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P Kubes

Publications and source records attributed to P Kubes.

137 records · Page 8Linked to original sources

Neutrophil-derived oxidants promote leukocyte adherence in postcapillary venules.

The objective of this study was to determine whether hydrogen peroxide (H2O2), hypochlorous acid (HOCl), and monochloramine (NH2Cl), at concentrations produced by activated neutrophils, promote leukocyte adherence to microvascular endothelium in post-capillary venules. Cat mesenteric venules (30-45 microns diameter) were examined using intravital video microscopy. Red blood cell velocity (VRBC), venular diameter (DV), and the number of adherent leukocytes (NWBC) were measured in postcapillary venules. Venular blood flow and wall shear rate (tau) were calculated from the measured values of VRBC and DV. Different concentrations (0.01-1.0 mM) of H2O2, HOCl, or NH2Cl were superfused on the mesentery. In some experiments, the contributions of the leukocyte adhesive glycoprotein CD11/CD18 and platelet-activating factor (PAF) in the oxidant-induced leukocyte adherence were determined using a CD18-specific antibody (IB4) and a PAF-receptor antagonist (WEB 2086), respectively. The results of our in vivo experiments indicate that H2O2 and NH2Cl, but not HOCl, promote leukocyte adhesion to venular endothelium. Incubation of isolated cat neutrophils with either NH2Cl or H2O2 resulted in activation of CD11/CD18, as assessed by flow cytometry. Although the leukocyte adhesion induced by both H2O2 and NH2Cl was associated with a reduction in venular wall shear rate, corresponding decrements in shear rate induced by partial occlusion of the mesenteric artery did not lead to similar levels of leukocyte adherence. The leukocyte adherence induced by H2O2 and NH2Cl was largely prevented by monoclonal antibody IB4, indicating that both oxidants promote leukocyte adherence via activation of CD11/CD18. The H2O2-induced, CD18-mediated leukocyte adherence appears to be elicited by PAF and by a direct effect of the oxidant on CD11/CD18 expression. The mechanism underlying the NH2Cl-induced leukocyte adherence remain unclear.

Animals↗

Transport kinetics for superoxide dismutase and catalase between plasma and interstitial fluid in the rat small intestine.

The purpose of these studies was to determine the initial rates (first 5 h) of plasma-to-interstitial fluid transport for superoxide dismutase, catalase, and albumin in the rat small intestine. In all experiments, the renal vascular pedicles were ligated to prevent the renal excretion of these macromolecules. Plasma and intestinal interstitial fluid (lymph) samples were collected at timed intervals after bolus intravenous administration of SOD, catalase, or 125I-labeled albumin. Before injection of the proteins, the plasma concentrations (43.8 +/- 16.9 and 7.6 +/- 1.2 U/mL, respectively), interstitial fluid (lymph) concentrations (28.8 +/- 7.6 and 1.6 +/- 0.8 U/mL, respectively), and the lymph-to-plasma (L/P) protein concentration ratios (0.59 +/- 0.13 and 0.22 +/- 0.09, respectively) for endogenous SOD and catalase were determined. The plasma disappearance rate for exogenously administered catalase far exceeded the rates for SOD or albumin. However, the rate of catalase disappearance from the plasma was markedly reduced in animals in which the circulation through the liver was eliminated, suggesting that the hepatic route may be important for elimination of exogenously administered catalase. Maximal interstitial fluid catalase concentrations were achieved within 30 min while SOD and albumin required 45-90 min. The L/P ratios for exogenously administered SOD and albumin increased to 0.22 +/- 0.06 and 0.19 +/- 0.03 within 60 and 120 min of injection, respectively, and remained at these levels for the remainder of the experimental protocol. The catalase L/P ratio increased to 0.24 +/- 0.07 within 90 min of injection and subsequently declined to levels measured for endogenous catalase over the remaining 3.5 h.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Adrenoceptor regulation of canine skeletal muscle blood flow during carbon monoxide hypoxia.

We questioned whether carbon monoxide hypoxia (COH) would affect peripheral blood flow by neural activation of adrenoceptors to the extent we had found in other forms of hypoxia. We studied this problem in hindlimb muscles of four groups of anesthetized dogs (untreated, alpha 1-blocked, alpha 1 + alpha 2-blocked, and beta 2-blocked). Cardiac output increased, but hindlimb blood flow (QL) and resistance (RL) remained at prehypoxic levels during COH (O2 content reduced 50%) in untreated animals. When activity in the sciatic nerve was reversibly cold blocked, QL doubled and RL decreased 50%. These changes with nerve block were the same during COH, suggesting that neural activity to hindlimb vasculature was not increased by COH. In animals treated with phenoxybenzamine (primarily alpha 1-blocked), RL dropped (approximately 50%) during COH, an indication that catecholamines played a significant role in maintaining tone to skeletal muscle. Animals with both alpha 1 + alpha 2-adrenergic blockade (phenoxybenzamine and yohimbine added) did not survive COH. RL was higher in beta 2-block than in the untreated group during COH, but nerve cooling indicated that beta 2-adrenoceptor vasodilation was accomplished primarily by humoral means. The above findings demonstrated that adrenergic receptors were important in the regulation of QL and RL during COH, but they were not activated by sympathetic nerve stimulation to the limb muscles.

Adrenergic alpha-Antagonists↗

Platelet-activating factor-induced mucosal dysfunction: role of oxidants and granulocytes.

We tested the possibility that platelet-activating factor (PAF) exerts some of its actions on the microvascular and mucosal membranes by stimulating the production of reactive O2 metabolites. Two series of experiments were performed using autoperfused segments of cat ileum pretreated with human recombinant superoxide dismutase (hSOD), catalase (H2O2 scavenger), or deferoxamine (an iron chelator). In the first series, we examined the effects of PAF infusion on mucosal permeability (blood-to-lumen clearance) to 51Cr-EDTA. PAF induced a 4-, 25-, and 20-fold increase in 51Cr-EDTA clearance at 4, 20, and 40 ng/min, respectively, and the increase was positively correlated with luminal fluid flux. hSOD, catalase, and deferoxamine reduced the 51Cr-EDTA clearance at each PAF dose and eliminated the dependence of 51Cr-EDTA clearance on transmucosal fluid flux. To determine whether mucosal granulocytes were the source of the reactive O2 metabolites, the mucosa was depleted of myeloperoxidase-positive cells using an antibody against the leukocyte integrin CD11/CD18. Mucosal granulocyte depletion resulted in a greatly reduced clearance of 51Cr-EDTA, suggesting that resident granulocytes may be the source of the reactive O2 metabolites. In a second series of studies, we examined the influence of hSOD, catalase, and deferoxamine on the increased transcapillary fluid and protein fluxes induced by intra-arterial PAF infusion. These agents attenuated the enhanced transvascular fluid and protein filtration by greater than 50% at the low dose but had no effect at the higher doses. We conclude that the PAF-induced increase in mucosal permeability to 51Cr-EDTA is mediated by reactive O2 metabolites produced by resident phagocytic cells.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Leukocyte-induced vascular protein leakage in cat mesentery.

The overall objective of this study was to determine whether leukocyte adherence and/or emigration is a prerequisite for the increased vascular protein leakage associated with acute inflammation. An in vivo preparation was used to monitor intestinal vascular protein leakage as well as polymorphonuclear leukocyte (PMN) adhesion and emigration in feline mesenteric microvessels exposed to platelet-activating factor (PAF) and leukotriene B4 (LTB4). Local intra-arterial infusion of PAF (4 ng/min) produced a fourfold increase in vascular protein leakage. A 50-fold higher concentration of LTB4 had no effect on vascular protein efflux. LTB4, however, did potentiate the PAF-induced vascular protein leakage. Both inflammatory mediators caused leukocytes to adhere to endothelial cells in postcapillary venules; however, leukocyte emigration was observed only in the presence of PAF. PAF-induced leukocyte adhesion and emigration and the increased vascular protein leakage were inhibited by a monoclonal antibody (MoAb IB4) directed against the common beta-subunit of the adhesive glycoprotein complex CD11/CD18. MoAb IB4 also prevented LTB4-induced leukocyte adhesion. Both PAF and LTB4 caused degranulation of cat PMNs in vitro, yet superoxide production was stimulated by PAF only. The data derived from these in vivo and in vitro studies indicate that leukocyte adhesion per se does not necessarily lead to increased vascular protein leakage and leukocyte emigration. Adhesion-dependent PMN functions such as emigration and superoxide production may play an important role in producing the alterations in vascular integrity observed in inflamed microvessels.

Animals↗

Platelet-activating factor-induced microvascular dysfunction: role of adherent leukocytes.

Platelet-activating factor (PAF) has been implicated in the pathogenesis of intestinal mucosal injury associated with endotoxemia, inflammation, allergic reactions, and ischemia-reperfusion. Although it is generally held that PAF initiates mucosal injury by enhancing transcapillary fluid and protein exchange, the effects of PAF on the intestinal microvasculature have not been defined to date. In this study we examined the influence of local intrarterial infusions of PAF (4, 20, and 40 ng/min) on intestinal transcapillary, lymphatic, and transmucosal water and protein fluxes. All of these parameters were increased by each of the concentrations of PAF. PAF caused a large rise in venous hematocrit without a corresponding increase in venous plasma protein concentration and a 14- to 37-fold increase in vascular protein flux. Local intra-arterial infusion of PAF promoted leukocyte adherence to mesenteric venular endothelium, a process that is inhibited by the monoclonal antibody, MoAb IB4. PAF-induced increments in intestinal lymph flow, venous hematocrit, and vascular protein flux were greatly attenuated in animals treated with MoAb IB4. The results of this study indicate that PAF promotes the filtration of fluid and protein across intestinal capillaries. These microvascular effects of PAF are mediated, in part, by adherent leukocytes.

Animals↗

Role of platelet-activating factor in ischemia/reperfusion-induced leukocyte adherence.

The objective of this study was to determine whether platelet-activating factor (PAF) mediates the leukocyte-endothelial cell interactions elicited by ischemia/reperfusion. The rates of adherence and extravasation of leukocytes were monitored in cat mesenteric venules subjected to 60 min of ischemia (blood flow reduced to 20% of control) followed by 60 min of reperfusion. Leukocyte rolling velocity, red blood cell velocity, and vessel diameter were also measured. The experiments were performed in control (untreated) animals and in animals pretreated with one of two PAF receptor antagonists, i.e., BN 52021 or WEB 2086. The responses of venular blood flow, wall shear rate, and vessel diameter did not differ between the three groups. In the control group, 1 h of ischemia was associated with significant adherence and extravasation of leukocytes, with reperfusion greatly enhancing these responses. The rates of leukocyte adherence and extravasation during reperfusion were greatly attenuated by both PAF antagonists. Furthermore, the proportion of adherent leukocytes that ultimately extravasate during reperfusion was markedly reduced by WEB 2086. These results suggest that PAF plays an important role in mediating the adhesive interaction between circulating leukocytes and microvascular endothelium induced by ischemia/reperfusion and that the phospholipid promotes the leukocyte extravasation associated with ischemia/reperfusion.

Animals↗

Modulation of PAF-induced leukocyte adherence and increased microvascular permeability.

The objective of this study was to assess whether superoxide and leukocyte adhesion glycoproteins (CD18) mediate the leukocyte adherence to mesenteric microvessels and increased intestinal microvascular permeability induced by platelet-activating factor (PAF). PAF was infused into the arterial supply of an isolated autoperfused segment of cat intestine. Thirty minutes into the infusion, the number of adherent leukocytes within mesenteric venules was measured. This was followed by intravenous administration of either human recombinant superoxide dismutase (hSOD), hydrogen peroxide-inactivated hSOD, or a monoclonal antibody against the leukocyte adhesion molecule CD18 (MoAb IB4), and 30 min later, adherence measurements were repeated. hSOD and MoAb IB4 produced a 30 and 66% decrease, respectively, in leukocyte adherence, whereas inactivated hSOD had no effect. Adherence of PAF-activated cat neutrophils to plastic was reduced only by MoAb IB4, suggesting that PAF-induced leukocyte adherence is mediated by both CD18 and superoxide and that endothelium is necessary for the superoxide-mediated adhesion. In a correlate study, hSOD and MoAb IB4 were shown to attenuate the PAF-induced increase in microvascular permeability by 40 and 70%, respectively. These data indicate that the increased microvascular permeability induced by PAF can be attenuated when leukocyte adherence to microvascular endothelium is reduced using molecules that either bind to CD18 adhesive glycoproteins or scavenge superoxide.

Animals↗

Neural regulation of canine skeletal muscle blood flow during hypoxic hypoxia.

Vascular resistance in canine limb skeletal muscle first increases and then decreases with prolonged arterial hypoxia, but whether neural sympathetic activity decreases with time is unknown. To assess the effectiveness of neurally mediated vasoconstrictor tone, we periodically cooled and rewarmed the sciatic nerve while nine anesthetized, paralyzed, pump-ventilated dogs were made hypoxic for 60 min by ventilation with 9.1% O2 in N2 (PaO2 = 24 +/- 2 mmHg). Before hypoxia, limb blood flow (QL) increased to a mean peak value of 111 ml.kg-1.min-1 with nerve cooling. With hypoxic hypoxia (HH), cardiac output increased but mean arterial pressure and limb blood flow remained the same. Nerve cooling at 15, 30, and 60 min of HH resulted in a pattern of progressively increasing mean peak QL values of 137, 151, and 160 ml.kg-1.min-1, respectively (P less than 0.05). Stimulation of the cut sciatic nerve at the end of the experiment established the maximum vasoconstriction that was possible and, thereby, the potential range that was available. The results showed that not only was neurally mediated vasoconstriction to skeletal muscle maintained throughout the hypoxic period, but that its intensity must have been increasing to overcome the local vasodilatory forces that were responsible for flow increasing even further with nerve cooling in prolonged hypoxia.

Animals↗

Regulation of canine skeletal muscle and hindlimb blood flow in acute anemia.

Redistribution of blood flow away from resting skeletal muscles does not occur during anemic hypoxia even when whole body oxygen uptake is not maintained. In the present study, the effects of sympathetic nerve stimulation on both skeletal muscle and hindlimb blood flow were studied prior to and during anemia in anesthetized, paralyzed, and ventilated dogs. In one series (skeletal muscle group, n = 8) paw blood flow was excluded by placing a tourniquet around the ankle; in a second series (hindlimb group, n = 8) no tourniquet was placed at the ankle. The distal end of the transected left sciatic nerve was stimulated to produce a maximal vasoconstrictor response for 4-min intervals at normal hematocrit (Hct.) and at 30 min of anemia (Hct. = 14%). Arterial blood pressure and hindlimb or muscle blood flow were measured; resistance and vascular hindrance were calculated. Nerve stimulation decreased blood flow (p less than 0.05) in the hindlimb and muscle groups at normal Hct. Blood flow rose (p less than 0.05) during anemia and was decreased (p less than 0.05) in both groups during nerve stimulation. However, the blood flow values in both groups during nerve stimulation in anemic animals were greater (p less than 0.05) than those at normal Hct. Hindlimb and muscle vascular resistance fell significantly during anemia and nerve stimulation produced a greater increase in vascular resistance at normal Hct. Vascular hindrance in muscle, but not hindlimb, was less during nerve stimulation in anemia than at normal Hct.(ABSTRACT TRUNCATED AT 250 WORDS)

Anemia↗

Hindlimb skeletal muscle blood flow during sympathetic nerve block before and during acute anemia.

The role of sympathetic innervation in the regulation of hindlimb skeletal muscle blood flow (QL) and metabolism was studied prior to and during acute anemia in anesthetized, paralyzed, and ventilated dogs (n = 8). Neural activity in the sciatic nerve was reversibly cold blocked for a 15-min period at control hematocrit (Hct., 51%) and again at 30 min of anemia (Hct., 14%). At the end of each experiment the sciatic nerve was transected and maximally stimulated (frequency, 10 Hz; duration, 2.0 ms). Arterial blood pressure and QL were measured continuously; skeletal muscle vascular hindrance (ZL) and oxygen uptake (VO2) were calculated. When the sciatic nerve was cold blocked prior to and during anemia, ZL decreased to the same absolute value and VO2 remained unchanged. Prior to anemia the mean QL increased (p less than 0.05) from 99 to a peak value of 165 mL.kg-1.min-1 during cold block; QL had returned to control by 10 min of cooling. During anemia, QL increased (p less than 0.05) from 160 to 307 mL.kg-1.min-1 during sympathetic cold block, while maximal sympathetic stimulation decreased QL to 87 mL.kg-1.min-1. QL remained above (p less than 0.05) the anemia control value (160 mL.kg-1.min-1) at 10 min of cooling. Hindrance increased from 0.30 to 0.38 peripheral resistance units/centipoise following the induction of anemia and this was shown to be sympathetically mediated because hindrance was decreased to the same level during cold block prior to and during anemia.

Anemia↗