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Biomedical subjects

A M Lefer

Publications and source records attributed to A M Lefer.

At least 91 records · Page 5Linked to original sources

Beneficial effects of LEX032, a novel recombinant serine protease inhibitor, in murine traumatic shock.

The effects of LEX032, a novel recombinant serine protease inhibitor (i.e., serpin), were investigated in an experimental model of Noble-Collip drum shock. Pentobarbital-anesthetized rats subjected to drum trauma and receiving only the vehicle, developed severe traumatic shock with hypotension. These traumatized rats exhibited a survival time of 135 +/- 29 min, endothelial dysfunction, and a significant increase in intestinal myeloperoxidase activity. In contrast, LEX032 given intravenously (15 mg/kg bolus) resulted in a significant prolongation of survival time to 264 +/- 25 min (p < .01), a significant and sustained increase in mean arterial blood pressure, and a significant attenuation of intestinal myeloperoxidase activity (p < .05). Moreover, administration of LEX032 significantly preserved superior mesenteric artery (SMA) endothelial function as measured by the relaxation response of isolated (SMA) rings to acetylcholine, an endothelium-dependent vasodilator (64 +/- 10% vs. 25 +/- 6%, p < .01 compared with untreated trauma rats). Vasorelaxation responses to an endothelium-independent vasodilator, NaNO2, were unchanged in trauma. Our results indicate a significant protective role of LEX032 in traumatic shock, based on the preservation of endothelial function, reduced neutrophil accumulation in injured tissues, and increased survival time. These findings suggest that inhibition of serine proteases, some of which are from neutrophils, can be beneficial in traumatic shock in rats.

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Myocardial and endothelial protection by TMS in ischemia-reperfusion injury.

N,N,N-trimethylsphingosine (TMS), a stable synthetic sphingosine derivative, was investigated in a feline model of myocardial ischemia (90 min) and reperfusion (270 min) injury. TMS (60 micrograms/kg), administered intravenously 10 min before reperfusion, significantly attenuated myocardial necrosis (15 +/- 3 vs. 31 +/- 4% necrosis of area at risk, P < 0.01) and cardiac myeloperoxidase activities, a marker of neutrophil accumulation, compared with vehicle-treated cats. Endothelium-dependent relaxation to acetylcholine in ischemic-reperfused coronary artery rings treated with TMS was also significantly preserved compared with vehicle (73 +/- 4 vs. 34 +/- 4% vasorelaxation, P < 0.01). Polymorphonuclear neutrophil (PMN) adherence to coronary endothelium 270 min after reperfusion was markedly attenuated in the TMS group compared with vehicle-treated cats (37 +/- 5 vs. 76 +/- 5 PMN/mm2, P < 0.01). TMS also attenuated upregulation of P-selectin on coronary venular endothelium by immunohistochemistry. This was consistent with in vitro findings that TMS attenuates PMN adherence to thrombin-stimulated coronary endothelium and P-selectin upregulation on thrombin-stimulated cat platelets. A sphingolipid derivative, TMS at physiological concentrations exerts cardioprotective actions and preserves coronary endothelial function following myocardial ischemia and reperfusion in vivo. The effects appear to be mediated by the inhibition of PMN-endothelial interaction and subsequent accumulation into the ischemic myocardium. Thus TMS may be a useful agent in attenuating myocardial reperfusion injury.

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Mechanisms of vascular preservation by a novel NO donor following rat carotid artery intimal injury.

We studied the effects of a novel organic nitric oxide (NO) donor, 4-hydroxymethyl-furazan-3-carboxylic acid-2-oxide (CAS-1609), in a rat carotid artery intimal injury model. The NO donor, CAS-1609, or its non-NO-donating control compound, 4-hydroxymethyl-furazan-3-carboxylic acid (C-93-4845), was infused intravenously at 30 micrograms/day. Seven days after injury, carotid artery rings contracted only 56 +/- 6 mg to NG-nitro-L-arginine methyl ester in C-93-4845-treated rats, compared with 120 +/- 17 mg in CAS-1609-treated rats (P < 0.02), indicating a preservation of endogenous NO release. Improved responses to the endothelium-dependent dilator, acetylcholine, also occurred in injured arteries treated with CAS-1609. Morphometric analysis of injured carotid arteries given the inactive compound showed marked intimal thickening with an intimal-to-medial ratio (I/M) of 0.76 +/- 0.02, compared with a significantly lower I/M of 0.32 +/- 0.04 (P < 0.01) in injured carotid arteries given CAS-1609. Additionally, CAS-1609 was found to have a concentration-dependent stimulatory effect on cultured rat aortic endothelial cell proliferation (P < 0.01) but and inhibitory effect on platelet-derived growth factor-BB (10 ng/ml)-stimulated rat aortic smooth muscle cell proliferation (P < 0.01). This is the first study to demonstrate that NO plays a dual role in vascular cell proliferation, stimulating endothelial cells but inhibiting smooth muscle cell proliferation. This dual effect of NO on cell proliferation is associated with an in vivo reduction in neointimal thickening and an acceleration of endothelial recovery determined by both anatomic and functional methods.

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Nitric oxide protects against leukocyte-endothelium interactions in the early stages of hypercholesterolemia.

We studied the effects of CAS1609, a nitric oxide donor, on leukocyte-endothelial interactions during the early stages of hypercholesterolemia in rat mesenteric microcirculation. Rats were randomly divided into four groups: (a) rats fed control diet, (b) rats fed control diet while receiving CAS1609, (c) rats fed a high-cholesterol (HC) diet and given C93-4845 (an inactive control compound), and (d) rats fed an HC diet and given CAS1609. Both HC groups developed significantly elevated plasma cholesterol levels compared with rats fed the control diet. Intravital microscopy of mesenteric venules revealed a significant increase in leukocyte rolling and adherence in the untreated HC rats compared with control rats (P < .01). This was significantly attenuated in the HC rats given CAS1609. The HC rats given C93-4845 also developed aortic endothelial dysfunction (ie, impaired relaxation to acetylcholine or ADP) that was significantly prevented by CAS1609 infusion (P < .02). Immunohistochemical staining of ileum demonstrated significantly enhanced localization of P-selectin and intercellular adhesion molecule-1 (ICAM-1) on venular endothelium in the untreated HC rats compared with control rats (P < .01). However, P-selectin and ICAM-1 expression were significantly attenuated in HC rats given CAS1609 (P < .05 and P < .01, respectively). Thus, hypercholesterolemia induces microvascular dysfunction characterized by loss of endothelium-derived nitric oxide, increased rolling and adherence of leukocytes, and increased expression of P-selectin and ICAM-1. Infusion of CAS1609 significantly attenuated these changes due to hypercholesterolemia. Our data suggest that nitric oxide plays a significant role in the prevention of the early endothelial dysfunction observed in hypercholesterolemia.

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Inhibition of nitric oxide biosynthesis promotes P-selectin expression in platelets. Role of protein kinase C.

Inhibition of NO synthesis promotes P-selectin expression on endothelial cells; however, the precise mechanism is unclear. Because No has been shown to inhibit protein kinase C (PKC) activity, we examined the hypothesis that the NO synthase inhibitor NG-nitro-L-arginine methyl ester (L-NAME) stimulates P-selectin expression on platelets via PKC activation. Ten-minute incubation with either phorbol 12-myristate 13-acetate (PMA), thrombin, or L-NAME significantly increased P-selectin expression on platelets (as assessed by flow-cytometric analysis) and PKC activity of platelet membranes. Increased P-selectin expression induced by either PMA, thrombin, or L-NAME was significantly attenuated by the selective PKC inhibitor UCN-01 (7-hydroxystaurosporine). Furthermore, L-NAME-induced P-selectin expression was significantly attenuated by either L-arginine, 8-bromo-cGMP, or sodium nitroprusside (SNP). Interestingly, L-NAME further potentiated P-selectin upregulation by thrombin. L-NAME, thrombin, and PMA also significantly increased polymorphonuclear leukocyte adherence to the coronary artery endothelium, an effect that was significantly attenuated by the anti-P-selectin monoclonal antibody PB1.3 or by UCN-01, L-arginine, 8-bromo-cGMP or SNP but not by D-arginine or he nonblocking anti-P-selectin monoclonal antibody NBP1.6. These results indicate that inhibition of NO synthesis induces rapid P-selectin expression, which appears to be at least partially mediated by PKC activation in platelets. Similar effects and mechanisms of L-NAME on P-selectin function were also observed in endothelial cells, another site of P-selectin expression.

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Beneficial effects of oligotide, a novel oligodeoxyribonucleotide, in murine traumatic shock.

The effects of oligotide, an oligodeoxyribonucleotide analog, were investigated in an experimental model of traumatic shock. Pentobarbital-anesthetized rats subjected to Noble-Collip drum trauma and receiving only the vehicle (i.e., Krebs-Henseleit solution) developed a severe form of traumatic shock characterized by marked hypotension (61 +/- 6 mmHg), a survival time of 115 +/- 21 min, endothelial dysfunction, significant increases in plasma free amino-nitrogen concentration (p < .001) as well as elevated intestinal myeloperoxidase activity. In contrast, oligotide given intravenously (15 mg/kg bolus + 10 mg/kg/h infusion for 5 h) resulted in a significant prolongation of survival time to 209 +/- 31 min (p < .01), a significant and sustained increase in mean arterial blood pressure, a significant attenuation of plasma free amino-nitrogen concentration (p < .01), and intestinal myeloperoxidase activity (p < .05). Furthermore, oligotide significantly preserved superior mesenteric artery (SMA) endothelial function as seen by the relaxation response of isolated SMA rings to acetylcholine (71 +/- 5% vs. 36 +/- 5%, p < .01 compared to untreated trauma rats). Moreover, oligotide in a concentration-dependent manner attenuated unstimulated human neutrophil adherence to either thrombin or trauma-activated SMA endothelium in vitro (p < .001). Thus, our data suggest that the mechanism of the protective effect of oligotide in traumatic shock is improving endothelial function and diminishing neutrophil accumulation leading to reduced tissue injury.

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Cardioprotection by a novel recombinant serine protease inhibitor in myocardial ischemia and reperfusion injury.

Polymorphonuclear neutrophils (PMN) play an important role in myocardial ischemia/reperfusion (MI/R) injury; however, the role of neutrophilic proteases is less understood. The effects of a novel serine protease inhibitor (serpin), LEX032, were investigated in a murine model of MI (20 min) and R (24 hr) injury in vivo. LEX032 is a recombinant human alpha 1-antichymotrypsin in which six amino acid residues were replaced around the active center with those of alpha-1 protease inhibitor. LEX032 has the ability to inhibit both neutrophil elastase and cathepsin G, two major neutral serine proteases in neutrophils, as well as superoxide generation. LEX032 (25 or 50 mg/kg) administered i.v. 1 min before reperfusion significantly attenuated myocardial necrotic injury evaluated by cardiac creatine kinase loss compared to MI/R rats receiving only vehicle (P < .001). Moreover, cardiac myeloperoxidase activity, an index of PMN accumulation, in the ischemic myocardium was significantly attenuated by LEX032 as compared with rats receiving vehicle (P < .001). LEX032 also moderately attenuated leukotriene B4-stimulated PMN adherence to rat superior mesenteric artery endothelium and markedly diminished superoxide radical release from LTB4-stimulated PMN in vitro. In a glycogen-induced rat peritonitis model, LEX032 (50 mg/kg) significantly attenuated PMN transmigration into the peritoneal cavity in vivo. In conclusion, the recombinant serine protease inhibitor, LEX032, appears to be an effective agent for attenuating MI/R injury by inhibiting neutrophil-accumulation into the ischemic-reperfused myocardium and by inactivating cytotoxic metabolites (proteases and superoxide radical) released from neutrophils.

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Cardioprotection by liposome-conjugated sialyl Lewisx-oligosaccharide in myocardial ischaemia and reperfusion injury.

OBJECTIVES: Selectins are important adhesion molecules which utilize a carbohydrate ligand such as sialyl Lewisx (SLex). Our objective was to study the effects of a liposome-conjugated SLex (Lipo-SLex) in myocardial ischaemia (MI) and reperfusion (R) injury in order to further clarify the actions of this carbohydrate. METHODS: We studied the efficacy of Lipo-SLex in a feline model of MI (90 min) and R (270 min) injury in vivo. Lipo-SLex (400 micrograms SLex/kg, iv) was administered intravenously 10 min prior to R. We also utilized an in vitro system of neutrophil adherence to thrombin-stimulated coronary endothelium to validate the efficacy of Lipo-SLex. RESULTS: Lipo-SLex significantly attenuated myocardial necrosis (8.6 +/- 1.2 vs. 29.5 +/- 3.1% of area-at-risk, P < 0.01) and plasma creatine kinase activities (P < 0.01) compared to vehicle (liposome alone). Moreover, endothelium-dependent relaxation to acetylcholine and A23187 in ischaemic-reperfused coronary rings obtained from cats treated with Lipo-SLex was significantly preserved compared to cats given liposomes without SLex (P < 0.01). After reperfusion, ex vivo PMN adherence to ischaemic-reperfused coronary endothelium was significantly increased in vehicle-treated cats, however, this was significantly attenuated in Lipo-SLex-treated cats (82 +/- 7 vs. 28 +/- 3 PMNs/mm2, P < 0.01). Myeloperoxidase activity in the ischaemic myocardium, a marker of PMN accumulation, was also significantly attenuated in Lipo-SLex-treated cats compared to liposomes without SLex (P < 0.01). CONCLUSIONS: Liposome-conjugated SLex-oligosaccharide attenuates myocardial necrosis and preserves coronary endothelial function following MI/R in vivo. The mechanism appears to be mediated by inhibition of the initial PMN-endothelial interaction and eventual accumulation into the ischaemic cardiac tissue. The liposome-SLex complex may be an efficient drug formulation for acute inflammatory diseases.

Acetylcholine↗

Cardioprotective effects of selective inhibition of the two complement activation pathways in myocardial ischemia and reperfusion injury.

The complement (C) system-mediated neutrophil activation, adhesion to the coronary endothelium and accumulation into cardiac tissue are key steps in the pathogenesis of myocardial ischemia-reperfusion (MI/R) injury. We examined the differential role of the classical and the alternative complement pathway in MI/R injury in vivo. Rats were subjected to 20 min of myocardial ischemia followed by 24 h of reperfusion. Either a classical pathway inhibitor [C1 esterase inhibitor (C1-INH) (15 mg/kg)] or an alternative pathway inhibitor soluble complement receptor 1 (sCR1)[des-LHR-A](15 mg/kg) or their vehicle were administered intravenously 1 min prior to reperfusion, and myocardial necrosis (creatine kinase loss) and neutrophil accumulation, cardiac myeloperoxidase activity, were examined. C1-INH significantly attenuated cardiac creatine kinase loss compared to MI/R rats given only vehicle (p < 0.05) 24 h after reperfusion. An alternative pathway inhibitor, sCR1 [des-LHR-A] attenuated myocardial injury to a lesser extent, although it was not significantly different from the value for C1-INH or vehicle. Besides cardiac myeloperoxidase activity, the ischemic cardiac tissue was significantly attenuated by both C1-INH and sCR1[desLHR-A] (p < 0.05 vs. vehicle). Both the classical and alternative pathways may contribute to MI/R injury via a neutrophil-dependent mechanism in vivo. Selective inhibition of the classical pathway of complement activation seems to be slightly more effective in limiting necrotic MI/R injury than the selective alternative pathway inhibition in this 24 h model of reperfusion injury, but equal doses of each inhibitor attenuated neutrophil accumulation.

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Quantification of neutrophil migration following myocardial ischemia and reperfusion in cats and dogs.

Endothelial cell dysfunction and cardiac myocyte injury resulting from ischemia and reperfusion have been associated with accumulation of neutrophils in the myocardium. To determine whether the accumulation is related primarily to intravascular sequestration or extravascular infiltration of neutrophils during the early period of reperfusion, we morphometrically quantified the tissue distribution of neutrophils in cats and dogs. At the end of the reperfusion period, the base of the heart was cross-clamped to preserve neutrophil location at the moment of death. Point-counting methods were used to determine the distribution of neutrophils inside and outside coronary arterioles and venules (< or = 100 microns in diameter) as well as coronary capillaries 5-10 microns in diameter in 0.5-microns-thick, plastic-embedded sections. Ischemia-reperfusion resulted in a threefold increase in neutrophil number in the lumen of arterioles and venules at 60 min of reperfusion and up to a sevenfold increase at 270 min of reperfusion (P < .05) compared to time-matched control nonischemic hearts. The ratio of intravascular neutrophils in venules to arterioles was 2:1. Intracapillary neutrophils increased, but not significantly, at 60 min of reperfusion. At 270 min of reperfusion, intracapillary neutrophils increased 11-fold (P < .05). The percentage of total neutrophils that accumulated outside arterioles and venules in cat hearts was 8% at 60 min of reperfusion (not significant, NS) and 28% at 270 min of reperfusion (P < .05). In dog hearts, the percentages were 26% (NS) and 44% (P < .05), respectively. The percentage of total neutrophils that accumulated outside capillaries was < 6% in both cat and dog hearts (NS). The combination of rapid intravascular sequestration, delayed extravascular infiltration, and low incidence of neutrophil-cardiac myocyte contact in situ in these two species suggests that neutrophil-mediated cardiac myocyte injury during early reperfusion may initially depend on diffusion of inflammatory mediators and subsequently require direct contact between neutrophils and cardiac myocytes.

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Inhibition of endothelial-derived nitric oxide promotes P-selectin expression and actions in the rat microcirculation.

BACKGROUND/AIMS: Inhibition of nitric oxide synthesis increases leukocyte and endothelial interaction in mesenteric venules. In this study, the relationship between inhibition of NO and expression of the adhesion molecule P-selectin was examined. METHODS: The rat mesentery was superfused with the NO inhibitor NG-nitro-L-arginine methyl ester (L-NAME) either alone or in combination with intravenous infusions of L-arginine, D-arginine, a P-selectin-neutralizing monoclonal antibody (PB1.3 [1 mg/kg]), recombinant human superoxide dismutase (hSOD), or 8 bromoguanosine 3',5'-cyclic monophosphate (8-br-cGMP). Leukocyte rolling and adherence were monitored in mesenteric venules via intravital microscopy. Ileal tissue superfused with L-NAME was examined immunohistochemically for P-selectin expression. RESULTS: Superfusion of the rat mesentery with L-NAME resulted in a significant increase in leukocyte rolling and adherence in the mesenteric venule, which was attenuated by administration of L-arginine but not D-arginine. Monoclonal antibody PB1.3 as well as hSOD and 8-br-cGMP administered before initiation of L-NAME superfusion significantly attenuated the increase in leukocyte rolling and adherence. Immunohistochemistry showed a significant increase in P-selectin expression after 60 minutes of superfusion with L-NAME, which was attenuated by L-arginine, hSOD, and 8-br-cGMP. CONCLUSIONS: These data indicate an important functional relationship between endothelial-derived NO production and expression of the endothelial adhesion molecule P-selectin.

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Beneficial actions of S-nitroso-N-acetylpenicillamine, a nitric oxide donor, in murine traumatic shock.

We studied the effects of the nitric oxide donor, S-nitroso-N-acetylpenicillamine (SNAP), in rat traumatic shock characterized by hypotension, increases in plasma free amino-nitrogen (5.3 +/- 0.5 U/ml vs. 2.5 +/- 0.3 U/ml controls) and intestinal myeloperoxidase activities (2.7 +/- 1.0 U/100 mg vs. 0.2 +/- 0.1 U/100 mg controls), and a survival time of 143 +/- 20 min. Moreover, superior mesenteric artery rings isolated from rats in traumatic shock relaxed to the endothelium-dependent vasodilator acetylcholine only 21 +/- 6% of U-46619 induced contraction. Administration of 100 micrograms/kg SNAP 10 min post-trauma followed by 10 micrograms/kg/h infusion prolonged survival time to 273 +/- 18 min (p < .05), attenuated the increases in plasma free amino-nitrogen (3.1 +/- 0.4 U/ml, p < .05) and tissue myeloperoxidase activities (0.6 +/- 0.3 U/100 mg, p < .05). Moreover, SNAP significantly preserved superior mesenteric artery endothelial function; the vasorelaxation to acetylcholine was 54 +/- 4% (p < .01). Protective effects were not seen in traumatic shock rats treated with the non-NO-donating parent compound N-acetylpenicillamine. These results indicate that SNAP affords significant protection in murine traumatic shock which may be achieved through maintenance of systemic blood pressure, preservation of vascular endothelial integrity, and inhibition of neutrophil-endothelial interaction and the resultant reduced microvascular leakiness.

Acetylcholine↗

Nitric oxide attenuates leukocyte-endothelial interaction via P-selectin in splanchnic ischemia-reperfusion.

We studied the effects of exogenous nitric oxide (NO) on leukocyte-endothelial interaction after 60 min of splanchnic artery ischemia and 120 min of reperfusion (SAO/R) in pentobarbital sodium-anesthetized rats via intravital microscopy. Treatment with the NO donor S-nitroso-N-acetylpenicillamine (SNAP, 20 micrograms/kg bolus followed by infusion at 20 micrograms.kg-1.h-1), beginning 10 min before reperfusion, resulted in significantly decreased leukocyte-endothelial interaction. This was manifested by a significant decrease in leukocyte rolling and adherence in the postcapillary venules. Tissue protection was demonstrated by a significantly lower plasma free amino-nitrogen concentration in the SNAP-treated SAO/R rats compared with those receiving NO-depleted SNAP (P < 0.05). Immunohistochemical localization of P-selectin showed significantly decreased P-selectin expression on the venular endothelium after SAO/R in rats given SNAP 10 min before reperfusion (23.0 +/- 3.2% vs. 54.9 +/- 12.1% positive staining, respectively, P < 0.01). From these data, we conclude that the effects of exogenous NO on leukocyte-endothelial interaction after ischemia-reperfusion appear to be at least partially mediated through the endothelial adhesion molecule P-selectin.

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Isolated cardiac myocytes are sensitized by hypoxia-reoxygenation to neutrophil-released mediators.

We exposed isolated rat cardiac myocytes to 20 min of hypoxia followed by 20 min of reoxygenation and observed the effect of supernatants of stimulated neutrophils [polymorphonuclear leukocytes (PMNs)] given at the beginning of reoxygenation. PMN supernatants induced cardiac myocyte injury, which was characterized by a significant (P < 0.01) reduction in cell viability to 53 +/- 3%, vs. 84 +/- 3% in rat myocytes subjected to hypoxia-reoxygenation (H/R) alone. The PMN supernatants also resulted in elevated creatine kinase (CK) activities in the myocyte medium. To examine specific PMN-released mediators that may contribute to this cell death, we studied the effects of hydrogen peroxide (H2O2), elastase, and platelet-activating factor on H/R cardiac myocytes. Incubation of myocytes after hypoxia with 10, 50, and 100 microM H2O2 decreased viability in a concentration-dependent manner (from 83 +/- 2 to 37 +/- 2%; P < 0.01). CK release of H/R myocytes was also significantly increased by 100 microM H2O2 (to 28 +/- 5 from 12 +/- 1% for H/R alone; P < 0.01). Similarly, elastase (5 micrograms/ml) given after hypoxia significantly reduced cardiac myocyte viability during reoxygenation (viability 58 +/- 1 vs. 85 +/- 1% H/R alone; P < 0.05) and increased CK release (to 29 +/- 3 from 11 +/- 1% for H/R alone; P < 0.01), an effect that was abolished by L-680,833, an elastase inhibitor. Unlike H2O2 and elastase, platelet-activating factor had no significant effect on myocyte viability or CK release after H/R.(ABSTRACT TRUNCATED AT 250 WORDS)

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Beneficial actions of CP-0127, a novel bradykinin receptor antagonist, in murine traumatic shock.

We studied the effects of CP-0127, a novel bradykinin receptor antagonist, in a rat model of traumatic shock. Pentobarbital-anesthetized rats subjected to Noble-Collip drum trauma developed a shock state characterized by marked hypotension, significant increases in plasma-free amino-nitrogen (8.6 +/- 0.97 vs. 2.3 +/- 0.15 U/ml in control rats) and intestinal myeloperoxidase (MPO) activity (2.7 +/- 0.33 vs. 0.08 +/- 0.03 U/100 mg control rats, intestinal tissue), and a survival time of only 110 +/- 9 min. Moreover, superior mesenteric artery (SMA) rings isolated from rats subjected to traumatic shock relaxed to the endothelium-dependent vasodilator acetylcholine (ACh) significantly less than rings isolated from control rats (21 +/- 4 vs. 92 +/- 4%, P < 0.001). Administration of CP-0127 at a dose of 10 mg/kg subcutaneously completely blocked the hypotensive response to 2.5 micrograms/kg bradykinin injected intravenously in sham traumatic shock rats. CP-0127 given immediately posttrauma prolonged survival time to 219 +/- 27 min (P < 0.01) and attenuated the increases in plasma-free amino-nitrogen (3.7 +/- 0.41 U/ml, P < 0.01) and tissue MPO activities (1.2 +/- 0.71 U/100 mg intestinal tissue, P < 0.05). Furthermore, SMA endothelial function was significantly preserved (relaxation to ACh: 57 +/- 6%, P < 0.01) in CP-0127-treated traumatic shock rats. These results indicate that bradykinin plays an important role in tissue injury associated with traumatic shock and that CP-0127 affords significant protection, which may be achieved through inhibition of neutrophil-endothelial interaction and protection of vascular endothelial function.

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Role of P-selectin in microvascular leukocyte-endothelial interaction in splanchnic ischemia-reperfusion.

The role of P-selectin in leukocyte-endothelial interaction after splanchnic arterial occlusion and reperfusion (SAO/R) in pentobarbital-anesthetized rats was investigated employing a P-selectin-neutralizing monoclonal antibody (i.e., MAb PB1.3). MAb PB1.3 (1 mg/kg) given intravenously to SAO/R rats just before reperfusion significantly attenuated leukocyte rolling and adherence in mesenteric postcapillary venules as observed via intravital microscopy. Likewise, ileal myeloperoxidase (MPO) activity was decreased from 4.6 +/- 0.6 in nontreated ischemic rats to 2.0 +/- 0.2 U/100 mg (P < 0.01), indicating a lesser degree of polymorphonuclear leukocyte (PMN) accumulation. A significantly lower plasma free amino-nitrogen concentration was observed in MAb PB1.3-treated rats vs. untreated (P < 0.01), suggesting decreased tissue injury after reperfusion. Immunohistochemical localization demonstrated significant expression of P-selectin in endothelial cells lining ileal postcapillary venules 30 min after reperfusion of the ischemic splanchnic circulation. Thus P-selectin appears to plays an important role in leukocyte accumulation after splanchnic ischemia-reperfusion, and the MAb PB1.3 attenuates the accumulation of PMNs in the ischemic-reperfused small bowel, resulting in reduced tissue injury.

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