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V Niggli

Publications and source records attributed to V Niggli.

At least 37 records · Page 2Linked to original sources

Effects of cytochalasin D on shape and fluid pinocytosis in human neutrophils as related to cytoskeletal changes (actin, alpha-actinin and microtubules).

We report that cytochalasin D (CD) is not a reliable tool to inhibit all forms of cell motility and actin polymerization in neutrophil granulocytes. In addition to the well-established effects of CD such as altered localization of F-actin, inhibition of surface ruffling, fluid pinocytosis and actin polymerization in agonist-stimulated cells, we find that in human neutrophils CD can 1) induce another type of continuous shape changes (10(-6) M and 10(-5) M CD), 2) stimulate fluid pinocytosis (10(-5) M CD), 3) increase actin polymerization (10(-5) to 10(-4) M CD) and alter the localization of F-actin and alpha-actinin (10(-6) to 10(-4) M CD). At 10(-5) M CD F-actin and alpha-actinin are preferentially located in different areas of the cell. At 10(-4) M CD actin and alpha-actinin may colocalize at the membrane but not in cytoplasmic foci. Thus, stimulation of shape changes, pinocytosis, actin polymerization and differential reorganization of the cytoskeleton occur at CD concentrations which are widely used to inhibit cell motility. The results show that CD is not a reliable tool to inhibit all movements of cells and actin polymerization in general. Shape changes, but not fluid pinocytosis and the relative redistribution of F-actin and alpha-actinin induced by 10(-5) M cytochalasin D are suppressed by 10(-5) colchicine. This indicates that also microtubules can play a role in determining neutrophil shape and movements.

Actinin↗

Insertion of filamin into lipid membranes examined by calorimetry, the film balance technique, and lipid photolabeling.

The interaction of the actin-binding protein filamin with mixtures of zwitterionic and anionic phospholipids (DMPC, DMPG, PC, PS) was studied in reconstituted lipid monolayers and bilayers. Protein-lipid interactions were investigated by differential scanning calorimetry, the film balance technique, and hydrophobic photoradiolabeling. For calorimetric assays, multilamellar vesicles (MLVs) and large unilamellar vesicles produced by the extrusion technique (LUVETs) were used. With MLVs, filamin induced a pronounced drop in phase transition cooperativity. Mixed DMPC/DMPG LUVETs showed a linear decrease of the main phase transition enthalpy and a significant shift in temperature for the solidus and liquidus lines with increasing mole fractions of reconstituted filamin. The insertion of native filamin into uncharged and negatively charged lipid monolayers was measured in time/area diagrams with the film balance technique. Finally, we have newly synthesized a highly sensitive lipid analogue, [125]TID-PC/16, which selectively labels membrane-embedded hydrophobic domains of proteins, and which proved to label filamin, supporting evidence that this protein partially inserts into the hydrophobic domain of liposomes.

Calorimetry, Differential Scanning↗

Identification of functional domains in the cytoskeletal protein talin.

The cytoskeletal protein talin potentially plays a key role in actin-membrane linkage. It is able to nucleate actin filament growth in vitro while binding simultaneously to lipid bilayers. Thrombin digestion of human platelet talin yields tow polypeptide domains of 200 kDa and 47 kDa. We have purified these fragments and analyzed their functional properties: the 200-kDa fragment was active in nucleating actin filament formation and reduced the viscosity of filamentous actin, comparable to the effects of the intact protein. The 47-kDa fragment was inactive in this respect. However, the 47-kDa polypeptide, but not the 200-kDa fragment, interacted specifically with large liposomes containing acidic phospholipids. This is demonstrated by selective, hydrophobic photolabeling of the 47-kDa fragment using phosphatidylserine liposomes containing trace amounts of a photoactivable phospholipid analogue and by selective co-sedimentation of this domain with the liposomes. The 200-kDa fragment, whether alone or in conjunction with the small fragment, neither incorporated significant amounts of label nor co-sedimented with the liposomes. We thus are able to attribute specialized functions to distinct domains on the talin molecule. These enable the protein to interact simultaneously with actin filaments and lipid membranes.

Actins↗

Selective effects of the PKC inhibitors Ro 31-8220 and CGP 41,251 on PMN locomotion, cell polarity, and pinocytosis.

Using two newly synthesized inhibitors, Ro 31-8220 and CGP 41,251, of protein kinase C (PKC), we analysed: (1) how distinct PMN functions (shape changes, locomotion, pinocytosis) are regulated, and (2) the role of protein phosphorylation and PKC in this process. We were able to transform: (1) resting PMNs into locomoting cells using fNLPNTL, (2) locomoting cells into non-locomoting highly pinocytic cells using PMA, and (3) PMA-stimulated cells showing marked pinocytosis into locomoting or into resting cells using Ro 31-8220. It is thus possible to selectively manipulate PMN function (resting state, locomotion, marked pinocytosis), indicating that there are different regulatory pathways. It was not possible to induce locomotion and marked pinocytosis simultaneously, indicating crosstalk between pathways. Ro 31-8220 inhibited PMA-induced shape changes (nonpolar cells) and pinocytosis, but not fNLPNTL-induced shape changes (polarity) and pinocytosis. At higher concentrations, Ro 31-8220 alone elicited cell polarity and chemokinesis, indicating that a constitutively active protein kinase is involved in maintaining the spherical shape of resting PMNs. Functional effects of another PKC inhibitor, CGP 41,251, on neutrophil function were strikingly different. CGP 41,251 selectively inhibited fNLPNTL-induced polarity and locomotion (but not colchicine or Ro 31-8220-induced polarity), and it failed to inhibit PMA-induced, stimulated pinocytosis and shape changes. Although the effects of Ro 31-8220 vs. CGP 41,251 on PMN function were strikingly different, the inhibition of profiles for constitutive and for fNLPNTL- or PMA-induced protein phosphorylation in intact PMNs showed only small differences, which could not yet be conclusively related to cell function.

Alkaloids↗

The PKC-inhibitor Ro 31-8220 selectively suppresses PMA- and diacylglycerol-induced fluid pinocytosis and actin polymerization in PMNs.

The PKC-inhibitor Ro 31-8220 inhibits stimulated fluid pinocytosis of human PMNs induced by the PKC-activators phorbol myristate acetate (PMA, IC50 = 1.35 x 10(-6) M) or diacylglycerols (OAG, diC8) by 95%, whereas Ro 31-8220 has no effect on D2O- or fNLPNTL-induced pinocytosis and enhances cytochalasin D- induced pinocytosis. Also formation of F-actin induced by PMA or diacylglycerols is selectively inhibited. The results indicate that a Ro 31-8220 -sensitive PKC is involved in signal transduction for enhanced pinocytosis and F-actin formation in response to one class of stimuli (classical activators of PKC) but not to others.

Actins↗

Evidence for a ternary interaction between alpha-actinin, (meta)vinculin and acidic-phospholipid bilayers.

The cytoskeletal component vinculin has been demonstrated by hydrophobic photoradiolabelling, to insert into bilayers containing acidic phospholipids and trace amounts of a photoactivatable analogue of lecithin. It is shown in this study that the higher-molecular-mass variant metavinculin and alpha-actinin, also share this property. alpha-Actinin and vinculin were also shown to associate with phosphatidylserine liposomes by chromatography of protein/lipid mixtures on a Bio-Gel A-5m column. Furthermore, interesting differences in the behaviour of binary mixtures of these proteins, in the presence of phosphatidylserine liposomes, are shown. Thus, incubation of alpha-actinin with vinculin or metavinculin, prior to the addition of liposomes, strongly inhibited the photoradiolabelling of alpha-actinin under conditions in which the liposome surface was non-limiting, but enhanced the labelling of vinculin. In contrast, vinculin and metavinculin did not mutually influence their labelling. Using gel-filtration chromatography, it was shown that alpha-actinin still bound to the vinculin-liposome complex, under conditions similar to those used for hydrophobic photolabelling with a non-limiting lipid surface. In the presence of limiting amounts of liposomes, the alpha-actinin/vinculin ratio was markedly decreased in the liposome fractions. Our results suggest the formation of a ternary complex consisting of vinculin, alpha-actinin and phospholipids. In this complex, both proteins interact at the bilayer, resulting in an altered conformation of the two proteins and, as a consequence, in modified bilayer interactions.

Actinin↗

Colchicine-induced stimulation of PMN motility related to cytoskeletal changes in actin, alpha-actinin, and myosin.

Colchicine-induced stimulation of polymorphonuclear leukocyte (PMN) locomotion is an interesting model because extension of blebs at the front occurs at a rate (about 2.4 microns/s) which is far above that reported for growth of actin filaments. The following cytoskeletal changes were observed in colchicine-treated PMNs: (1) a small increase in cytoskeleton-associated actin was noted, as well as a somewhat more pronounced increase in cytoskeleton-associated alpha-actinin, as compared with untreated or DMSO-treated controls. There was, however, no measurable increase in F-actin as determined by NBD-phallacidin binding; (2) the values for the ratio (alpha-actinin/actin) are lower in PMNs treated with colchicine for 30 min, as compared with PMNs stimulated with fNLPNTL for 1 minute (non-polar ruffling cells) or 30 min (polarized locomoting cells); thus, this ratio may depend on the type of PMN motility; (3) in polarized PMNs F-actin was mainly located linearly all along the cell membrane; there was more intense staining at the front of the cells; (4) alpha-actinin appeared to colocalize with F-actin at the leading front, but not with F-actin at the tail of polarized cells; (5) myosin was preferentially found at the rear part of polarized cells but not or only to a small extent at the front. Our data indicate a close functional correlation between microtubules and microfilaments. We speculate that F-actin in combination with alpha-actinin promotes expansion of pseudopods, whereas myosin combined with F-actin promotes contraction.(ABSTRACT TRUNCATED AT 250 WORDS)

Actinin↗

Inhibition of chemotactic peptide-induced development of cell polarity and locomotion by the protein kinase C inhibitor CGP 41 251 in human neutrophils correlates with inhibition of protein phosphorylation.

Several protein kinase inhibitors of the staurosporine type displaying different enzyme specificity were used to study the role of protein kinase C (PKC) in motile neutrophil functions. Effects on protein phosphorylation, F-actin localization, morphology, and locomotion were determined. Only staurosporine, but not another inhibitor more specific for PKC (CGP 41 251) or inhibitors of cyclic nucleotide-dependent kinases (KT 5720, KT 5822), induced formation of F-actin-enriched surface protrusions at nanomolar concentrations in initially spherical neutrophils. The inhibitor with the highest specificity for PKC, CGP 41 251, had no effect on morphology and F-actin localization of resting cells up to 1 microM. However, this inhibitor suppressed front-tail polarity and locomotion in chemotactic peptide-stimulated cells. The cells became nonpolar with surface projections instead. Inhibition of front-tail polarity induced by CGP 41 251 strongly correlated with inhibition of in situ phosphorylation of a 67-kDa protein (IC50 = 0.2 microM), whereas induction of polarity by chemotactic peptide was associated with increased phosphorylation of this protein. Kinase inhibitors inactive on PKC (KT 5720, KT 5822) did not affect development of front-tail polarity. We conclude that a kinase involved in the phosphorylation of a 67-kDa protein, very likely a PKC isoform, may be important for the development of cell polarity and locomotion. In contrast, chemotactic peptide-induced formation of actin-containing protrusions may not be mediated by this enzyme.

Actins↗

Protein phosphatase inhibitors okadaic acid and calyculin A alter cell shape and F-actin distribution and inhibit stimulus-dependent increases in cytoskeletal actin of human neutrophils.

The phosphatase inhibitors okadaic acid and calyculin A were found to elicit or to modify several neutrophil responses, suggesting that dephosphorylation plays a regulatory role. The concentrations of okadaic acid (> or = 1 mumol/L) that were effective on neutrophil functions (shape changes and marginal stimulation of pinocytosis) were shown to stimulate the incorporation of 32PO4 into many neutrophil proteins several-fold. Calyculin A was effective at 50-fold lower concentrations. In the presence of the inhibitors, the cells exhibited a nonpolar shape and the polarization response induced by chemotactic peptide was inhibited. Both phosphatase inhibitors also induced the association of F-actin with the cell membrane. A steady-state phosphatase activity is thus involved in maintaining shape and F-actin localization of resting cells. Inhibitors alone had no significant effect on the amount of cytoskeleton-associated actin. The increase in cytoskeletal actin observed at 30 minutes of stimulation with phorbol ester or 5 to 30 minutes of stimulation with chemotactic peptide, however, was abolished by okadaic acid or calyculin A, suggesting an important role of a phosphatase. In contrast, the early increase in cytoskeleton-associated actin observed at 1 minute of stimulation with peptide was not affected. This finding indicates that the increased association of actin with the cytoskeleton in the early and the later stages of neutrophil activation may be mediated by different signalling pathways.

Actins↗

Probing actin and liposome interaction of talin and talin-vinculin complexes: a kinetic, thermodynamic and lipid labeling study.

Talin purified from human platelets and chicken gizzard smooth muscle is an actin and lipid binding protein. Here, we have investigated the effect of vinculin on (a) talin-nucleated actin polymerization and (b) insertion of talin into lipid bilayers. Calorimetric data show ternary complex formation between talin, vinculin, and actin. Actin-talin, actin-vinculin and actin-(talin-vinculin) binding and rate constants as well as actin polymerization rates for all three protein species have been determined by steady state titration, stopped-flow, and fluorescence assay. In contrast to an increase of the polymerization rate by a factor of less than 2 for actin-talin and actin-(talin-vinculin) when lowering the temperature, we measured a decrease in rates for actin alone and actin-vinculin. The overall equilibrium constants (Keq) in the van't Hoff plot proved linear and were of one-step reactions. Thermodynamic data exhibited signs of van der Waal's binding forces. Using the photoactivatable lipid analogue [3H]PTPC/11, which selectively labels membrane-embedded hydrophobic domains of proteins, we also show that talin partially inserts into the hydrophobic bilayer of liposomes. This insertion occurs in a similar manner irrespective of preincubation with vinculin.

Actins↗

Alpha-actinin and vinculin in human neutrophils: reorganization during adhesion and relation to the actin network.

We have studied the reorganization of vinculin and alpha-actinin during the process of adhesion in human neutrophils using immunofluorescence microscopy and interference reflection microscopy (IRM). Neutrophils in contact with uncoated glass formed black IRM areas in the cell periphery, indicative of very close contact with the substratum. Eight to twelve minutes after addition of cells to glass, vinculin was found to become concentrated in small patches at the cell periphery, partially colocalizing with the black IRM areas and with small F-actin-containing adherent protrusions. In contrast, vinculin was not significantly enriched in the less adherent F-actin-rich large pseudopods. alpha-Actinin became enriched during cell adhesion in retraction fibers and, in 40-50% of the inspected cells, also in large less adherent pseudopods where it colocalized with F-actin. The latter finding suggests a continuous dynamic reorganization of pseudopods, with incorporation of alpha-actinin at a certain stage. Disruption of the actin network with cytochalasin D revealed a differential interaction of alpha-actinin and vinculin with the actin network. alpha-Actinin was strongly influenced by cytochalasin D, comparable to F-actin, and both proteins formed colocalizing peripheral caps in 10(-5) M of the drug. Vinculin organization in contrast was not affected by up to 10(-6) M cytochalasin. At 10(-5) M of the drug, however, the patches disappeared completely, vinculin now assuming a diffuse cytoplasmic location. Our results suggest a specialized function of vinculin in adhesion sites of human neutrophils, whereas alpha-actinin may structure the actin network in retraction fibers and in less adherent pseudopods.

Actinin↗

On the role of protein kinases in regulating neutrophil actin association with the cytoskeleton.

We have investigated the effect of staurosporine-type protein kinase inhibitors, displaying different enzyme specificity, on the association of actin with the neutrophil cytoskeleton. In resting cells, nanomolar concentrations of staurosporine induced a rapid increase in cytoskeleton-associated actin. Other inhibitors, more specific for protein kinase C (PKC) or kinases dependent on cyclic nucleotides, induced a much smaller response, indicating that inhibition of these enzymes is not involved in the staurosporine-dependent rise. Therefore, inhibition of an unknown staurosporine-sensitive enzyme, not identical with PKC or one of the cyclic nucleotide-dependent kinases, can trigger an increase in cytoskeletal actin. It is well known that chemotactic peptide induces a rapid rise in cytoskeletal actin, followed by a decrease at later times after the onset of activation. Preincubation with CGP 41,251, a relatively specific inhibitor for PKC, did not affect these two events at concentrations of the drug which, in separate experiments, inhibited markedly phorbol ester induced protein phosphorylation in intact neutrophils. Thus the chemotactic peptide-induced changes in the level of cytoskeletal actin appear to be independent of PKC activation.

Actins↗

Diversity in motile responses of human neutrophil granulocytes: functional meaning and cytoskeletal basis.

Different agonists induce motility and shape changes, but only a specific polarized shape is correlated with directed migration. An intact and dynamic actin network appears to be important for motility and migration. Motility is usually associated with an increased level of F-actin, and a specific location of F-actin into surface protrusions. For locomotion, a specific location of F-actin, rather than a large net increase in F-actin appears to be of importance. Three major groups of responses can be distinguished on the basis of the type of shape changes, functional activity and organization of F-actin. 1. Agents capable of polarizing cells, such as chemotactic peptides, and microtubule-disassembling agents elicit, at appropriate concentrations, a marked chemokinetic response, but little if any fluid pinocytosis. F-actin shows a polar location, being concentrated mainly in the protrusions at the leading front. Chemotactic peptide also induces an increase in the level of F-actin and cytoskeleton-associated actin. It is, however, not clear if front-tail polarity and locomotion, induced by chemotactic peptide after longer time of stimulation, correlate with an actual increase in the level of cytoskeleton-associated actin. 2. Activators of protein kinase C such as PMA and diacylglycerols, induce nonpolar cells with surface projections. PMA and diacylglycerols stimulate pinocytosis substantially. All three agents tend to inhibit locomotion or chemotaxis as an immediate response. They also increase the percentage of cytoskeletal actin, and induce an enrichment of F-actin in surface projections. 3. Circus movement may occur in response to D20. These cells show little or no stimulation of locomotion or pinocytosis. Thus the functional significance of this motor response remains to be elucidated. We conclude that different agonists can induce motility and shape changes, but not necessarily chemotaxis. Only a polarized shape is correlated with directed locomotion. An intact and dynamic actin network appears to be important for motility including locomotion. Motility is usually associated with an increased level of F-actin, and a specific location of F-actin into surface protrusions. The actin-associated proteins alpha-Actinin, myosin and actin-binding protein appear also to be important for pseudopod formation. For locomotion, a specific location of F-actin, rather than a large net increase in F-actin may be of importance.

Actins↗

The polarized distribution of poly(A+)-mRNA-induced functional ion channels in the Xenopus oocyte plasma membrane is prevented by anticytoskeletal drugs.

Foreign mRNA was expressed in Xenopus laevis oocytes. Newly expressed ion currents localized in defined plasma membrane areas were measured using the two-electrode voltage clamp technique in combination with a specially designed chamber, that exposed only part of the surface on the oocytes to channel agonists or inhibitors. Newly expressed currents were found to be unequally distributed in the surface membrane of the oocyte. This asymmetry was most pronounced during the early phase of expression, when channels could almost exclusively be detected in the animal hemisphere of the oocyte. 4 d after injection of the mRNA, or later, channels could be found at a threefold higher density at the animal than at the vegetal pole area. The pattern of distribution was observed to be similar with various ion channels expressed from crude tissue mRNA and from cRNAs coding for rat GABAA receptor channel subunits. Electron microscopical analysis revealed very similar microvilli patterns at both oocyte pole areas. Thus, the asymmetric current distribution is not due to asymmetric surface structure. Upon incubation during the expression period in either colchicine or cytochalasin D, the current density was found to be equal in both pole areas. The inactive control substance beta-lumicolchicine had no effect on the asymmetry of distribution. Colchicine was without effect on the amplitude of the expressed whole cell current. Our measurements reveal a pathway for plasma membrane protein expression endogenous to the Xenopus oocyte, that may contribute to the formation and maintenance of polarity of this highly organized cell.

Animals↗

Interaction in situ of the cytoskeletal protein vinculin with bilayers studied by introducing a photoactivatable fatty acid into living chicken embryo fibroblasts.

The cytoskeletal protein vinculin, a putative actin--plasma-membrane linker, has been shown by hydrophobic photo-labeling to interact in vitro directly with bilayers of acidic phospholipids [Niggli et al. (1986) J. Biol. Chem. 261, 6912-6918]. In order to demonstrate that such an interaction occurs also in intact cells, chicken embryo fibroblasts were incubated for 2 h with a 3H-labeled photoactivatable fatty acid, 11-(4-[3-(trifluoromethyl)-diazirinyl]phenyl)-[2-3H]undecanoic acid. This resulted in biosynthetic incorporation into cellular lipids of a fraction of the fatty acid added. Following photolysis, vinculin was immunoprecipitated from different subcellular fractions using a specific polyclonal anti-vinculin antibody. The protein was recovered from both the cytosolic and the crude membrane fraction. Vinculin from both fractions incorporated label, but the membrane-associated population was at least eight times more strongly photolabeled than the cytosolic protein. Moreover, photolysis increased only labeling of the membrane-bound but not of the cytosolic protein. These results suggest that the direct interaction of vinculin with the hydrophobic core of the phospholipid layer observed in vitro may also be relevant in intact cells, and may be involved in its function as a linker protein.

Animals↗

The protein kinase C inhibitor H-7 activates human neutrophils: effect on shape, actin polymerization, fluid pinocytosis and locomotion.

The present study demonstrates new properties of H-7. The protein kinase inhibitor H-7 is a potent activator of several neutrophil functions. Stimulation of initially spherical nonmotile neutrophils elicits vigorous shape changes within a few seconds, increases in cytoskeletal actin, altered F-actin distribution, increased adhesiveness and a relatively small increase in pinocytic activity. H-7 has also chemokinetic activities. Depending on the experimental condition, H-7 may elicit or inhibit neutrophil locomotion. It failed to induce chemotaxis. Thus, the response pattern elicited by H-7 is different from that of other leukocyte activators such as chemotactic peptides, PMA or diacylglycerols. The finding that H-7 can elicit shape changes, actin polymerization and pinocytosis suggests that these events can occur without activation of protein kinase C (PKC). PMA-induced shape changes and stimulation of pinocytosis were not inhibited by H-7.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine↗

Diacylglycerols and the protein kinase inhibitor H-7 suppress cell polarity and locomotion of Walker 256 carcinosarcoma cells.

We show that diacylglycerols, like phorbol myristate acetate (PMA), suppress cell polarity and locomotor activity of Walker carcinosarcoma cells in a dose-dependent fashion in vitro. OAG and diC8 show significant activity at concentrations above 3 x 10(-5) M. The inhibitory effect on locomotion is due to a reduction in the proportion of locomoting cells rather than gradual lowering of the speed of individual cells. Measurement of protein kinase C (PKC) activity in isolated fractions showed a substantial reduction of the total cellular PKC activity and of the activity in the cytosolic fraction following incubation of cells with 10(-8) M PMA for 30 min. In contrast, the total and relative PKC activity associated with the membrane fraction was increased by PMA. The effect of H-7, an inhibitor of PKC as well as of cAMP-dependent kinase, has been tested. H-7 suppressed cell polarity of "unstimulated" control cells (ID50 = 6.5 microM H-7), colchicine-stimulated cells (ID50 = 92 microM H-7) or cells treated with both PMA and colchicine (ID50 = 15 microM H-7), in a dose-dependent fashion. The locomotor activity of the cells was also suppressed. LTB4 had no clearcut activity in this system. Our findings suggest that diacylglycerols and H-7 are of interest as physiological or pharmacological stop signals for tumor-cell locomotion. Contrary to our expectations, PMA and diacylglycerols vs. H-7 did not produce opposing or antagonistic effects on cell polarity and locomotion. This similarity may be due to down-regulation of PKC by PMA and inhibition of PKC by H-7. However, the mechanisms underlying these novel effects of diacylglycerols and of H-7 on cell polarity and locomotion may be even more complex; they require further studies.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine↗