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Biomedical subjects

K Sandvig

Publications and source records attributed to K Sandvig.

At least 55 records · Page 3Linked to original sources

Inhibition of the vacuolar H(+)-ATPase with bafilomycin reduces delivery of internalized molecules from mature multivesicular endosomes to lysosomes in HEp-2 cells.

In the human carcinoma cell line HEp-2, endosomes are multivesicular bodies (MVBs) which gradually mature and eventually fuse with other mature endosomes and/or with preexisting lysosomes. Selective inhibition of the vacuolar H(+)-ATPase with bafilomycin A1 (Baf) did not influence endocytic uptake and recycling of the protein toxin ricin. Moreover, quantification of immunogold labeling on ultracryosections revealed that the frequency by which MVBs containing internalized cationized gold (Cat.Au) also labeled for the cation-independent mannose-phosphate receptor (MPR) was the same with and without Baf, suggesting that formation and maturation of MVBs were unchanged in the presence of Baf. However, degradation of ricin was strongly reduced by bafilomycin, and this reduction was not only due to increased pH in lysosomes. Thus, quantitative lmmunogold labeling showed that the Baf-induced alkalinization reduced the transfer of internalized Cat.Au to lysosomes, as defined by their content of human lysosome-associated membrane protein 1 (h-lamp-1) and cathepsin D. Accordingly, although low vacuolar pH does not seem to be required for transport to MPR-containing endosomes, it seems to be important for a late fusion step along the endocytic pathway.

Anti-Bacterial Agents↗

Diphtheria toxin endocytosis and membrane translocation are dependent on the intact membrane-anchored receptor (HB-EGF precursor): studies on the cell-associated receptor cleaved by a metalloprotease in phorbol-ester-treated cells.

Preincubation of Vero cells with 1 microM phorbol 12-myristate 13-acetate (PMA) decreased the specific binding of diphtheria toxin by about 50%, whereas the toxic effect, endocytic uptake and membrane translocation were completely blocked. Toxin bound to PMA-treated cells was released upon incubation with heparinase. The effect of PMA was abrogated in the presence of EDTA or N-(DL-[2-(hydroxyaminocarbonyl)methyl]-4-methyl-pentanoyl)-L-3-(2' - naphthyl)-alanyl-L-alanine 2-aminoethyl-amide (TAPI), a specific inhibitor of matrix metalloproteases. The results indicate that PMA induces proteolytic cleavage of the diphtheria-toxin receptor [heparin-binding EGF-like growth factor (HB-EGF)-precursor] outside the membrane anchor, and that about 50% of the growth-factor ecto-domain remains associated with the cells, due to binding to surface proteoglycans containing heparan sulphates. Although the cleaved cell-associated HB-EGF binds diphtheria toxin, it does not serve as a functional receptor, since neither toxin internalization nor translocation occurs. Thus the intact HB-EGF precursor is of crucial importance for its function as the diphtheria-toxin receptor.

Animals↗

Furin-induced cleavage and activation of Shiga toxin.

Shiga toxin has a single A subunit non-covalently associated with a pentamer of B subunits. The toxin has a trypsin-sensitive region near the COOH-terminal end of the A-chain, and upon cleavage, two disulfide bonded fragments, A1 and A2, are generated. These fragments are also formed upon incubation with cells. The disulfide loop contains the sequence (Arg-X-X-Arg), which is a consensus motif for cleavage by the membrane-anchored protease furin. We found that a soluble form of furin cleaves intact A-chain producing A1 and A2 fragments, and furin also seems to be responsible for rapid cellular cleavage of Shiga toxin. LoVo cells, which normally do not produce functional furin, cleave intact A-chain very efficiently when transfected with furin (LoVo/fur), whereas a control cell (LoVo/neo) cleaves the toxin very slowly. To investigate the role of this cleavage for intoxication of cells, we studied the ability of unnicked and furin-nicked toxin to inhibit protein synthesis in LoVo/fur and LoVo/neo cells. LoVo/fur cells were intoxicated equally well with unnicked and nicked toxin, whereas in LoVo/neo cells nicked toxin was about 20 times more active than unnicked toxin. The results suggest that cleavage of Shiga toxin is important for intoxication of cells, and they indicate that furin can cleave and thereby activate Shiga toxin in cells.

Amino Acid Sequence↗

Phorbol myristate acetate selectively stimulates apical endocytosis via protein kinase C in polarized MDCK cells.

We have examined the regulation of endocytosis in polarized Madin-Darby canine kidney (MDCK) cells. Using quantitative electron microscopy and biochemical measurements, we found that incubation with the tumor promoter phorbol 12-myristate 13-acetate (TPA) stimulated endocytosis of horseradish peroxidase (HRP) and ricin four- to fivefold at the apical side in MDCK cells, whereas the uptake at the basolateral membrane was unaffected. The use of several protein kinase inhibitors and TPA analogues indicated that the stimulation of apical endocytosis was mediated via protein kinase C independently of protein kinase A. This stimulation occurred even when the clathrin-dependent pathway was inhibited by acidification of the cytosol, suggesting that the TPA-stimulated uptake was associated with a clathrin-independent mechanism. Moreover, we found that TPA also stimulated recycling of ricin to the apical domain. Ultrastructural analysis of MDCK cells preincubated with TPA revealed that neither the morphology nor the size of the endosomes was altered compared to control cells. Using morphometry, no marked change in the apical plasma membrane area was detected after incubation with TPA. These data indicate that the TPA-stimulated endocytosis involved neither ruffling nor formation of macropinosomes in MDCK cells. Finally, we found that TPA also selectively stimulated apical endocytosis in the human colon adenocarcinoma cell line (Caco-2). The data suggest that protein kinase C is involved in a strong stimulation of apical endocytosis and might participate in the regulation of membrane trafficking between the apical plasma membrane and apical endosomes in polarized epithelial cells.

Animals↗

Role of processing and intracellular transport for optimal toxicity of Shiga toxin and toxin mutants.

Cleavage of Shiga toxin A-fragment at a highly trypsin-sensitive site increases its enzymatic activity. To investigate the role of this cleavage site in intoxication of cells, we studied the routing, cleavage, and toxicity of mutant toxin where the trypsin-sensitive site had been eliminated. Ultrastructural analysis of toxin tagged with horseradish peroxidase demonstrated that wild-type and mutant toxins were transported from endosomes to the trans-Golgi network and further through the Golgi cisterns to the endoplasmic reticulum. Wild-type toxin was much more efficient than the mutants in provoking rapid intoxication, but after prolonged incubation time also mutants were highly toxic. The cells were able to cleave both wild-type Shiga toxin and the mutants, but the cellular location for cleavage appears to differ. Wild-type toxin was cleaved in the presence of brefeldin A, which disrupts the Golgi cisterns. This indicates that the cleavage occurs in the endosomes or in the trans-Golgi network. In contrast, the mutant Shiga-His (R248H/R251H) was not cleaved in the presence of brefeldin A, indicating that the cleavage can occur only after the toxin has left the trans-Golgi network. In vitro experiments showed that the cytosolic enzyme calpain is able to cleave Shiga-His, and results from in vivo experiments are consistent with the possibility that cleavage is carried out by calpain after the mutant A-fragment has reached the cytosol.

Amino Acid Sequence↗

Delivery to lysosomes in the human carcinoma cell line HEp-2 involves an actin filament-facilitated fusion between mature endosomes and preexisting lysosomes.

We have addressed the following question: what is the mechanism behind the delivery of internalized molecules from mature endosomes to lysosomes in HEp-2 cells, and which role does the cytoskeleton play in this process? Quantitative electron microscopy and immunogold labeling revealed that whereas the cytoskeleton was not of importance for endosome maturation, actin filaments facilitated fusion of mature endosomes with preexisting lysosomes. Delivery to lysosomal degradation was not dependent on protein synthesis as determined biochemically, but was reduced by cytochalasin D. Observations made by electron microscopy as well as by video microscopy of living cells showed that the concerted action of actin filaments and microtubules was responsible for the random distribution and movement of endocytic organelles throughout the cell. Actin microfilaments, however, seem to facilitate perinuclear clustering and frequent fusion of mature endosomes and lysosomes, while microtubules play a role in preventing formation of large lysosome aggregates by separating endosomes and lysosomes and moving them toward the cell periphery. Taken together, our data suggest that delivery of internalized molecules to lysosomal proteolysis takes place by fusion of mature endosomes with preexisting lysosomes and that actin microfilaments somehow facilitate this step.

Actins↗

Diphtheria toxin at low pH depolarizes the membrane, increases the membrane conductance and induces a new type of ion channel in Vero cells.

Receptor-dependent translocation of diphtheria toxin across the surface membrane of Vero cells was studied using patch clamp techniques. Translocation was induced by exposing cells with surface-bound toxin to low pH. Whole cell current and voltage clamp recordings showed that toxin translocation was associated with membrane depolarization and increased membrane conductance. The conductance increase was voltage independent, with a reversal potential of approximately 15 mV. This value was unaffected by changing the Cl- gradient across the membrane and microfluorometric measurements showed that the cytosolic Ca2+ concentration was only marginally elevated by the translocation. The conductance increase is thus mainly due to monovalent cations. Exposing outside-out and cell-attached patches with bound toxin to low pH induced a new type of ion channel in the membrane. The channel current was inward at negative membrane potentials and the single channel conductance was approximately 30 pS. This value is about three times larger than for receptor-independent channels induced by diphtheria toxin or toxin fragments in artificial lipid membranes.

Animals↗

Selective regulation of apical endocytosis in polarized Madin-Darby canine kidney cells by mastoparan and cAMP.

We here demonstrate that mastoparan, fluoride, forskolin, cholera toxin, and 8-bromoadenosine-3'-5'-cyclic monophosphate all selectively stimulate apical endocytosis of the protein toxin ricin without increasing the uptake at the basolateral side of polarized Madin-Darby canine kidney cells. Activation of adenylyl cyclase and an increased level of cAMP seem to increase ricin endocytosis by a clathrin-independent mechanism since stimulation of endocytosis by cholera toxin and 8-bromoadenosine-3'-5'-cyclic monophosphate occurred even when the clathrin-dependent pathway was blocked by low cytosolic pH. The data suggest that mastoparan stimulates apical endocytosis by interacting with heterotrimeric G proteins, and also this stimulation of endocytosis appears to be clathrin independent since the uptake of transferrin at the apical side was strongly inhibited by mastoparan after brefeldin A-induced missorting of the transferrin receptor to this pole of the cell. In addition, mastoparan stimulated apical endocytosis when clathrin-mediated endocytosis was blocked by acidification of the cytosol. Furthermore, we provide evidence for the existence of clathrin-independent endocytosis on both the apical and the basolateral surface of control Madin-Darby canine kidney cells. Our results suggest that endocytosis at the apical pole of epithelial cells can be regulated selectively by a physiological signal.

8-Bromo Cyclic Adenosine Monophosphate↗

Endocytosis and intracellular sorting of ricin and Shiga toxin.

Ricin and Shiga toxin belong to a group of protein toxins with targets in the cytosol. These toxins consist of one moiety that binds the toxin molecule to cell surface receptors, and another enzymatically active moiety that enters the cytosol after endocytic uptake of the toxin. The toxins are of current interest in relation to disease and the construction of immunotoxins. Moreover, they have proven useful to investigate mechanisms of endocytosis and to follow intracellular pathways of transport. Some of the recent results obtained with ricin and Shiga toxin are discussed.

Bacterial Toxins↗

Dual mode of signal transduction by externally added acidic fibroblast growth factor.

Acidic fibroblast growth factor (aFGF), fused to diphtheria toxin and translocated into cells, stimulated DNA synthesis in toxin-resistant cells lacking functional aFGF receptors while having a high number of diphtheria toxin receptors. In NIH 3T3 cells that lack diphtheria toxin receptors, but have receptors for aFGF, both aFGF and the fusion protein induced tyrosine phosphorylation, but only aFGF as such entered the nuclei and stimulated DNA synthesis. The results indicate that signaling occurs partly through cell surface receptors and partly by transport of the growth factor into the cell.

3T3 Cells↗

Intermediates in translocation of diphtheria toxin across the plasma membrane.

Active diphtheria toxin consists of two parts, fragments A and B. Fragment A has enzymatic activity and inhibits protein synthesis. Fragment B binds to cellular receptors, and upon exposure to low pH it inserts into the membrane and facilitates translocation of the A fragment into the cytosol, concomitantly with formation of cation-selective channels. Reduction of the interfragment disulfide bridge is required for release of fragment A and intoxication. In cells treated with N-ethylmaleimide (NEM), which inhibits reduction of the disulfide bridge, fragment A was translocated to the cytosol but not released from fragment B. In the presence of NEM a peptide larger than fragment A was protected against extracellularly added Pronase. This peptide (M(r) approximately 24,000) was released to the supernatant fraction of saponin-treated cells. This indicates that fragment A, which is 21 kDa, is covalently attached via a disulfide bond to an N-terminal (M(r) approximately 3,000) piece of fragment B. The 24-kDa fragment disappeared upon reduction, and the 21-kDa fragment A appeared instead. NEM did not prevent channel activity by fragment B in the context of full-length toxin, demonstrating that channel formation occurs in spite of inhibited reduction of the disulfide bond. Thus, channel formation is not dependent on release of fragment A from the toxin-receptor complex.

Animals↗

Endocytosis without clathrin.

Internalization of membrane, fluid and receptor-bound ligands into cells occurs by at least two endocytic mechanisms. One is dependent on clathrin and responsible for concentrative uptake of growth factors and other ligands, whereas the other operates without clathrin. Clathrin-independent endocytosis, which might involve more than one mechanism, can contribute significantly to the total uptake of membrane and fluid in a cell. The properties and possible roles of clathrin-independent endocytosis are discussed in this article.

Journal Article↗

Retrograde transport from the Golgi complex to the ER of both Shiga toxin and the nontoxic Shiga B-fragment is regulated by butyric acid and cAMP.

Endocytosed Shiga toxin is transported from the Golgi complex to the endoplasmic reticulum in butyric acid-treated A431 cells. We here examine the extent of this retrograde transport and its regulation. The short B fragment of Shiga toxin is sufficient for transport to the ER. The B fragment of cholera toxin, which also binds to glycolipids, is transported to all the Golgi cisterns, but cannot be localized in the ER even after butyric acid treatment. Under all conditions the toxic protein ricin was found predominantly in the trans-Golgi network. There is no transport of endocytosed fluid to the Golgi apparatus or to the ER even after butyric acid treatment and in the presence of Shiga toxin, indicating that transport to the ER, through the trans-Golgi network and the cisterns of the Golgi apparatus, involves several sorting stations. Since Shiga toxin receptors (Gb3) in butyric acid-treated A431 cells seem to have a ceramide moiety with longer fatty acids than in untreated cells, the possibility exists that fatty acid composition of the receptor is important for sorting to the ER. Both retrograde transport and intoxication with Shiga toxin can also be induced by cAMP, supporting the idea that retrograde transport from the Golgi to the ER is required for intoxication. The data suggest that transport to the ER in cells in situ may depend on fatty acid composition and is regulated by physiological signals.

Bacterial Toxins↗

Entry of protein toxins in polarized epithelial cells.

The action of a number of toxins used in the formation of immunotoxins was studied in polarized cells. Diphtheria toxin inhibited protein synthesis most efficiently when added to the basolateral side of the kidney cells, MDCK-I, MDBK and Pt K2, and the colon carcinoma cell Caco-2. Similar findings were made with Pseudomonas aeruginosa exotoxin A in MDCK-I, Pt K2, and Caco-2 cells, and with modeccin and volkensin in MDCK-I cells. In accordance with the toxicity data, diphtheria toxin bound specifically to the basolateral side of MDCK-I cells but not to the apical side. On the other hand, in the trophoblastic BeWo cell line there was little or no difference in the toxic effect of P. aeruginosa exotoxin A and modeccin added to the two sides. The plant toxins ricin and abrin and the bacterial Shigella toxin inhibited protein synthesis approximately equally well in all cell lines tested whether they were added apically or basolaterally. The results indicate that protein toxins are able to enter cells from both the apical and basolateral sides provided receptors are present. The consequences for the preparation of immunotoxins are discussed.

ADP Ribose Transferases↗

Rapid increase in pH set-point of the Na(+)-in-dependent chloride/bicarbonate antiporter in Vero cells exposed to heat shock.

Internal pH (pHi) is in Vero cells regulated mainly by three antiports. Na+/H+ antiport and Na(+)-dependent Cl-/HCO3- antiport increase pHi in acidified cells, and Na(+)-independent Cl-/HCO3- antiport lowers pHi in cells after alkalinization. The activities of the antiporters were altered in cells after exposure to 41-45 degrees C. Under such conditions the Na+/H+ antiport and the Na(+)-dependent Cl-/HCO3- antiport were both stimulated, whereas the Na(+)-independent Cl-/HCO3- antiport was inhibited in such a way that a higher pH value was required to activate it. This alteration was also induced by some other forms of cellular stress, but did most likely not involve stress proteins as protein synthesis was not required. The possibility of regulation by alteration in protein phosphorylation is discussed.

Animals↗

Are caveolae involved in clathrin-independent endocytosis?

In addition to endocytosing molecules via clathrin-coated pits, cells also internalize membrane and fluid by a clathrin-independent endocytic mechanism. In this article we search for the equivalent of clathrin-coated pits in clathrin-independent endocytosis, and discuss some pitfalls in the interpretation of electron micrographs. We also discuss how the early steps in clathrin-independent endocytosis might be analysed morphologically, and we argue that caveolae are not involved in clathrin-independent endocytosis.

Journal Article↗

Entry of Shiga toxin into cells.

The effect of Shiga toxin with mutations in the A fragment has been tested on cells in order to get more information about the processing of the A fragment during entry into the cytosol. A mutant with a deletion between the A1 and A2 domain in the A fragment is resistant to cleavage by trypsin and is less toxic than wild type toxin on both Vero and A431 cells. The results support the view that processing of the A fragment is important for the high toxicity of the wild type toxin. A number of cell lines are resistant to Shiga toxin although they bind the toxin. However, A431 cells can be sensitized by butyric acid treatment, and transport of Shiga toxin to the Golgi apparatus seems to be required for the intoxication in the sensitized cells. The role of retrograde transport through the Golgi apparatus to the endoplasmic reticulum (ER) will be discussed.

Amino Acid Sequence↗