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S L Linas

Publications and source records attributed to S L Linas.

At least 37 records · Page 2Linked to original sources

Cytoskeleton-dependent endocytosis is required for apical type 1 angiotensin II receptor-mediated phospholipase C activation in cultured rat proximal tubule cells.

Renal proximal tubule sodium reabsorption is enhanced by apical or basolateral angiotensin II (AII). Although AII activates phospholipase C (PLC) in other tissues, AII coupling to PLC on either apical or basolateral surfaces of proximal tubule cells is unclear. To determine if AII causes PLC activation, and the differences between apical and basolateral AII receptor function, receptors were unilaterally activated in rat proximal tubule cells cultured on permeable, collagen-coated supports. Apical AII incubation resulted in concentration- and time-dependent inositol trisphosphate (IP3) formation. Basolateral AII caused greater IP3 responses. Apical AII-induced IP3 generation was inhibited by DuP 753, suggesting that the type 1 AII receptor subtype mediated proximal tubule PLC activation. Apical AII signaling did not result from paracellular ligand leak to basolateral receptors since AII-induced PLC activation occurred when basolateral AII receptors were occupied by Sar-Leu AII or DuP 753. Inhibition of endocytosis with phenylarsine oxide prevented apical (but not basolateral) AII-induced IP3 formation. Cytoskeletal disruption with colchicine or cytochalasin D also prevented apical AII-induced IP3 generation. These results demonstrate that in cultured rat proximal tubule cells, AII is coupled to PLC via type 1 AII receptors and cytoskeleton-dependent endocytosis is required for apical (but not basolateral) AII receptor-mediated PLC activation.

Angiotensin II↗

Role of neutrophil derived oxidants and elastase in lipopolysaccharide-mediated renal injury.

Gram-negative bacterial sepsis is frequently associated with acute renal failure but the specific effects of lipopolysaccharide (LPS) and other bacterial products on kidney function are not known. Since either LPS or formyl-methionyl-leucyl-phenylalanine (FMLP)--a chemotactic peptide from bacterial cell walls--activate neutrophils (PMN) to release a number of potentially toxic factors in vitro, we determined the effect of adding PMN with LPS and/or FMLP to isolated perfused rat kidneys. Isolated rat kidneys perfused with LPS alone or LPS and normal PMN had normal glomerular filtration rates (GFR) and tubular Na reabsorption (TNa). Kidneys perfused with FMLP alone or FMLP and normal PMN also had normal GFR and TNa. In contrast, addition of PMN with both FMLP and LPS caused progressive renal dysfunction. For example, after 60 minutes of perfusion, GFR was reduced from 610 +/- 31 to 147 +/- 17 microliters/min/g and TNa from 97 +/- 1 to 72 +/- 2%, both P less than 0.01. Perfusion with the O2 metabolite scavengers catalase or dimethylthiourea afforded no protection while perfusion with the neutrophil elastase inhibitor Eglin C conferred substantial, but not complete, protection: GFR 492 +/- 34 microliters/min/g; TNa 91 +/- 3%. However, perfusion with both Eglin C and catalase completely prevented the toxic effects of LPS and FMLP-treated PMN on renal function. We conclude that in isolated kidneys, 1) the toxic effects of LPS requires FMLP-treated PMN and that 2) LPS and FMLP treated PMN cause progressive renal injury which is mediated by both O2 metabolites and neutrophil elastase.

Animals↗

Increased osmolal gap in alcoholic ketoacidosis and lactic acidosis.

OBJECTIVE: To determine whether an elevated osmolal gap is specific for toxic alcohol ingestion. DESIGN: Cross-sectional. SETTING: Emergency room and medical and surgical inpatient wards at a university-affiliated hospital. PATIENTS: Twenty-three patients with lactic acidosis, 19 with alcoholic ketoacidosis, and 10 randomly selected controls. MEASUREMENTS AND MAIN RESULTS: Calculated and measured serum osmolality was determined in all study participants. The osmolal gap was increased in patients with lactic acidosis (17.4 +/- 5.4 mmol/kg) and alcoholic ketoacidosis (26.9 +/- 7.6 mmol/kg) when compared with controls (-1.7 +/- 1.7 mmol/kg, P less than 0.05 for both comparisons). When ethanol was included in the calculation, the osmolal gap remained elevated in the lactic acidosis (10.3 +/- 2.0 mmol/kg) and alcoholic ketoacidosis (11.1 +/- 3.2 mmol/kg) groups (P less than 0.05 for both comparisons). CONCLUSIONS: The osmolal gap is often used as a screen for toxic alcohol ingestion. When calculating the osmolal gap, the contribution of ethanol should be considered. An elevated osmolal gap is not specific for toxic alcohol ingestion, as the osmolal gap was elevated in patients with lactic acidosis and alcoholic ketoacidosis. These two conditions should be considered when using the osmolal gap to design therapy (for example, hemodialysis) in the setting of anion gap metabolic acidosis and suspected toxic alcohol ingestion.

Acidosis↗

Angiotensin II surface receptor coupling to inositol trisphosphate formation in vascular smooth muscle cells.

In some systems there are spare receptors for hormone action, i.e. only a fraction of the total number of surface receptors need be occupied by agonist to elicit maximum cellular responses. The purpose of this study was to determine the relationship between angiotensin II (AII) surface receptor number and AII-induced inositol trisphosphate (IP3) formation in rat-cultured vascular smooth muscle cells. To accomplish this purpose, it was necessary to develop a method to modulate AII surface receptor number without activating phospholipase C. Incubation with the putative AII receptor antagonist Sar1,Leu8-AII (SL) caused reductions in AII surface receptor number by redistribution of receptors to the cell interior. However, in contrast to AII, SL did not elicit IP3 responses. By varying the conditions of incubation with SL, graded (32-60%) reductions in AII surface receptor number were achieved. In association with reductions in surface receptors there were comparable reductions in AII-stimulated IP3 formation. The correlation between receptor number and stimulated IP3 formation was highly linear (r = 0.99, p less than 0.01). To determine if incubation with AII also caused reductions in stimulated IP3 formation in proportion to the degree of receptor loss, AII surface receptor number was decreased by incubation with AII. Despite decreases in AII receptor number comparable to those achieved with SL, incubation with AII resulted in 2-fold greater loss of AII-stimulated IP3 formation than did incubation with SL. We conclude that in vascular smooth muscle cells 1) the AII receptor antagonist SL stimulates AII receptor trafficking without eliciting IP3 formation, 2) there are no spare AII receptors for phospholipase C-mediated IP3 formation, and 3) AII desensitization of IP3 formation is mediated by reductions in surface receptors as well as by post-receptor mechanisms.

Angiotensin II↗

Interaction of arginine vasopressin and angiotensin II on Ca2+ in vascular smooth muscle cells.

The non-osmotic release of arginine vasopressin (AVP) is associated with the concomitant activation of the renin-angiotensin and sympathetic nervous systems. In vivo studies suggest that a positive interaction may occur between AVP and angiotensin II (Ang II), and other Ca2+ mobilizing hormones. In the present study, the cellular mechanisms of this interaction between AVP and Ang II in vascular smooth muscle cell (VSMC) were examined. These results support the existence of a positive interaction between AVP and Ang II on Ca2+ mobilization in VSMC. In fact, the challenge of VSMC with combined AVP and Ang II, in a range from 5 x 10(-11) to 10(-8) M, enhanced cytosolic free Ca2+ ([Ca2+]i) and 45Ca2+ efflux in a more than additive manner. This potentiation, which was not dependent of the presence of extracellular calcium, correlated with an increased VSMC shape change. Moreover, the combination of subthreshold doses of AVP and Ang II (5 x 10(-11) M), which do not release Ca2+ alone, evoked a Ca2+ mobilizing response. A subthreshold dose of Ang II also shifted to the left the concentration-response curve of the AVP-mediated 45Ca2+ efflux. Since there were no changes in receptor binding of either hormone by the other hormone and the interaction of the two hormones on the production of inositol phosphatides was additive, the AVP and AII positive interaction on Ca2+ mobilization on VSMC may occur at the level of the intracellular Ca2(+)-releasing mechanism itself. Such an interaction can occur at hormone concentrations below the Ca2+ release threshold and may explain an increased functional response to the combination of pressor hormones compared to that of each hormone alone.

Angiotensin II↗

Effects of kinins on cultured arterial smooth muscle.

The present study uses various kinin agonists and antagonists to examine the cellular mechanisms of bradykinin's actions on intracellular calcium, prostaglandins, and adenosine 3',5'-cyclic monophosphate (cAMP) accumulation in cultured arterial smooth muscle cells (casmc) obtained from rat mesenteric arteries. Exposure to bradykinin produced a rapid release of calcium (peak less than or equal to 20 s) from intracellular stores and an increase in prostaglandin (PG) E2 and cAMP production in casmc. Compared with bradykinin, the bradykinin B1-agonist [des-Arg9]BK produced only a small increase in intracellular calcium. The bradykinin-mediated increase in intracellular calcium was competitively blocked by the B2 receptor antagonist [D-Arg-O-Hyp3-Thi5,8-D-Phe7]BK (B4307) but not the B1-antagonist ([des-Arg9-Leu8]BK). In addition, the similarity of the dose-response curves for the bradykinin-mediated increase in Ca2+, PGE2, and cAMP (half-maximal stimulation of 12, 11, and 13 nM, respectively) and the ability of the B2-antagonist (B4307) to block each of these effects of bradykinin suggest that all three effects are mediated by the same bradykinin (B2) receptor. Further studies revealed that increases in intracellular calcium are necessary for the bradykinin-mediated increase in PGE2 formation and the subsequent PGE2-dependent formation of cAMP. Taken together, these results suggest that bradykinin acts via a B2-receptor on arterial smooth muscle cells to release calcium from intracellular stores, leading to increases in PGE2 production and the PGE2-dependent activation of adenylate cyclase.

6-Ketoprostaglandin F1 alpha↗

K depletion alters angiotensin II receptor expression in vascular smooth muscle cells.

Dietary K depletion (KD) results in increases in the number of angiotensin II (ANG II) receptors and prevents ANG II-induced downregulation of ANG II receptors in membrane preparations of vessels from KD animals. Because dietary KD results in changes in factors other than K, we K depleted vascular smooth muscle cells (VSMC) in culture to determine the specific effects of KD on ANG II receptor expression and processing. Scatchard analysis of ANG II uptake at 4 degrees C revealed that the number of surface receptors was increased by 37% in cells in which K had been reduced by 45%. This increase also occurred in the presence of cycloheximide. To determine the effect of KD on receptor processing, we measured the number of surface receptors after exposure to ANG II in concentrations sufficient to cause down-regulation. After 30-min exposure to ANG II, the number of surface receptors was reduced by 63% in control cells but only 33% in KD cells. Thirty minutes after withdrawing ANG II, surface binding returned to basal levels in control cells but was still reduced by 20% in KD cells. To determine the functional significance of impaired receptor processing, we measured ANG II uptake at 21 degrees C. Uptake at 21 degrees C depends on the functional number of receptors, i.e., the absolute number of surface receptors and the rate at which receptors are recycled to the surface after ANG II binding. ANG II uptake at 21 degrees C was reduced by 50% in KD cells.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin II↗

Role of xanthine oxidase in ischemia/reperfusion injury.

Oxygen metabolites formed during reperfusion of ischemic kidneys prevent recovery of renal function after short periods of renal ischemia. Xanthine oxidase has been proposed as a source of toxic oxygen metabolites during reperfusion of ischemic kidneys. To determine whether the enzyme is converted from the non-oxygen metabolite-producing dehydrogenase (type D) to the oxygen metabolite-producing oxidase (type O), we measured type D and type O (total, reversible, and irreversible) xanthine oxidase in renal cortical homogenates after 30 min of ischemia in vivo and 60 min of reperfusion by the isolated perfused kidney technique. Total enzyme activity (type D plus type O) was not altered by ischemia or reperfusion. Compared with nonischemic conditions, ischemia increased total type O (53 +/- 5 vs. 21 +/- 3%, P less than 0.01) and reversible type O (15.4 +/- 1.5 vs. 2.1 +/- 1.4 U/g) xanthine oxidase activities. Reperfusion further increased total type O (82 +/- 3%) and reversible type O (27.7 +/- 3.3 U/g, both P less than 0.01 vs. nonischemic perfusions) xanthine oxidase activities. To determine the physiological role of xanthine oxidase in renal ischemia, we depleted rats of xanthine oxidase by feeding tungsten. After 4 wk of tungsten, renal xanthine oxidase levels were reduced by greater than 90% and renal function was markedly improved during reperfusion.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Role of microfilaments in maintenance of proximal tubule structural and functional integrity.

To determine the selective effect of microfilament disruption on both cellular structure and function, microfilament-specific doses of cytochalasin D (10 microM) were used in an isolated perfused kidney system. Structurally, cytochalasin D resulted in extensive disruption of the apical surface with blebbing, vacuolization, and patchy loss and fusion of microvilli. Functionally, cytochalasin D resulted in an initial decrease in glomerular filtration rate (300.8 +/- 29.9 vs. 541.6 +/- 51 microliters.min-1.g-1, P less than 0.05) with subsequent stabilization throughout the duration of the perfusion. In contrast, the tubular reabsorption of sodium decreased significantly in a linear fashion from 97.1 +/- 0.7 to 64.3 +/- 7.0% over the duration of the perfusion. Similarly, the tubular reabsorption of lithium decreased linearly from 74.8 +/- 2.6%, before the addition of cytochalasin, to 33.6 +/- 6.8% by the end of the perfusion. Correlation of the decrements in percent tubular reabsorption of sodium and lithium for individual kidneys was 0.87 (P less than 0.01), suggesting the effect of microfilament disruption on tubular reabsorption of sodium was localized primarily to the proximal tubule. Because ischemic injury is characterized by time-dependent structural alterations in the apical membrane of proximal tubule cells, we set out to determine whether microfilament disruption occurs during ischemic acute renal failure. Utilizing indirect immunofluorescence with an anti-actin antibody, control kidneys demonstrated intact circumferential apical immunofluorescence representing brush-border and terminal web actin staining. Fifteen minutes of ischemia resulted in multiple large gaps in the terminal web, and 50 min of ischemia caused diffuse redistribution of actin immunofluorescence throughout the cytoplasm.(ABSTRACT TRUNCATED AT 250 WORDS)

Actin Cytoskeleton↗

Dimethylthiourea prevents hydrogen peroxide and neutrophil mediated damage to lung endothelial cells in vitro and disappears in the process.

Dimethylthiourea (DMTU) progressively disappeared following reaction with increasing amounts of hydrogen peroxide (H2O2) in vitro. DMTU disappearance following reaction with H2O2 was inhibited by addition of catalase, but not aminotriazole-inactivated catalase (AMT-catalase), superoxide dismutase (SOD), mannitol, benzoate or dimethyl sulfoxide (DMSO) in vitro. By comparison, DMTU disappearance did not occur following addition of histamine, oleic acid, elastase, trypsin or leukotrienes in vitro. Addition of DMTU also decreased H2O2-mediated injury to bovine pulmonary artery endothelial cells (as reflected by LDH release) and DMTU disappeared according to both added amounts of H2O2 and corresponding degrees of injury. DMTU disappearance was also relatively specific for reaction with H2O2 in suspensions of endothelial cells where it was prevented by addition of catalase, but not AMT-catalase or SOD and did not occur following sonication or treatment with elastase, trypsin or leukotrienes. Addition of washed human erythrocytes (RBC) also prevented both H2O2 mediated injury and corresponding DMTU decreases in suspensions of endothelial cells. In addition, phorbol myristate acetate (PMA) and normal neutrophils, but not O2 metabolite deficient neutrophils from patients with chronic granulomatous disease (CGD), caused DMTU disappearance in vitro which was decreased by simultaneous addition of catalase, but not SOD, sodium benzoate or DMSO. Finally, addition of normal neutrophils (but not CGD neutrophils) and PMA caused DMTU disappearance and increased the concentrations of the stable prostacyclin derivative (PGF1 alpha) in supernatants of endothelial cell suspensions. In parallel, DMTU also decreased PMA and neutrophil-mediated PGF1 alpha increases in supernatants from endothelial cell monolayers. Our results indicate that DMTU can decrease H2O2 or neutrophil mediated injury to endothelial cells and that simultaneous measurement of DMTU disappearance can be used to improve assessment of the presence and toxicity of H2O2 as well as the H2O2 inactivating ability of scavengers, such as RBC, in biological systems.

Animals↗

Role of receptor cycling in the regulation of angiotensin II surface receptor number and angiotensin II uptake in rat vascular smooth muscle cells.

In vivo data on the factors controlling angiotensin II (AII) cell surface binding are conflicting. We studied the specific effects of AII on AII binding in rat mesenteric artery vascular smooth muscle cells in culture. Incubation with unlabeled AII at 21 degrees C resulted in time- and concentration-dependent decreases in AII surface binding at 4 degrees C, with a 30% reduction after exposure to 300 nM AII for 15 min. Reductions in cell surface binding were due to decrements in receptor number rather than changes in binding affinity. Loss of surface receptors was mediated by receptor internalization as maneuvers that blocked ligand internalization (cold temperature and phenylarsine oxide [PAO]) attenuated AII-induced loss of surface receptors. After removal of AII, recovery of surface binding was rapid (t1/2 = 15 min) and was mediated by reinsertion of a preexisting pool of receptors into the surface membrane rather than by new receptor synthesis. To determine the role of receptor cycling on AII-induced surface receptor loss, cells were incubated with the endosomal inhibitor chloroquine during exposure to AII at 21 degrees C. Incubation with AII plus chloroquine resulted in a 70% greater loss of surface binding than after incubation with AII alone. To determine the role of receptor cycling on uptake of ligand, cells were incubated with PAO or endosomal inhibitors during exposure to AII at 4 and 21 degrees C. Compared with buffer these agents did not alter AII uptake at 4 degrees C, but decreased uptake by 12-50% at 21 degrees C. These results indicate that after binding AII receptors cycle and that receptor cycling attenuates AII-induced losses of surface receptors and enhances ligand uptake by providing a continuous source of receptors to the cell surface.

Angiotensin II↗

Potassium: weighing the evidence for supplementation.

Changes in potassium levels clearly have hemodynamic significance. In mechanistic terms, they affect the transmembrane potential of vascular smooth muscle cells. They also influence the levels and activity of pressor hormones and of intracellular messengers involved in vasoconstriction. Furthermore, they alter the body's handling of sodium. As the net result, perhaps, of these phenomena, chronic supplementation of dietary potassium is associated with a small but appreciable decline in blood pressure. In humans, the effect, which could be predicted epidemiologically, has been demonstrated in studies of potassium administration in hypertensive patients. In experimental animals, the effect is most pronounced in salt-sensitive models of hypertension. The studies done to date do not permit firm recommendations about modification of dietary potassium content for hypertensive patients. However, in certain clinical settings, potassium repletion even for mildly depressed levels is vitally important, and in other circumstances, excess potassium clearly is dangerous. Still, indications are emerging that potassium may be valuable in preventing renal damage and stroke, quite apart from any effect on hypertension itself. Continued investigation will be of great value in the effort to arrive at a firm understanding of the precise roles that potassium may play in the treatment of hypertension or the prevention of its sequelae.

Animals↗

Mechanism of the antihypertensive effect of K depletion in the spontaneously hypertensive rat.

K depletion reverses hypertension in the SHR (systolic blood pressure: K deplete 122 +/- 5 vs. K replete 164 +/- 4 mm Hg, P less than 0.001). To determine the role of the renin angiotensin system in the protective effect of K depletion, we performed studies of vascular reactivity in intact SHR and of angiotensin II (Ang II) binding to mesenteric artery particles and vascular smooth muscle cells (VSMC) in culture from SHR. Pressor sensitivity to Ang II (+/- converting enzyme inhibition) but not norepinephrine was reduced in K depleted SHR. Thus, the decreased vascular reactivity in K depletion was specific for Ang II rather than a generalized defect. Ang II binding and receptor number (Bmax) (156 +/- 20 vs. 81 +/- 5 fmol/mg of protein, P less than 0.01) were increased in K depleted mesenteric artery particles. Since K depletion and increases in Ang II have both been associated with increased Ang II binding, Ang II binding was measured after bilateral nephrectomy. Despite reduction of plasma renin activity, total binding and Bmax were still increased in nephrectomized K depleted SHR. To determine the specific effect of K depletion independent of Ang II on Ang II binding, studies were performed in mesenteric artery VSMC from SHR grown in culture. VSMC from K replete SHR were grown to confluency in K replete medium and then were incubated in K depleted medium for 24 hours. Binding was saturable, time and temperature-dependent in K replete and K depleted cells. Total binding and Bmax (139 +/- 13 vs. 93 +/- 7 fmol/mg protein, P less than 0.01) were increased in K depleted cells.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin II↗

N,N'-dimethylthiourea dioxide formation from N,N'-dimethylthiourea reflects hydrogen peroxide concentrations in simple biological systems.

We hypothesized that measurement of a specific product from reaction of N,N'-dimethylthiourea (Me2TU) and H2O2 would provide a good indication of the H2O2 scavenging and protection seen after addition of Me2TU to biological systems. We found that addition of H2O2 to Me2TU yielded a single stable product, Me2TU dioxide. Me2TU dioxide formation correlated with Me2TU consumption as a function of added H2O2 concentration and was prevented by simultaneous addition of catalase (but not boiled catalase), superoxide dismutase, dimethyl sulfoxide, mannitol, or sodium benzoate. Me2TU dioxide formation, Me2TU consumption, and H2O2 concentration increases occurred in mixtures containing phorbol 12-myristate 13-acetate (PMA) and normal human neutrophils but not in mixtures containing PMA and neutrophils from patients with chronic granulomatous disease or in mixtures containing PMA and normal neutrophils and catalase. Me2TU dioxide formation also occurred in isolated rat lungs perfused with Me2TU and H2O2 but not in lungs perfused with Me2TU and elastase, histamine, or oleic acid. In contrast, Me2TU dioxide formation did not occur after exposure of Me2TU to 60Co-generated hydroxyl radical or hypochlorous acid in the presence of catalase. The results indicate that reaction of Me2TU with H2O2 selectively forms Me2TU dioxide and that measuring Me2TU dioxide formation from Me2TU may be useful for assessing the presence and significance of H2O2 in biological systems.

Animals↗

Mechanism of antihypertensive effect of potassium depletion in renovascular hypertension.

K depletion (KD) prevents the development of hypertension in two-kidney, one-clip renovascular, hypertension [mean arterial pressure: 110 +/- 5 (KD) vs. 142 +/- 3 mmHg in potassium replete (KR); P less than 0.001]. The protective effect of KD is associated with a 60% decrease in angiotensin II (ANG II) pressor responsiveness and a 40% decrease in ANG II binding to mesenteric artery particles from rats with renovascular hypertension (receptor number 117 +/- 16 in KD vs. 165 +/- 14 fmol/mg protein in KR, P less than 0.05). To determine whether decreases in binding could account for decreases in ANG II pressor responsivity, we measured ANG II binding after bilateral nephrectomy or sustained administration of converting-enzyme inhibitor. Both maneuvers resulted in increases in binding, such that total binding and receptor number were greater than in comparably treated KR rats; e.g., after nephrectomy, receptor number was 215 +/- 26 in KD vs. 98 +/- 12 fmol/mg protein in KR, (P less than 0.01). Despite increased binding, the pressor response to ANG II in KD rats, which were nephrectomized or treated with converting-enzyme inhibitor, was still reduced by 50% compared with comparably treated KR rats. To determine whether the decreased ANG II pressor responsivity of KD was caused by cellular K depletion or to increases in ANG H induced by KD, we administered K to KD, ANG II-deficient rats. ANG II pressor responsivity increased, and total binding and receptor number decreased (KD, ANG II- deficient 246 +/ 22 fmol/mg protein; KD, ANG II-deficient + K 91 +/ 16 fmol/mg protein; P less than 0.005) with K.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin II↗