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Biomedical subjects

A McNicol

Publications and source records attributed to A McNicol.

At least 19 recordsLinked to original sources

Incorporation of map kinases into the platelet cytoskeleton.

Erk1 (p44) and erk2 (p42) mitogen-activated protein (MAP) kinases are activated in agonist-stimulated platelets, although their role(s) in the activation process is unknown. In the present study, erk1, erk2 and the phosphorylated forms of both enzymes became associated with the contractile cytoskeleton in thrombin-stimulated platelets. Enzyme incorporation was accompanied by an increase in MAP kinase activity in the cytoskeleton, which was inhibited by PD98059. Pretreatment of the platelets with the arginine-glycine-aspartic acid-serine (RGDS) polypeptide enhanced both the cytoskeletal association and the enzyme activity, but cytochalasin D had no significant effect. Platelets from a patient with Glanzmann's thrombasthenia lack the alpha(IIb)beta(3) integrin and form only a rudimentary cytoskeleton, however, this cytoskeleton is enriched with both erk1 and erk2. These data suggest either that MAP kinases play a role in cytoskeletal rearrangement or that the cytoskeleton act as a frame to align MAP kinases with substrates in a highly integrated signal transduction pathway.

Adult↗

Fibroblasts require protein kinase C activation to respond to hyaluronan with increased locomotion.

Hyaluronan (HA) stimulates the motility of some but not all cell types. Here, we show that HA-promoted random motility of ras-transformed 10T1/2 (C3) fibroblasts requires activation of protein kinase C and is associated with rapid uptake of HA in a CD44 and RHAMM-dependent manner. The addition of HA to parental 10T1/2 fibroblasts (parental cells) does not stimulate random motility, but these cells can be 'primed' to respond to HA by treatment with the phorbol ester, PMA, for 4-6 h. This effect of PMA requires protein synthesis, PKC activity and is associated with enhanced uptake of HA. These results suggest that the ability of cells to respond to HA is regulated by a protein kinase C-dependent process that may promote uptake of HA.

Cell Line↗

CD63 associates with the alphaIIb beta3 integrin-CD9 complex on the surface of activated platelets.

The tetraspanins are integral membrane proteins expressed on cell surface and granular membranes of hematopoietic cells and have been identified in multi-molecular complexes with specific integrins. In resting platelets, CD63, a member of the tetraspanin superfamily, is present in dense granule and lysosomal membranes and, following platelet activation, translocates to the plasma membrane. In the present study, platelet activation by thrombin leads to incorporation of CD63 into the Triton-insoluble actin cytoskeletal fraction. This incorporation was inhibited by preincubation of platelets with RGDS or EGTA and did not occur in platelets from a patient with Glanzmann's thrombasthenia, suggesting that it was dependent upon alphaIIbbeta3. In activated platelets, the anti-CD63 MoAb, D545, co-immunoprecipitated CD63 with other surface-labeled proteins, including alphaIIbbeta3 and another tetraspanin, CD9. The association of CD63 with CD9 and alphaIIbbeta3, was not inhibited by preincubation of platelets with RGDS or EGTA. D545 did not inhibit the adhesion of activated platelets to purified extracellular matrix proteins, but significantly decreased adhesion of thrombin-activated platelets to neutrophils in a rosetting assay. D545 also caused disaggregation of platelets stimulated by ADP, but had no effect on aggregation induced by other agonists. These results are consistent with the proposal that CD63 becomes part of an alphaIIbbeta3-CD9-CD63 integrin-tetraspanin complex in activated platelets--an association that may modulate the function of alphaIIbbeta3-dependent interaction with other cells such as neutrophils.

Adult↗

Evidence for a role for phospholipase C, but not phospholipase A2, in platelet activation in response to low concentrations of collagen.

The release of arachidonic acid is a key component in platelet activation in response to low concentrations (1-20 microg/ml) of collagen. The precise mechanism remains elusive although a variety of pathways have been implicated. In the present study the effects of inhibitors of several potentially key enzymes in these pathways have been examined. Collagen 1-10 microg/ml) caused maximal platelet aggregation which was accompanied by the release of arachidonic acid, the synthesis of thromboxane A2, and p38MAPK phosphorylation. Preincubation with the dual cyclooxygenase/lipoxygenase inhibitor BW755C inhibited aggregation and thromboxane production, and reduced p38MAPK phosphorylation. A phospholipase C inhibitor, U73122, blocked collagen-induced aggregation and reduced arachidonic acid release, thromboxane synthesis and p38MAPK phosphorylation. Pretreatment with a cytosolic phospholipase A2 inhibitor, AACOCF3, blocked collagen-induced aggregation, reduced the levels of thromboxane formation and p38MAPK phosphorylation but had no significant effect on arachidonic acid release. In contrast inhibition of PKC by Ro31-8220 inhibited collagen-induced aggregation. did not affect p38MAPK phosphorylation but significantly potentiated arachidonic acid release and thromboxane formation. Collagen caused the tyrosine phosphorylation of phospholipase Cgamma2 which was inhibited by pretreatment with U73122, unaffected by AACOCF3 and enhanced by Ro31-8220. These results suggest that cytosolic phospholipase A2 plays no role in the arachidonic acid release in response to collagen. In contrast, the data are consistent with phospholipase Cgamma2 playing a role in an intricately controlled pathway, or multiple pathways, mediating the release of arachidonic acid in collagen-stimulated platelets.

Arachidonic Acid↗

Suppression of lymphocyte mitogenesis by tamoxifen: studies on protein kinase C, calmodulin and calcium.

The effect of tamoxifen (TX; 1.0 microM) on the mitogenic response of rat lymphocytes was compared with the effect of drugs that are known to act on protein kinase C (PKC), calmodulin (CM), and calcium (Ca(2+)). The calcium ionophore A23187 (0.2 microM) was mitogenic on its own which was not influenced by TX. The agents modulating PKC or CM (phorbol-myristate-13-acetate; R24571, chlorpromazine) influenced mitogenesis differently than did TX. General inhibition of lymphocyte proliferation was seen with the Ca(2+) antagonist agents (EGTA, TMB-8) as with TX. The antiproliferative effect of TX was partially reversed by the increase of Ca(2+) in the culture medium when T cell mitogens were used, but not in the case of lipid A, a B lymphocyte mitogen. However, the concanavalin A-induced Ca(2+) influx was further elevated by TX which differed from the effect of the Ca(2+) channel-blocking agent verapamil. The results suggest that TX resets the threshold stimulus necessary for mitogenesis and is completely reversible.

Animals↗

Anisomycin does not activate p38MAPK in human platelets.

Human platelets are known to contain three forms of mitogen-activated protein kinases; erk1, erk2, and p38MAPK. However the role(s) of mitogen-activated protein kinase cascades in platelet function remains to be determined. Evidence has been presented that suggests that these kinases are involved in the cytoskeleton and in the activation of phospholipase A2; however, other functions seem likely. The object of the present study was to examine the role of the p38MAPK in platelet function using anisomycin, a reported activator of p38MAPK, and SB203580, an inhibitor of p38MAPK. Thrombin and collagen caused the phosphorylation of p38MAPK and this was inhibited by SB203580. Anisomycin did not cause the aggregation of either intact or saponin-permeabilised platelets. In addition anisomycin failed to produce synergistic aggregation responses with submaximal concentrations of collagen, thrombin, the thromboxane mimetic U46619, or the calcium ionophore A23187. There was no detectable phosphorylation of p38MAPK in either intact platelets or platelet lysates incubated with anisomycin. Anisomycin also failed to modulate p38MAPK phosphorylation in response to submaximal concentrations of collagen, thrombin, U46619, or A23187. In contrast anisomycin did cause p38MAPK phosphorylation in rabbit lung and C3 fibroblasts and in rabbit lung fibroblast lysates. These data demonstrate that anisomycin has no detectable effect on either platelet function or p38MAPK phosphorylation and, therefore, that anisomycin has proven to be an ineffective tool to define the role that p38MAPK plays in platelet function.

Animals↗

Platelet dense granules: structure, function and implications for haemostasis.

The advances that have been made over the last decade in microscopic, biochemical, molecular, and genetic techniques have led to substantial improvement in our understanding of platelet dense granule structure and function, and the implications of dense granule deficiencies for haemostasis. However, much has still to be learned. For example, what is the specific mechanism of docking and fusion that occurs during dense granule exocytosis? What are the roles of dense granule membrane proteins during exocytosis or after expression on the surface of activated platelets? Finally, how do the genetic defects identified in HPS and CHS result in the clinical phenotype of these diseases, and what does this tell us about the origin and function of the affected subcellular organelles?

Animals↗

Impaired signal transduction in neonatal platelets.

Previous in vitro studies of cord blood platelets from full-term and preterm neonates have demonstrated decreased responses to most physiologic agonists. This hyporesponsiveness is, in part, related to both deficient synthesis of, and response to, an important mediator of platelet function, thromboxane A2(TxA2). The poor response of neonatal platelets to TxA2 is not due to differences in TxA2 receptor binding characteristics, when compared with platelets from adult controls. Therefore, the postreceptor signal transduction pathway was investigated. The TxA2 receptor is linked via the trimeric GTP-binding protein, Gq, to phospholipase C-beta (PLC beta), and stimulation of platelets with the stable TxA2 mimetic, U46619, leads to activation of PLC beta and subsequent intracellular signaling events. U46619-induced 32P-phosphatidic acid formation, an index of PLC beta activation, was decreased in platelets of neonates (166 +/- 10%) when compared with adult controls (206 +/- 22%) (p < 0.05). Mobilization of intracellular calcium was impaired in platelets of newborns (175 +/- 49 nM) in comparison to adult controls (506 +/- 130 nM) (p < 0.01), after stimulation with U46619. U46619-stimulated GTPase activity was blunted in platelet membrane fractions from full-term neonates and almost absent in platelet membranes from preterm infants. Immunoblotting studies of the platelet membrane fractions, quantified by densitometric analysis, showed that levels of the G alpha q subunit were not significantly different between adult and neonate, and were not the cause of the marked differences in GTPase activity. These data suggest that signal transduction through the TxA2 receptor is affected by decreased activity of Gq in platelets of neonates, and that this defect in signal transduction through PLC beta contributes to the observed poor response of newborns' platelets to TxA2 and consequently to TxA2-dependent agonists such as collagen.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

The phospholipase C inhibitor U73122 inhibits phorbol ester-induced platelet activation.

Activation of phospholipase C (PLC) is a central component of the signal transduction process in numerous cells, including platelets. U73122 has been widely used as a selective PLC inhibitor. In the present study, the effects of U73122 on platelet function have been further examined. Platelets were stimulated with collagen (via PLC-gamma), the stable thromboxane mimetic U46619 (via PLC-beta), or phorbol myristate acetate (PMA) via protein kinase C (PKC). Consistent with inhibition of PLC, U73122 inhibited platelet aggregation and [3H]-serotonin release in response to collagen and U46619 in a concentration-dependent manner. Similarly, U73122 blocked collagen-induced release of thromboxane A2. U73122 also inhibited U46619-induced [32P]phosphatidic acid production and phosphorylation of the major PKC substrate, pleckstrin. U73122 had no effect on PMA-induced pleckstrin phosphorylation, [3H]-serotonin release, or intracellular vacuole formation. However, U73122 did inhibit PMA-induced platelet aggregation and fibrinogen binding. Overall, these results suggest that U73122, in addition to its inhibition of PLC, also affects PKC-independent events that interfere with platelet aggregation.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

Translocation and phosphorylation of cytosolic phospholipase A2 in activated platelets.

The release of arachidonic acid, and its subsequent conversion to thromboxane A2, is an important component of platelet activation. The precise mechanism of arachidonic acid release is unknown although cytosolic phospholipase A2 (cPLA2) has been implicated. In the present study the effects of three agonists, the serine protease thrombin, the protein kinase C stimulant PMA and the calcium ionophore A23187 have been examined on the translocation and phosphorylation of cPLA2 and these have been correlated with arachidonic acid release. Thrombin, but neither PMA nor A23187, caused the release of [14C]-arachidonic acid from unstirred, prelabeled platelets. Immunoblot analysis was carried out on cytosolic and membrane fractions from control and activated platelets using an anti-cPLA2 antibody. In platelets stimulated by thrombin or A23187, but not by PMA, there was a translocation of cPLA2 to the membrane fraction. Immunoprecipitation of cPLA2 from [32P]-ortho-phosphate-prelabeled platelets, indicated enhanced phosphorylation on serine residues of cPLA2 from thrombin- or PMA-stimulated platelets. These results are consistent with two synergistic pathways mediating cPLA2 activity. Increased cytosolic calcium causes the translocation of cPLA2 to the membrane, and protein kinase either directly, or indirectly, phosphorylates the enzyme. Activation of both pathways, as occurs in response to thrombin, is required for arachidonic acid liberation.

Arachidonic Acid↗

Effects of the mitogen-activated protein (MAP) kinase kinase inhibitor 2-(2'-amino-3'-methoxyphenyl)-oxanaphthalen-4-one (PD98059) on human platelet activation.

The role of mitogen-activated protein (MAP) kinase cascades in platelet function remains to be determined. Several studies have suggested a role in the activation of phospholipase A2; however, other functions seem likely. The object of the present study was to determine the role of the MAP kinase cascade in platelet function. An inhibitor of the mitogen-activated protein kinase kinase MEK1, 2-(2'-amino-3'-methoxyphenyl)-oxanaphthalen-4-one (PD98059), was used, at concentrations consistent with those reported to inhibit MEK1, to examine the role that this enzyme plays in platelet function. PD98059 inhibited aggregation in response to low-dose collagen and arachidonic acid, but not that in response to high-dose collagen, thrombin, thrombin receptor-activating peptide (TRAP), 9,11-dideoxy-11alpha, 9alpha-epoxymethano-prostaglandin F2alpha (U46619), or phorbol ester. Thrombin, thrombin receptor-activating peptide, U46619, collagen, and arachidonic acid each caused the release of [3H]serotonin from dense granules, but only that elicited by low-dose collagen and arachidonic acid was inhibited by PD98059. The release of [3H]arachidonic acid in response to thrombin or collagen was unaffected by PD98059 pretreatment. In contrast, collagen- and arachidonic acid-induced thromboxane formation was inhibited by PD98059. These data suggest that MEK1 is not involved in the platelet response to thrombin or U46619. Furthermore, the inhibitory effects of PD98059 on collagen- and arachidonic acid-induced responses suggest that PD98059 may inhibit the conversion of arachidonic acid to thromboxane, in addition to its reported effects on MEK1.

Arachidonic Acid↗

Deficient thromboxane synthesis and response in platelets from premature infants.

In vitro function of cord blood platelets from 35 premature infants (gestational age 32 +/- 3.2 wk) was compared with that of 12 full-term infants and 14 adult control subjects. In comparison with adult platelets, preterm platelets showed impaired aggregation, in response to thrombin, collagen, ADP, and U46619 [a stable analog of thromboxane A2 (TxA2)], and impaired [14C]serotonin secretion in response to collagen and U46619. The production of TxB2 (the stable TxA2 metabolite) in response to collagen was reduced in preterm platelets (30.2 +/- 5.5 ng/mL) compared with full-term (52.7 +/- 12.6 ng/mL) or adult control platelets (132.3 +/- 38.7 ng/mL). The deficient TxB2 production and U46619 response prompted further investigation of TxA2 receptor number and binding characteristics. Immunoblotting using an anti-TxA2 receptor antibody (anti-P2) identified a single, identical 55-kD band in solubilized membranes of control, full-term, and preterm platelets. Flow cytometry using anti-P2 produced histograms that did not differ between adults and neonates. Ligand binding studies using [3H]U46619 were carried out on 10 samples from each group. Scatchard analysis yielded a single class of binding sites with no significant difference among the Kd values (85 +/- 16 versus 99 +/- 12 versus 100 +/- 12 nM) or number of binding sites per platelet (1876 +/- 460 versus 2450 +/- 478 versus 2777 +/- 536) for preterm and full-term infants and adults. Therefore platelets of preterm infants show impaired TxA2 production and response. The poor response is not related to altered binding characteristics of the TxA2 receptor but may lie in the postreceptor signal transduction pathway.

Adult↗

Thrombin receptor-activating peptide releases arachidonic acid from human platelets: a comparison with thrombin and trypsin.

The serine proteases thrombin and trypsin are both powerful platelet agonists that act by cleaving the terminal portion of the thrombin receptor and allowing the new C-terminal to auto-stimulate the receptor. Synthetic peptides, termed thrombin receptor-activating peptides (TRAPs), have been shown to mimic many of the effects of thrombin. Here we have compared the effects of inhibitors on platelet aggregation and [14C]-arachidonic acid release in response to thrombin, trypsin and TRAP. Pretreatment of human platelets with BW755C (80 microM), which inhibits both cyclooxygenase and lipoxygenase, blocked trypsin (15-20 nM)- or TRAP (4-6 microM)-induced aggregation, but not thrombin (0.06-0.1 U/ml)-induced aggregation. The protease inhibitor leupeptin (10 micrograms/ml) abolished trypsin-induced aggregation and returned [14C]-arachidonic acid release from [14C]-arachidonic acid-prelabeled platelets to control levels. In contrast, leupeptin did not affect either aggregation or [14C]-arachidonic acid release in platelets stimulated by TRAP. Thrombin-induced aggregation and [14C]-arachidonic acid release were only partially inhibited by leupeptin. These data are consistent with the activation of platelets by both trypsin and TRAP occurring via the proteolytic receptor, whereas thrombin-induced platelet activation appears to occur by a dual mechanism of action. One component of thrombin-induced platelet activation is by a proteolytic action on the moderate-affinity receptor. This effect is sensitive to inhibition by leupeptin and is mimicked by trypsin and TRAP. The other component of thrombin is nonproteolytic and may occur by an action at a high-affinity receptor such as glycoprotein lb.

Arachidonic Acid↗

Defective thrombin-induced calcium changes and aggregation of Bernard-Soulier platelets are not associated with deficient moderate-affinity receptors.

Cloning of the moderate-affinity, serpentine thrombin receptor has helped clarify the mechanism of thrombin-induced platelet activation. Proteolytic cleavage by thrombin generates a new amino terminal that autostimulates the receptor, leading to activation of multiple signaling pathways and the platelet response. The function of other thrombin receptors, such as high-affinity glycoprotein Ib (GPIb), on platelets and their relationships to the moderate-affinity receptor remain unclear. The present study examined the role of the moderate-affinity thrombin receptor in Bernard-Soulier syndrome (BSS) platelets, which contain low amounts of GPIb. Platelets from four BSS subjects displayed normal aggregation profiles and cytosolic calcium changes in response to moderate or high concentrations of thrombin. In contrast, the BSS platelet aggregation response was delayed and calcium changes were absent in response to low thrombin concentrations. Platelets from an asymptomatic BSS heterozygote displayed an activation profile similar to those of control individuals. Specific activation of the moderate-affinity receptor by a synthetic peptide caused similar aggregation in platelets from all individuals. The synthetic peptide also elicited calcium responses in BSS platelets. Platelets from the BSS subjects and from an individual with the May-Hegglin anomaly showed increased expression of the moderate-affinity thrombin receptor by flow-cytometric analyses. These results suggest that BSS platelets possess high levels of a functional moderate-affinity thrombin receptor, probably due to large platelet size, and provide indirect evidence that a high-affinity thrombin receptor is associated with GPIb.

Bernard-Soulier Syndrome↗

The lysosomal granule membrane protein, LAMP-2, is also present in platelet dense granule membranes.

Lysosomal Associated Membrane Protein-2 (LAMP-2) is an inherent component of lysosomal granule membranes in diverse cell types, including platelets. We examined platelets for evidence of LAMP-2 in dense granule membranes as CD63 has previously been shown to be present in both lysosomal and dense granule membranes. Immunological techniques were used to examine the localization of LAMP-2 in control platelets and those from an individual with Hermansky-Pudlak syndrome (HPS), a condition characterised by platelet dense granule deficiency. Immunoblotting studies demonstrated that LAMP-2 was enriched in a dense granule preparation. Flow cytometry of thrombin-stimulated control platelets was consistent with biphasic surface expression of LAMP-2. The early expression was accompanied by dense granule, but minimal lysosomal granule, release. The late expression was accompanied by additional lysosomal granule release only. Thrombin stimulation of HPS platelets showed only late, lysosome-associated LAMP-2 expression. Immunoelectron microscopy indicated the presence of LAMP-2 in the membranes of serotonin-containing granules as identified by an anti-serotonin polyclonal antibody. These data indicate that LAMP-2 is present in the membranes of platelet dense granules in addition to lysosomal granules, and has a similar distribution to CD63.

Albinism, Oculocutaneous↗

Inhibition of collagen-induced platelet activation by arachidonyl trifluoromethyl ketone.

Collagen-induced platelet activation is associated with, and markedly potentiated by, the release of arachidonic acid and its subsequent conversion to thromboxane A2. The precise mechanism of arachidonic acid release is unknown. An inhibitor of isolated cytosolic phospholipase A2 (cPLA2), arachidonyl trifluoromethyl ketone (AACOCF3), was used to examine the role that cPLA2 plays in this process. AACOCF3 inhibited platelet aggregation in response to collagen and arachidonic acid but not to thrombin, calcium ionophore, phorbol ester, or a thromboxane mimetic. Thromboxane formation stimulated by thrombin or collagen was inhibited by AACOCF3. However, AACOCF3 did not inhibit collagen-induced [14C]arachidonic acid release. These data are consistent with the inhibitory effects of AACOCF3 on collagen-induced aggregation involving an action on the conversion of arachidonic acid to thromboxane.

Arachidonic Acid↗

The empty sack syndrome: a platelet storage pool deficiency associated with empty dense granules.

Two sisters with lifelong bleeding tendencies were examined to determine whether their condition was associated with a platelet defect. Their platelet aggregation in response to epinephrine and collagen was abnormal, and the secretion of serotonin and ATP was markedly reduced. The platelet contents of serotonin, ADP, and ATP were all diminished and the ATP:ADP ratio was increased. Direct enumeration by whole-mount and quinacrine-fluorescence techniques demonstrated that the platelets from both sisters had significantly fewer dense granules than controls. These characteristics are similar to an individual with Hermansky-Pudlak syndrome and are consistent with a platelet dense granule deficiency. In contrast, immunofluorescence studies using an antibody against the dense granule membrane protein granulophysin suggested that both sisters had numbers of granules within the normal range. Evaluation by immunoblotting and ELISA indicated the presence of normal levels of granulophysin in the platelets from both sisters; FACS analysis demonstrated the surface expression of granulophysin under conditions of selective dense granule release. These results are consistent with these sisters having a form of dense granule storage pool deficiency where the granular membranes are present but the granules have reduced contents. This observation represents a novel form of storage pool disease which we have termed the empty sack syndrome.

Adult↗

Platelets from bleeding Simmental cattle mobilize calcium, phosphorylate myosin light chain and bind normal numbers of fibrinogen molecules but have abnormal cytoskeletal assembly and aggregation in response to ADP.

We have evaluated platelet function in normal Simmental cattle and in those with a congenital, inherited bleeding disorder previously attributed to impaired platelet aggregation. Affected platelets failed to aggregate and secrete in response to ADP and the ionophore A23187, and showed impaired aggregation responses to collagen and ionomycin. Aggregation and secretion of normal and affected platelets was similar in response to thrombin and PMA. Resting cytosolic calcium levels and calcium mobilization in response to ADP and ionomycin were similar in control and four affected animals. Normal and affected bovine platelets phosphorylated myosin light chain and pleckstrin in response to ADP and A23187. Transmission electron microscopy of affected platelets following stimulation with ADP, showed shape change and some degree of centralization of the actomyosin gel. Affected platelets had comparable numbers of GPIIb/IIIa complexes and expressed comparable numbers of fibrinogen receptors as normal platelets in response to ADP. Cytoskeletal assembly in affected platelets was normal in response to PMA but incomplete in response to ADP and A23187. Failure of platelet aggregation in bleeding Simmental cattle is predicted to arise from abnormal cytoskeletal assembly following calcium mobilization and phosphorylation of myosin light chain in response to ADP.

Adenosine Diphosphate↗