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D Vestweber

Publications and source records attributed to D Vestweber.

106 records · Page 6Linked to original sources

Interaction between mitochondria and the nucleus.

The interaction between the mitochondrial and the nuclear genome is in part mediated by proteins (and possibly also RNAs) which are encoded in the nucleus and imported into mitochondria. We are beginning to understand how proteins can penetrate across both mitochondrial membranes and how some of these proteins can regulate the expression of specific mitochondrial genes.

Amino Acid Sequence↗

Point mutations destabilizing a precursor protein enhance its post-translational import into mitochondria.

In order to study the role of protein unfolding during post-translational protein import into mitochondria, we destabilized the structure of a mitochondrial precursor protein by site-directed mutagenesis. The precursor consisted of the first 16 residues of the yeast cytochrome oxidase subunit IV precursor fused to mouse dihydrofolate reductase. Labilization of the folded precursor structure was monitored by increased susceptibility to protease and diminished ability of methotrexate to block import of the precursor into isolated yeast mitochondria. On comparing the original precursor with two mutant forms that were destabilized to different degrees, increased labilization correlated with an increased rate and efficiency of import into mitochondria. This supports the view that the precursor must unfold in order to enter the mitochondria.

Animals↗

A chimeric mitochondrial precursor protein with internal disulfide bridges blocks import of authentic precursors into mitochondria and allows quantitation of import sites.

Bovine pancreatic trypsin inhibitor (which contains three intramolecular disulfide bridges) was chemically coupled to the COOH terminus of a purified artificial mitochondrial precursor protein. When the resulting chimeric precursor was presented to energized isolated yeast mitochondria, its trypsin inhibitor moiety prevented the protein from completely entering the organelle; the protein remained stuck across both mitochondrial membranes, with its NH2 terminus in the matrix and its trypsin inhibitor moiety still exposed on the mitochondrial surface. The incompletely imported protein appeared to "jam" mitochondrial protein import sites since it blocked import of three authentic mitochondrial precursor proteins; it did not collapse the potential across the mitochondrial inner membrane. Quantification of the inhibition indicated that each isolated mitochondrial particle contains between 10(2) and 10(3) protein import sites.

Alcohol Dehydrogenase↗

Mitochondria can import artificial precursor proteins containing a branched polypeptide chain or a carboxy-terminal stilbene disulfonate.

A purified, artificial precursor protein was used as a transport vehicle to test the tolerance of the mitochondrial protein import system. The precursor was a fusion protein consisting of mouse dihydrofolate reductase linked to a yeast mitochondrial presequence; it contained a unique cysteine as its COOH-terminal residue. This COOH-terminal cysteine was covalently coupled to either a stilbene disulfonate derivative or, with the aid of a bifunctional cross-linker, to one of the free amino groups of horse heart cytochrome c. Coupling to horse heart cytochrome c generated a mixture of branched polypeptide chains since this cytochrome lacks a free alpha-amino group. Both adducts were imported and cleaved by isolated yeast mitochondria. The mitochondrial protein import machinery can thus transport more complex structures and even highly charged "membrane-impermeant" organic molecules. This suggests that transport occurs through a hydrophilic environment.

Biological Transport↗

The structure of cell adhesion molecule uvomorulin. Insights into the molecular mechanism of Ca2+-dependent cell adhesion.

We have determined the amino acid sequence of the Ca2+-dependent cell adhesion molecule uvomorulin as it appears on the cell surface. The extracellular part of the molecule exhibits three internally repeated domains of 112 residues which are most likely generated by gene duplication. Each of the repeated domains contains two highly conserved units which could represent putative Ca2+-binding sites. Secondary structure predictions suggest that the putative Ca2+-binding units are located in external loops at the surface of the protein. The protein sequence exhibits a single membrane-spanning region and a cytoplasmic domain. Sequence comparison reveals extensive homology to the chicken L-CAM. Both uvomorulin and L-CAM are identical in 65% of their entire amino acid sequence suggesting a common origin for both CAMs.

Amino Acid Sequence↗

Expression and distribution of cell adhesion molecule uvomorulin in mouse preimplantation embryos.

We have examined the synthesis and distribution of the cell adhesion molecule uvomorulin in mouse preimplantation embryos. Uvomorulin can already be detected on the cell surface of unfertilized and fertilized eggs but is not synthesized in these cells. Uvomorulin synthesis starts in late two-cell embryos and seems not to be correlated with the onset of compaction. The first signs of compaction are accompanied by a redistribution of uvomorulin on the surface of blastomeres. During compaction uvomorulin is progressively removed from the apical membrane domains of peripheral blastomeres. In compact morulae uvomorulin is no longer present on the outer surface of the embryo but is localized predominantly in membrane domains involved in cell-cell contacts of adjacent outer blastomeres. On inner blastomeres of compact morulae uvomorulin remains evenly distributed. This uvomorulin distribution once established during compaction is maintained and also found in the blastocyst: on trophectodermal cells uvomorulin localization is very similar to that in adult intestinal epithelial cells while uvomorulin remains evenly distributed on the surface of inner cell mass cells. The possible role of the redistribution of uvomorulin for the generation of trophectoderm and inner cell mass in early mouse embryos is discussed.

Animals↗

Molecular cloning of the mouse cell adhesion molecule uvomorulin: cDNA contains a B1-related sequence.

A clone (F20) containing coding sequences for the cell adhesion molecule uvomorulin was isolated by immunological techniques from cDNA library in the expression vector lambda gt11. The beta-galactosidase-uvomorulin fusion protein was used to affinity purify anti-uvomorulin antibodies. Affinity-purified antibodies recognized uvomorulin from cell lysates of embryonal carcinoma cells and reacted with the cell surface of embryonal carcinoma cells. The 1.8-kilobase cDNA insert hybridized to a single 4.3-kilobase poly(A)+ RNA species found only in cells expressing uvomorulin. Part of the nontranslated 3' sequences of the cloned uvomorulin cDNA is homologous to the interspersed B1 repeat of the mouse genome.

Animals↗

Identification of a putative cell adhesion domain of uvomorulin.

A rat monoclonal antibody (DECMA-1) selected against the murine cell adhesion molecule uvomorulin blocks both the aggregation of mouse embryonal carcinoma cells and the compaction of pre-implantation embryos. However, decompacted embryos eventually become recompacted in the presence of DECMA-1 and form blastocysts composed of both trophectoderm and inner cell mass. DECMA-1 also disrupts confluent monolayers of Madin-Darby canine kidney (MDCK) epithelial cells. DECMA-1 recognizes uvomorulin in extracts from mouse and dog tissues. Protease digestion of mouse and dog uvomorulin generated core fragments including one of 26 kd which reacted with DECMA-1. The same 26-kd fragment is recognized by anti-uvomorulin monoclonal antibodies which have been obtained from other laboratories and which dissociate MDCK cell monolayers and block the formation of the epithelial occluding barrier. This 26-kd fragment therefore seems to be involved in the adhesive function of uvomorulin.

Animals↗

Cell-adhesion molecule uvomorulin during kidney development.

We studied the expression of a cell adhesion molecule during morphogenesis of the embryonic kidney. The 120-kDa glycoprotein, called uvomorulin, is known to be present on a number of epithelia. During the development of the kidney, a mesenchyme is converted into an epithelium when it is properly induced. The uninduced mesenchyme did not express uvomorulin, as judged by immunofluorescence and immunoblotting using previously characterized antibodies. Uvomorulin does not appear in the mesenchyme as a direct consequence of induction. Rather it becomes detectable approximately 12 hr after completion of induction, at 30-36 hr in vitro when the cells adhere to each other. Distinct differences in uvomorulin expression were seen in the different parts of the nephron. In the mesenchymally derived epithelia (glomeruli, tubules), uvomorulin could be detected only in the tubules, whereas the epithelium of the glomeruli remained negative at all stages of development. Our embryonic studies show that these differences arise very early, as soon as the different parts of the nephron can be distinguished morphologically. It is likely that uvomorulin plays a role in the initial adhesion of the differentiating tubule cells. However, we failed to disrupt histogenesis by applying antibodies to the organ cultures of developing tubules although the antibodies penetrated the tissues well and bound to the differentiating cells.

Animals↗

Comparison of two cell-adhesion molecules, uvomorulin and cell-CAM 105.

Two cell adhesion molecules, cell-CAM 105 and uvomorulin (UM), were compared by analysing their antigenic structures, their activity in cell aggregation assays and their expression in various tissues. Cell-CAM 105 is a membrane glycoprotein which mediates the intercellular adhesion of reaggregating rat hepatocytes, and UM was first described to be involved in the compaction of preimplantation mouse embryos and embryonal carcinoma cells. UM is not only expressed during embryonic development but also in various adult tissues including liver, epithelia of lung, gut, kidney and uterus. A similar distribution for UM was found in rat tissues on cell types where cell-CAM 105 is known to be present. Our studies show that (i) cell-CAM 105 and UM are distinct and different proteins; (ii) uvomorulin is involved in the compaction of rat preimplantation embryos but Fab anti-UM has no effect on reaggregating rat hepatocytes, where Fab anti-cell CAM is effective; (iii) distribution studies show that UM is expressed on a broader range of epithelial cells while cell-CAM 105 is more restricted to hepatocytes and simple epithelia. In cases where both cell adhesion molecules are expressed on the same cell types they can be localized to different parts of the cell surface.

Adenosine Triphosphatases↗

Cell-adhesion molecule uvomorulin is localized in the intermediate junctions of adult intestinal epithelial cells.

Uvomorulin is a cell-adhesion molecule implicated in the compaction process of mouse preimplantation embryos and the aggregation of embryonal carcinoma cells. A rabbit antiserum against purified uvomorulin also reacts with epithelial cells of various adult tissues. In this study, we investigated the localization of uvomorulin on adult intestinal epithelial cells using electron microscopic analyses. Uvomorulin was shown to exhibit a highly restricted localization in the intermediate junctions of these cells. The results are discussed with respect to a possible adhesive function of uvomorulin on intestinal epithelial cells.

Animals↗

Rabbit antiserum against a purified surface glycoprotein decompacts mouse preimplantation embryos and reacts with specific adult tissues.

A rabbit antiserum against a purified embryonal carcinoma (EC) cell surface glycoprotein interferes with cell-cell interaction in mouse preimplantation embryos. The 123 kD glycoprotein seems not to be an integral membrane component. The reactivity pattern of the antiserum was studied by immunofluorescence on cryostat sections of post-implantation embryos and of adult tissues. During embryonic development positive reactions were found on all epithelial cells, irrespective of their germ layer origin. Epithelial cells of adult tissues--tongue, uterus, gut, kidney, trachea and liver--react with the antibodies. The results are compared with cell-adhesive molecules previously described on EC cells and preimplantation embryos.

Animals↗

Some structural and functional aspects of the cell adhesion molecule uvomorulin.

The cell adhesion molecule uvomorulin (UM) was analysed by comparing antisera produced against the whole molecule (gp123) with antisera made against fragments of UM. Of the proteins recognized by different anti-UM antisera (molecular weights of 123, 102, 92 and 84 kDa), the 102 kDa molecule is not derived from gp123. The 102 kDa molecule is not glycosylated and is also different from gp123 by peptide map analysis. However, rabbit antisera raised against the purified 102 kDa protein interfered with the aggregation of embryonal carcinoma (EC) cells. Also, a monoclonal antibody selected to interfere with EC cell aggregation recognized the 102 kDa molecule as well as gp123. Thus, the functional site of cell adhesion seems not to be mediated by sugar residues. Experimental evidence is provided suggesting that UM is not only involved in the compaction of preimplantation embryos but seems to be an ubiquitous cell adhesion molecule regulating epithelial cell adhesion mechanisms.

Animals↗

Extracellular folate deaminase of Dictyostelium discoideum.

Folate deaminase released from cells of Dictyostelium discoideum is heterogeneous with respect to molecular weight and stability at 60 degrees C. The most heat-stable component isoelectrofocuses in a broad band at approx. pH 6. The Km value of this component for folate is approx. 7 x 10(-7)M and Mr approx. 40 000. The major portion if not all of the deaminase binds to immobilized concanavalin A and lentil lectin. Extracellular folate deaminase has a pH-optimum of approx. pH 6.0. This is higher than that of lysosomal enzymes, which are also glycoproteins released into the extracellular medium.

Aminohydrolases↗