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M J Dunn

Publications and source records attributed to M J Dunn.

At least 19 recordsLinked to original sources

Endothelin rapidly stimulates mitogen-activated protein kinase activity in rat mesangial cells.

Mitogen-activated protein (MAP) kinases are regarded as switch kinases in the phosphorylation cascade initiated by various agonists. We have investigated whether endothelins (ET), which are constrictor and mitogenic isopeptides, can increase MAP kinase activity in rat mesangial cells, using bovine myelin basic protein (MBP) as a substrate for an in vitro kinase assay. Treatment of quiescent mesangial cells with ET-1 rapidly stimulated a kinase activity which phosphorylated exogenous MBP. This stimulation was dose-dependent, with threshold responses at 1 nM-ET-1. Epidermal growth factor and thrombin also activated this kinase in mesangial cells. We also examined the ET signal transduction pathways leading to activation of MBP kinase. Pertussis toxin had no effect on ET-stimulated MBP kinase activity. Stimulation of protein kinase C by phorbol ester increased MBP kinase activity, and down-regulation of PKC partially inhibited ET-stimulated MBP kinase as well as phorbol ester-stimulated MBP kinase activity. Interestingly, genestein, an inhibitor of protein tyrosine kinases, partially inhibited MBP kinase stimulated by ET but not by phorbol esters. These results suggest that ET stimulates MBP kinase activity in rat mesangial cells via at least two pathways: one which is protein kinase C-dependent and a second one that involves a protein tyrosine kinase. Finally, by raising rabbit antibodies against the two forms of MAP kinase, p44mapk and p42mapk, we demonstrated that both isoforms are expressed in mesangial cells. Antibody alpha 1 Cp42 specifically immunoprecipitated p42mapk and allowed us to demonstrate that ET stimulates MBP kinase activity in the p42mapk immunocomplex. In conclusion, we have provided evidence that, in rat mesangial cells, MAP kinases are rapidly activated by ET-1, a regulatory process that involves at least protein kinase C activation and also a contribution of a tyrosine kinase not yet characterized.

Aluminum

Anti-endothelial antibodies and coronary artery disease after cardiac transplantation.

Accelerated coronary artery disease is the most serious complication after cardiac transplantation. The disease has a multifactorial aetiology, with little agreement about the relative importance of the various risk factors. We have investigated the frequency of anti-endothelial antibodies against human umbilical vein endothelial cells by one-dimensional sodium dodecyl sulphate polyacrylamide gel electrophoresis and western blotting. Peptide-specific anti-endothelial antibodies were found in 15/21 heart transplant recipients with accelerated coronary artery disease, and 1/20 transplant patients who had not developed the disease. Positive immunofluorescence of patients' serum on frozen sections of coronary vessels confirmed the endothelial specificity of antibodies. These results provide evidence of an immune aetiology for transplant-associated coronary artery disease and could have important implications for its diagnosis and therapy.

Adolescent

Differential regulation of fos and jun gene expression and AP-1 cis-element activity by endothelin isopeptides. Possible implications for mitogenic signaling by endothelin.

Endothelins (ET) are potent vasoconstrictor peptides that also function as mitogens for numerous cell types. Although regulation of second messenger pathways by ET peptides has been extensively investigated, little is known about the pathways of nuclear signaling by which ET controls gene expression. The present experiments investigated whether fos and jun contribute to nuclear signaling and gene regulation by ET isopeptides. ET isopeptides induced a subset of fos and jun mRNAs in mesangial cells, including c-fos, fra-1, c-jun, and JunB. fos and jun mRNAs were induced as members of the immediate-early gene response. Activation of the high affinity ET receptor moderately increased c-fos and fra-1 mRNA, whereas activation of the low affinity receptor markedly induced both fos and jun mRNAs. Thus, different ET receptor subtypes evoke distinct patterns of fos and jun induction. Prominent isopeptide- and cell-specific differences in the magnitude and kinetics of fos and jun expression were observed. Most striking was the marked elevation of c-fos steady-state mRNA and protein by ET-1, as compared with ET-3. In addition, ET-1, but not ET-3, increased transcriptional activity conferred by an AP-1 cis-element and directed collagenase gene expression. These results suggest that differential regulation of fos and jun expression and of AP-1 cis-element activity by ET isopeptides contributes to regulation of gene expression by ET. Furthermore, a role for AP-1 in mitogenic signaling by ET is suggested by the close correlation between AP-1 cis-element activity and cell growth.

3T3 Cells

Endothelin stimulates phosphatidic acid formation in cultured rat mesangial cells: role of a protein kinase C-regulated phospholipase D.

We have previously reported that endothelin-1 stimulates phospholipase C-induced hydrolysis of phosphatidylinositol-4,5-bisphosphate. Other signal transduction pathways that hydrolyze alternative phospholipids through phospholipase D may also mediate endothelin-stimulated cellular responses. We initially evaluated endothelin-dependent generation of 32P-phosphatidic acid as an indirect indication of phospholipase D activity in rat mesangial cells. Endothelin (10(-7) M) induced an elevation of phosphatidic acid that was maximal at 15 min and persisted upward of 60 min. Pretreatment with the diacylglycerol-kinase inhibitor, R59022, did not reduce formation of endothelin-stimulated 32P-phosphatidic acid, demonstrating that the sequential actions of phospholipase C/diacylglycerol kinase do not contribute to endothelin-stimulated phosphatidic acid formation. We next conclusively identified a role for phospholipase D in the generation of phosphatidic acid by assessing the formation of 3H-phosphatidylethanol from 3H-alkyl lyso glycerophosphocholine and exogenous ethanol. Endothelin stimulated 3H-alkyl phosphatidylethanol formation in the presence but not the absence of 0.5% ethanol. Also, endothelin induced a concomitant elevation of 3H-alkyl-phosphatidic acid that was significantly reduced when the cells were exposed to exogenous ethanol, reflecting the formation of phosphatidylethanol. In addition, endothelin stimulated the release of 3H-choline and 3H-ethanolamine, demonstrating that additional phospholipids may serve as substrates for phospholipase D. Phorbol esters and synthetic diglycerides mimicked the effects of endothelin to stimulate phospholipase D and inhibitors of protein kinase C significantly reduced endothelin-stimulated phospholipase D. In addition, endothelin did not stimulate phosphatidylethanol formation in protein kinase C down-regulated cells. The calcium ionophore, ionomycin, did not stimulate phospholipase D and mesangial cells pretreated with BAPTA to chelate cytosolic calcium did not show a diminished endothelin-stimulated phospholipase D. Thus these data demonstrate that mesangial cells possess a protein kinase C-regulated phospholipase D activity that can be stimulated with endothelin.

Animals

Platelet-activating factor stimulates multiple signaling pathways in cultured rat mesangial cells.

We have previously reported that platelet-activating factor (PAF) elevates cytosolic free calcium concentration ([Ca2+]i) in fura-2-loaded glomerular mesangial cells. To confirm that this increase in [Ca2+]i is a result of receptor-mediated activation of phospholipase C, we investigated hydrolysis of phosphatidylinositol-4,5-bisphosphate (PtdIns-4,5-P2) in PAF-treated mesangial cells. PAF (10(-7) M) stimulated a rapid and transient formation of inositol trisphosphate. In concomitant experiments, PAF stimulated a biphasic accumulation of 3H-arachidonate-labeled 1,2-diacylglycerol (DAG). The secondary elevation in DAG was coincident with a rise in 3H-phosphorylcholine (PC) and 3H-phosphorylethanolamine (PE) suggesting that PAF stimulates delayed phospholipase activities which hydrolyze alternate phospholipids besides the polyphosphoinositides. This PAF-stimulated elevation in 3H-water soluble phosphorylbases was seen at 5 min but not at 15 sec suggesting that the initial rise in DAG as well as the initial elevation in [Ca2+]i are due primarily to PtdIns-4,5-P2 hydrolysis. PAF also stimulated PGE2 as well as 3H-arachidonic acid and 3H-lyso phosphatidylcholine (PtdCho) formation. We suggest that arachidonate released specifically from PtdCho via phospholipase A2 is a source of this PAF-elevated PGE2. It has been postulated that anti-inflammatory prostaglandins may antagonize the contractile and proinflammatory effects of PAF via activation of adenylate cyclase. Surprisingly, exogenous PAF reduced basal and receptor-mediated cAMP concentration indicating that PAF-stimulated transmembrane signaling pathways may oppose receptor-mediated activation of adenylyl cyclase. We have taken advantage of the different sensitivities of phospholipases A2 and C(s) to PMA, EGTA, and pertussis toxin to dissociate phospholipase A2 and C activities. Acute PMA-treatment enhanced PAF-stimulated PGE2 formation, reduced PAF-induced elevations in [Ca2+]i and had no effect upon PAF-stimulated 3H-PE. We have also demonstrated that phospholipase A2, but not PtdIns-specific phospholipase C, was sensitive to external calcium concentration. The role of a GTP-binding protein to couple PAF-receptors to the PtdIns-specific phospholipase C was confirmed as GTP gamma S synergistically elevated PAF-stimulated inositol phosphate formation. We also demonstrated that pertussis toxin ADP-ribosylates a single protein of an apparent 42 kD mass and that PAF pretreatment reduced subsequent ADP-ribosylation in a time-dependent manner. However, pertussis toxin had no effect upon phospholipase C-generated water soluble phosphorylbases or inositol phosphates. In contrast, PAF-stimulated phospholipase A2 and PAF-inhibited adenylyl cyclase activities were sensitive to pertussis toxin.(ABSTRACT TRUNCATED AT 400 WORDS)

Adenylate Cyclase Toxin

Antiheart antibodies following open heart surgery: incidence and correlation with postpericardiotomy syndrome.

One-dimensional sodium dodecyl sulphate polyacrylamide gel electrophoresis of myocardial proteins followed by Western blotting is a sensitive method for the detection of antiheart antibodies after cardiac transplantation. In a previous study we found that the majority of patients made antiheart antibodies after cardiac transplantation. It is possible that these antibodies were formed in response to cardiac damage caused during the surgical procedure rather than being specific to the transplantation situation. In this study we have evaluated the role of open cardiac surgery in the formation of antiheart antibodies for the first 9 months of the postoperative period using the Western blotting technique and correlated that with the development of post-pericardiotomy syndrome. Only 25% (9/36) of patients showed any increase in the pre-existing level of antiheart antibodies or developed antiheart antibodies with new reactivities. None of the patients in the study developed manifestations specific for post-pericardiotomy syndrome during the period of follow-up. The results support the contention that the high incidence of antiheart antibodies formed after cardiac transplantation is due to a humoral immune response to the presence of alloantigens on the grafted heart rather than as a result of the surgical procedure itself.

Adult

Protein kinase C regulates activation of mitogen-activated protein kinase and induction of proto-oncogene c-fos by endothelin-1.

Endothelins (ETs) are potent regulatory peptides that cause numerous phenotypic changes in glomerular mesangial cells including differential regulation of gene expression and mitogenesis. Although the second messengers produced by activated ET receptors are well characterized, little is known about pathways of nuclear signaling. In this report, we evaluate the role of a well-characterized effector linked to ET receptor activation, protein kinase C, in the stimulation of mitogen-activated protein kinase (p42-44mapk) and the induction of protooncogene c-fos. Stimulation of protein kinase C by phorbol ester was sufficient to increase p42-44mapk activity and induce c-fos. When ET-1 was added to mesangial cells depleted of protein kinase C, the increase in p42-44mapk was attenuated and the induction of c-fos was abolished. Taken together with previous data, these experiments suggest that protein kinase C, p42-44mapk, and c-fos constitute a pathway by which ET-1 regulates expression of mesangial cell genes. These effectors might have relevance to the role of ET-1 in cell growth and vascular remodeling.

Animals

Phospholipase C responses in cells from spontaneously hypertensive rats.

We tested the hypothesis that increased systemic vascular resistance in spontaneously hypertensive rats may be secondary to enhanced phospholipase C activity in response to vasoconstrictor stimuli. Activation of phospholipase C by angiotensin II (Ang II), thromboxane A2, arginine vasopressin, and endothelin-1 was compared in cultured glomerular mesangial cells and mesenteric vascular smooth muscle cells taken from 13- to 14-week-old hypertensive and normotensive Wistar-Kyoto rats (blood pressure, 185 +/- 1 versus 135 +/- 2 mm Hg). Phospholipase C was assessed by measuring cytosolic free calcium and by the accumulation of radiolabeled inositol phosphates. Basal cytosolic calcium did not differ between mesangial cells taken from both strains but was greater in smooth muscle cells from hypertensive rats (210.1 +/- 8.2 versus 149.2 +/- 4.7 nM). The responsiveness of cytosolic calcium and inositol phosphate accumulation to Ang II was significantly enhanced in mesangial cells from hypertensive rats (10(-7) M Ang II: peak increase of calcium, 1,266 +/- 181 versus 603 +/- 93 nM; percent increment of inositol phosphates at 1 minute, 266 +/- 26 versus 98 +/- 10%). Vascular smooth muscle cells from hypertensive rats, when compared with normotensive rats, showed a similar augmentation of Ang II-stimulated intracellular calcium and inositol phosphates. Thromboxane A2-induced enhancement of intracellular calcium and inositol phosphate accumulation in vascular smooth muscle cells was also greater in hypertensive animals. However, the responses to vasopressin and endothelin in mesangial or vascular smooth muscle cells did not differ between the normotensive and hypertensive animals. There was no significant difference in Ang II receptor number and affinity between hypertensive- and normotensive-derived mesangial cells. We conclude that genetically increased blood pressure in rats may be secondary to enhanced post-receptor signaling in glomerular mesangial cells activated by Ang II and to enhanced signaling in vascular smooth muscle cells stimulated by either Ang II or thromboxane A2.

Angiotensin II

Eicosanoids, mesangial contraction, and intracellular signal transduction.

The glomerular mesangial cell is a specialized pericyte with multiple functional capabilities including contraction. Mesangial contraction may reduce the glomerular filtration surface area and hence the ultrafiltration coefficient, Kf. Cultured mesangial cells convert arachidonic acid into biologically active eicosanoids which are either contractile (thromboxane A2 [TxA2], prostaglandin F2 alpha [PGE2 alpha]) or relaxant (PGE2, PGI2). The addition of TxA2 analogues, PGE2 or sulfidopeptide leukotrienes (LTC4 and LTD4) stimulated contraction of cultured mesangial cells with threshold responses at approximately 1 nM and maximum responses at 1 microM. PGE2 and PGI2 antagonized mesangial contraction induced by TxA2 analogues. Contraction was enhanced by inhibiting mesangial cyclooxygenase with nonsteroidal antiinflammatory drugs (NSAID). Contractile eicosanoids stimulated phospholipase C thereby elevating intracellular inositol trisphosphate and cytosolic free Ca2+ concentration ([Ca2+]i). Vasorelaxant prostanoids stimulated adenylate cyclase, increasing intracellular cyclic AMP. We conclude that eicosanoids control mesangial contractility by regulating [Ca2+]i and cAMP. NSAID increase mesangial reactivity by blocking the inhibitory effects of endogenous vasodilator eicosanoids, with potential consequences on glomerular hemodynamics.

Animals

Cellular signaling by endothelin peptides: pathways to the nucleus.

Endothelins (ET) are potent regulatory peptides that evoke diverse responses in glomerular mesangial cells. These include short-term actions, such as contraction and secretion, and long-term, adaptive responses, such as cell growth. Although much attention has been focused on the second messenger cascades, which govern short-term effects, the pathways of cytosolic and nuclear signaling, which effect long-term changes, remain unclear. Several distal signaling events by ET receptors have been characterized in rat mesangial cells. These include activation of a cytosolic protein kinase, mitogen-activated protein kinase and an inducible transcription factor, activator protein-1 (AP-1). This review focuses on the activation of mitogen-activated protein kinase and activator protein-1 by ET and discusses the potential role of these third and fourth messengers in controlling long-term cellular adaptations. Characterization of these and other cytosolic and nuclear signals should provide important insights into the pleiotropic actions of ET peptides.

Amino Acid Sequence

The molecular mechanisms of cardiovascular and renal regulation by endothelin peptides.

In summary, we have seen that endothelins are potent cardiovascular and renal regulatory peptides. Cardiovascular regulation by endothelin requires complex spatial and temporal regulation of endothelin gene expression and the coordinated interplay of numerous signaling pathways. Although the precise physiologic role for endothelin peptides in the cardiovascular and renal systems remains uncertain, two general models can be proposed, as follows. (1) Endothelin appears to act as an autocrine or paracrine hormone involved in long-term (hours to days) regulation of cardiovascular and renal function in normal physiology. Similar regulation occurs in response to other cardiovascular hormones such as angiotensin II, atrial natriuretic peptides, and catecholamines. In this respect it is noteworthy that endothelin also interacts with other hormonal systems that affect cardiovascular status, such as renin-aldosterone and atrial natriuretic peptide (see references 9, 161, 162, and 213-217). (2) Endothelin might also function as a proinflammatory peptide, being locally produced at sites of vascular damage and injury. The fact that endothelin secretion is stimulated by cytokines, growth factors, and transforming growth factor beta is consistent with this role. In addition, the mitogenic actions of endothelin could contribute to vascular remodeling in the inflammatory response. A similar, defensive role has been proposed for other regulatory peptides. Endothelin has also been implicated in the pathogenesis of numerous disorders such as hypertension (see references 28, 56, 168, 184, and 224 through 226), cerebral and myocardial vasospasm (see references 180, 223, and 227 through 233), acute renal failure, and cyclosporine nephrotoxicity. It is clear that the development of specific ECE inhibitors and endothelin receptor antagonists will enable definitive experiments addressing the role of endothelin in normal physiology and the putative role of endothelin in the development of hypertension and other cardiovascular disorders. Further identification and biochemical analysis of signaling networks evoked by endothelin, in conjunction with physiologic studies, should provide a detailed understanding of the complex biologic events regulated by endothelin peptides.

Amino Acid Sequence

Evaluation of membranes used for electroblotting of proteins for direct automated microsequencing.

Protein purification and characterisation have been age-old problems for the biochemist. A new era has arisen with the advent of one- and two-dimensional gel electrophoresis and high sensitivity automated protein microsequencing. These two tools along with electroblotting have made it possible to separate and analyse complex protein mixtures. We studied six different membranes compatible with Edman degradation chemistry to determine their efficiencies at binding proteins electroblotted from one-dimensional sodium dodecyl sulphate-polyacrylamide gel electrophoresis. Their overall blotting-sequencing properties were also evaluated. We found that the polyvinylidene difluoride-based membranes out-performed the glass-based and polypropylene-based membranes under our selected experimental conditions. The problems associated with electroblotting and microsequencing are discussed.

Buffers

Ca2+ signaling by distinct endothelin peptides in glomerular mesangial cells.

Ca2+ signaling by peptides of the endothelin (ET) gene family was studied in cultured glomerular mesangial cells. In addition to the increase in cytosolic free [Ca2+] ([Ca2+]i) previously described for ET-1, we also observed that ET-2, ET-3, and sarafotoxin S6b generate similar [Ca2+]i waveforms but with dissimilar potencies and kinetics. The prepro form of ET-1 was inactive, suggesting that mature ET peptides are constrained in an inactive conformation within the preproET species. ET isopeptides caused both release of Ca2+ from intracellular stores and Ca2+ influx via a voltage- and dihydropyridine-insensitive pathway. ET-mediated Ca2+ influx was independent of the increase in [Ca2+]i. Activation of protein kinase C inhibited ET-induced Ca2+ signaling, whereas addition of ET to protein kinase C-depleted cells resulted in enhanced [Ca2+]i waveforms. Mesangial cells also demonstrated a marked adaptive desensitization response to ET. These data demonstrate that Ca2+ signaling is a common response to different ET peptides in glomerular mesangial cells and that activation of protein kinase C down-regulates these Ca2+ signals.

Animals

Biochemical and structural adaptation of autologous skeletal muscle used for counterpulsation.

We have studied in a normal animal model (sheep), the biochemical and morphological adaptation of electrically stimulated skeletal muscle used for extra aortic counterpulsation. Immunocytochemical analysis of latissimus dorsi, using monoclonal antibodies to slow and fast myosin heavy chains, indicated an increase in the population of mixed fibres after stimulation for one week. By one month, up to 70% of fibres expressed both slow and fast myosin heavy chains in addition to the 15% of fibres expressing only slow myosin heavy chains. After 4 months, the population of mixed fibres was further transformed towards purely slow fibres to give values of 40 and 67% of fibres expressing only slow myosin heavy chain at 4 and 6 months, respectively. Increased staining, both in intensity and area, for NADH tetrazolium reductase activity (an enzyme of the oxidative metabolic pathway) was detected by 28 days. An increase in mitochondrial number was observed also by 28 days, further indicating a shift towards an oxidative metabolism. The molecular adaptation of latissimus dorsi was achieved by stimulation every fourth cardiac cycle at 35 Hz, 3 V, initiated 48 hours after the operation; this being a marked reduction in the delay from operation prior to stimulation. Evaluation of other regimes indicated that more frequent modes, or an increase in voltage or frequency, caused damage to the muscle during the early phase of molecular adaptation. A thorough understanding of the time sequence of the different adaptive processes is required to determine the ideal regime of stimulation initiated promptly after mobilisation of the muscle; aimed at harvesting the maximum amount of energy from the autologous muscle.

Adaptation, Physiological

Endothelin receptors and coupled GTP-binding proteins in glomerular mesangial cells.

Endothelins (ETs) are a family of vasoactive peptides with profound biological actions in diverse cell systems. Among its varied actions, ET stimulates phospholipase C (PLC) in cultured mesangial cells. We investigated the presence of specific ET receptors in rat mesangial cells in culture, and studied the role of GTP-binding proteins (G proteins) in coupling PLC to the endothelin receptor. [125I]ET binding was time- and temperature-dependent, and Scatchard analysis of saturation data showed a single class of high-affinity binding sites. Heterologous displacement with two related peptides, ET-3 and sarafotoxin (SFTX), revealed the presence of two binding sites for these isopeptides. Preincubation of cells with ET-1 reduced the receptor number without affecting Kd, and this effect was not prevented by protein kinase C inhibition or downregulation. We confirmed the presence of a 41- to 43-kDa pertussis toxin substrate in rat mesangial cell membranes in an ADP ribosylation assay. ET-1 inhibits and GDP beta S enhances toxin-catalyzed transfer of ADP-ribose to this substrate. ET-1 potentiated GTP gamma S-induced phosphatidylinositol (PI) hydrolysis in a concentration-dependent manner. In addition, pertussis toxin partially inhibited ET-stimulated PI hydrolysis in intact mesangial cells. Pertussis toxin also reduced the magnitude of ET-stimulated intracellular free calcium [( Ca2+ )i]. Thus, ET-1 binds to specific receptors on rat mesangial cells and activates PLC, in part, through a pertussis toxin-sensitive G-protein.

Adenosine Diphosphate Ribose