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D Beasley

Publications and source records attributed to D Beasley.

32 records · Page 2Linked to original sources

Endotoxin inhibits contraction of vascular smooth muscle in vitro.

Decreased responsiveness of the vasculature to vasoconstrictors has been implicated in the pathogenesis of endotoxic shock, yet the mechanism of diminished responsiveness has not been determined. In these studies, exposure of rat aortic rings to purified Escherichia coli lipopolysaccharide (endotoxin) in vitro inhibited subsequent contractions caused by vasoconstrictors. Contractions caused by the alpha-adrenoceptor agonist phenylephrine, as well as those induced by potassium depolarization, were depressed by endotoxin. The effect of endotoxin on vascular contractions was delayed. Phenylephrine-induced contractions were not decreased during a 1-h exposure to endotoxin (10 micrograms/ml), but they were markedly decreased when tested several hours after the exposure period. A large part of the inhibition caused by a 1-h exposure to endotoxin was endothelium dependent. In contrast, endotoxin inhibited contractions equally in rings with or without endothelium exposed to endotoxin for a longer period (3 h). The inhibitory effect of endotoxin was not affected by indomethacin, but it was eliminated in aortic rings treated with the protein synthesis inhibitor cycloheximide. These studies indicate that endotoxin potently inhibits vascular contraction in vitro. The effect of endotoxin is apparently independent of prostanoids but may involve protein synthesis and effects on both vascular smooth muscle and endothelial cells.

Acetylcholine↗

Interleukin 1 and endotoxin activate soluble guanylate cyclase in vascular smooth muscle.

Our recent studies indicate that interleukin 1 (IL-1) and bacterial lipopolysaccharide inhibit agonist-induced contractions in rat aortic rings by an endothelium-independent mechanism. The present study investigated the role of guanosine 3',5'-cyclic monophosphate (cGMP) in the vasodilatory action of IL-1 and endotoxin. Rat aortic rings were denuded of endothelium and incubated for 3 h in physiological salt solution containing no additions, IL-1 (20 ng/ml), or endotoxin (10 micrograms/ml). Contractions induced by phenylephrine (3 x 10(-7) M) were decreased by 40 and 85% in endotoxin- and IL-1-treated rings, respectively. IL-1 increased cGMP content 2.5-fold in the absence of and 5.5-fold in the presence of 3-isobutyl-1-methylxanthine (IBMX). Endotoxin also increased cGMP content in the absence and presence of IBMX (5.5- and 25-fold, respectively). Both IL-1- and endotoxin-induced increases in cGMP occurred 3-4 h after initial exposure. The guanylate cyclase inhibitors, LY 83583 and methylene blue, each abolished IL-1- and endotoxin-induced inhibition of contraction and IL-1-induced production of cGMP. Furthermore, hemoglobin, which binds nitric oxide, completely blocked IL-1-induced increases in cGMP. We conclude that IL-1 and endotoxin inhibit vascular contraction in vitro by increasing aortic cGMP content. Studies with inhibitors suggest IL-1 and endotoxin may induce endothelium-independent production of nitric oxide or another free radical that activates soluble guanylate cyclase.

1-Methyl-3-isobutylxanthine↗

A micro-kininogenase assay for studies of kallikrein in renal micropuncture/microperfusion.

We report the development of a micro-kininogenase assay suitable in studying the dynamics of kallikrein at intranephron segmental level. The detection limit is 119 fg or 2.6 attomoles of kallikrein. Activation of microquantities of kallikrein is possible with the use of Triton X-100. Because of its extremely high sensitivity and reproducibility the assay is likely to also prove useful in physiological studies in which only very small amounts of kallikrein containing samples can be obtained.

Animals↗

Interleukin 1 inhibits contraction of vascular smooth muscle.

Interleukin 1 has been implicated as a mediator of both systemic and local responses to infection and injury. Since systemic and local vasodilatation are hallmarks of sepsis and infection, we studied the direct effect of IL-1 on vascular contractility. We report here that human recombinant IL-1-beta potently inhibits the response of rat thoracic aorta to vasoconstrictor agents. Exposure of isolated rat aortic rings to IL-1 (20 ng/ml) for 1 h did not affect phenylephrine-induced contractions during the exposure period. However, when rings were retested 150-200 min after initiation of IL-1 exposure, contractions were markedly decreased. The cytokine had a similar effect in rings from which the endothelium was removed. Contractions caused by potassium depolarization also were depressed, indicating the effect of IL-1 is not specific to the alpha-adrenoceptor agonist. The inhibitory effect of IL-1 was concentration-dependent (0.2 to 20 ng/ml), and eliminated by pretreatment with cycloheximide (20 micrograms/ml). Indomethacin (10(-5) M) did not prevent the inhibition caused by IL-1. These studies identify IL-1 as a potent inhibitor of vascular contraction, via an endothelium-independent mechanism. Studies with inhibitors suggest that the action of IL-1 is independent of prostanoid synthesis, and may involve synthesis of protein.

Animals↗

Interleukin-1 induces natriuresis in conscious rats: role of renal prostaglandins.

The onset of infection is associated with increases in renal blood flow and sodium excretion. Our studies provide evidence that the natriuresis is mediated by stimulation of renal prostaglandin production by the cytokine, interleukin-1. A dose-dependent natriuresis and diuresis was elicited in conscious rats with bolus intravenous injections of human recombinant interleukin-1-beta (hrIL-1). Injection of 1.5, 3 and 24 micrograms hrIL-1 increased sodium excretion by 2.4 +/- 0.9 microEq/min, 4.0 +/- 0.8 microEq/min and 5.4 +/- 0.3 microEq/min, respectively. The natriuresis was preceded by a corresponding increase in urinary PGE excretion (80%, 110% and 296%, respectively). The natriuresis elicited by 3 micrograms hrIL-1 was independent of changes in glomerular filtration rate or effective renal plasma flow. IL-1 induced an increase in rectal temperature, (0.6 +/- 0.2 degrees C) and a modest increase in mean arterial pressure (12 +/- 3 mm Hg) within 10 minutes of injection. However, during the period of maximal natriuresis (40 to 100 min), blood pressure and rectal temperature were not significantly different from control. Pretreatment with the cyclooxygenase inhibitor, ibuprofen, significantly attenuated the natriuretic response and indomethacin completely abolished the natriuresis. These results identify IL-1 as a factor which stimulates renal PGE synthesis, and increases sodium excretion, independent of changes in glomerular filtration rate. We propose that IL-1-induced natriuresis may be a component of the overall acute phase response which is actively mounted by the host during infection.

Animals↗

Micropuncture localization of kallikrein secretion in the rat nephron.

We have used free-flow micropuncture to study the tubular locus at which kallikrein enters the urine. Kallikrein was measured by a newly developed, very sensitive assay for kininogenase activity; active kallikrein was measured directly by this assay and total kallikrein after activation of inactive kallikrein. Kallikrein was readily detected in all of 17, late distal tubular fluid-samples. In contrast, kallikrein was too low to detect in 15 of 17 proximal or in 11 of 14 early distal tubular fluid samples. Calculations indicate that less than 10% of urinary kallikrein could have derived from filtration or from proximal secretion of kallikrein. We conclude that urinary kallikrein enters the urine via secretion in the distal tubule. Filtration or proximal secretion of kallikrein does not contribute significantly to urinary kallikrein excretion.

Animals↗

Angiotensin-stimulated drinking in marine fish.

Drinking rates in both marine and freshwater stenohaline fish were studied by measuring the ingestion of polyethylene glycol that had been added to the aquarium water. Two marine species, the long-horned sculpin and the flounder, and three freshwater species, the common goldfish, the mottled sculpin, and the common shiner, were used. Control drinking rates in freshwater fish averaged 0.03-0.1% body wt/h and in marine fish varied between 0.06 and 0.24% body wt/h. Intramuscular injections of angiotensin II (ANG II) stimulated drinking two- to threefold in the two marine species but had no effect on the drinking rate of the freshwater species. Hemorrhage (1-2% of body wt) also stimulated drinking in the two marine species (6- to 10-fold) but did not affect the drinking rate of two freshwater species. Thus exogenous ANG II and hemorrhage stimulate drinking in two marine stenohaline fish as they do in mammals. These responses were absent in the three freshwater fishes studied. However, injection of converting enzyme inhibitor (SQ 20881) or saralasin in order to block endogenous ANG II did not attenuate either basal or hemorrhage-stimulated drinking in the marine fish.

Angiotensin II↗

Atrial extracts increase glomerular filtration rate in vivo.

We measured the effect of a constant infusion of rat atrial extract on the glomerular filtration rate (GFR), renal plasma flow (RPF), and plasma renin concentration (PRC) of bioassay rats. The infusion rate of the atrial extract was 0.038 ml/min, which represented 1.25 mg of homogenized atrial tissue/min. To ensure that dead space was cleared, clearance measurements during the atrial extract infusion were not begun until urine flow had increased and 300 microliter of urine had been excreted. In the first series of rats, control GFR was 0.69 +/- 0.05, increased to 1.04 +/- 0.06 during infusion of atrial extract, and then decreased to 0.72 +/- 0.08 ml X min-1 X 100 g-1 during the recovery period. In a second series, RPF was also measured. GFR increased from 0.92 +/- 0.02 to 1.15 +/- 0.05 ml X min-1 X 100 g-1, while RPF was unchanged. In both series, the increase in GFR was statistically significant. Constant infusion of atrial extracts had no significant effect on PRC. These studies provide evidence that an atrial factor can cause a large increase in GFR, which may contribute to the natriuretic effect of atrial extracts.

Animals↗

Role of natriuretic factor in central nervous system (CNS)-induced natriuresis.

The presence of a natriuretic factor in the plasma of rats in which a 350 mM Na (high Na) artificial cerebrospinal fluid (CSF) was infused into the lateral ventricle was tested. Blood was obtained from control rats and rats which received an infusion of high Na CSF intraventricular (IVT) for 15 min. The plasma was incubated for 30 min at room temperature, acidified, placed in a boiling-water bath, and then centrifuged. The plasma supernate was assayed for natriuretic activity in pentobarbital anesthetized bioassay rats. Sodium excretion increased 6.5 +/- 1.1 mueq/kg X min in rats which received an infusion of a control saline solution, 13.3 +/- 3.2 mueq/kg X min in rats which received infusion of control plasma supernates, and 32.1 +/- 8.3 mueq/kg X min in those rats which received plasma supernates from rats infused with high Na CSF IVT. Blood pressure was unchanged in all groups. The increment in sodium excretion elicited by plasma supernate from the high Na IVT group was significantly greater than that elicited by either control saline solution or control plasma extracts. Therefore, it is concluded that a heat-stable and nonpressor natriuretic factor is present in the plasma of rats infused IVT with high Na CSF.

Animals↗

CNS-induced natriuresis and renal hemodynamics in conscious rats.

Sodium excretion was studied following experimental elevation of cerebrospinal fluid (CSF) sodium in heterozygous and homozygous (DI) Brattleboro rats given exogeneous antidiuretic hormone. Sodium excretion increased 4.5-fold in heterozygous and 3.5-fold in DI rats. The natriuresis in both groups was rapid in onset and occurred with a simultaneous kaliuresis. Blood pressure increased approximately 10 mmHg in the heterozygous but not in the DI rats. Accordingly, increased blood pressure may contribute to the natriuresis but is not the sole mechanism. Plasma renin concentration did not change in the DI rats during high Na CSF infusion, and chronic bilateral renal denervation did not abolish the natriuresis. Glomerular filtration rate increased during the high Na period in both the intact and renally denervated rats. These data provide evidence that a natriuretic mechanism exists that is not mediated by changes in antidiuretic hormone, renal nerve activity, mean arterial pressure, aldosterone, or angiotensin II, and thus may be due to another circulating substance or natriuretic hormone. This hormone may act totally or in part by increasing glomerular filtration rate.

Animals↗