several organs and in an experimental solid tumor in biodistribution in mice. Its presence in a notable amount in spleens is especially noteworthy with respect to the already reported immunomodulation. To determine intracellular responses that precede the lectin-dependent augmentation of cytokine secretion, phosphorylation of proteins and phospholipids as well as Ca(2+)-mobilization were assessed in THP-1 cells. Quantitative increases of [32P]-phosphate incorporation were determined for a 28 kDa protein and for phosphatidylinositol-4,5-biphosphate. Similarly, the fluorescence activity of the intracellular Ca(2+)-indicator fluo-3 is elevated by approximately 25% after lectin treatment. Apparently, cell binding of the lectin is followed by modulation of biosignalling processes.

Amino Acid Sequence↗