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Characterization of the prostanoid receptors mediating constriction and relaxation of human isolated uterine artery.

1. This study was undertaken to characterize pharmacologically the prostanoid receptor subtypes mediating constriction and relaxation of human isolated uterine artery. 2. U-46619 was a potent constrictor agonist on human uterine artery (EC50 [95% CL] = 3.5 [1.8-6.7] nM). Prostaglandin E2 (PGE2), PGF2 alpha, PGD2 and PGI2 only weakly constricted the uterine artery, being at least 100 times less potent than U-46619. The PGE2 and PGI2 constrictor effects may be modified by the potent dilator effects of these compounds. A number of agonists which show selectivity for FP-, DP- and EP-receptors including ICI 81008, BW 245C, sulprostone, rioprostil and butaprost, failed to cause any constriction at concentrations up to 30 microM. 3. Constrictor responses induced by all agonists tested were reduced or abolished by the TP-receptor blocking drugs, GR 32191 and EP 092. pA2 estimates for both antagonists versus U-46619 were 8.50, values which are consistent with their affinities at TP-receptors. 4. In preparations pre-constricted with phenylephrine (1 microM) both PGI2 and PGE2 were potent relaxant agonists. The selective IP-receptor agonists, cicaprost and iloprost, also dilated human uterine artery and were approximately 10 fold more potent than PGI2. The EP2-receptor agonists, butaprost and rioprostil and the selective DP-agonist, BW 245C, were at least 100 fold weaker than PGI2 and PGE2 suggesting that neither DP- nor EP2 receptors were involved. 5. We conclude that TP-receptors mediate constriction, whereas IP- and possibly EP4-receptors mediate relaxation of human uterine artery.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

Coronary artery constriction by the isoprostane 8-epi prostaglandin F2 alpha.

1. This study was undertaken to compare the effects of 8-epi prostaglandin F2 alpha (8-epi PGF2 alpha) to those of prostaglandin F2 alpha (PGF2 alpha) and U46619, a thromboxane mimetic, on ovine, bovine and porcine coronary arteries. 2. 8-epi PGF2 alpha constricted porcine and bovine coronary arteries in a concentration-dependent manner with EC50 values of 689.0 +/- 229.3 and 1361.0 +/- 272.3 nM, respectively, but had no effect on ovine coronary arteries. 3. U46619 was a potent vasoconstrictor of porcine, ovine and bovine coronary arteries with EC50 values of 33.0 +/- 23.5, 373.3 +/- 69.7 and 254.1 +/- 134.3 nM, respectively. Emax values were significantly greater than those obtained with 8-epi PGF2 alpha. 4. PGF2 alpha constricted procine and bovine coronary arteries in a concentration-dependent manner with EC50 values of 1631.0 +/- 207.6 and 3644.0 +/- 344.8 nM, respectively, but had no effect on ovine coronary arteries. 5. Concentration-dependent constriction to U46619 in porcine coronary arteries was competitively inhibited by SQ29548 (10(-8) M to 10(-7) M) and BM13505 (10(-8) M to 10(-6) M) with no decrease in maximal responses. 6. Concentration-dependent constriction to 8-epi PGF2 alpha in porcine coronary arteries was inhibited in a concentration-dependent manner by SQ29548 (10(-8) M to 10(-7) M) and BM13505 (10(-8) M to 10(-6) M). However, the inhibition was associated with a decrease in maximal response. 7. Maximal responses of porcine coronary artery to U46619 (1 microM) and 8-epi PGF2 alpha (30 microM) were inhibited in a concentration-dependent manner by SQ29548 with IC50 values 99 +/- 12.36 nM and 46.5 +/- 18.67 nM, respectively. 8. Although ovine coronary arteries did not constrict to 8-epi PGF2 alpha pre-incubation of these vessels with 8-epi PGF2 alpha caused a rightward shift of the U46619 response curve in a concentration-dependent manner. 9. Pre-incubation of porcine coronary arteries with 8-epi PGF2 alpha competitively inhibited responses to U46619 with a Schild slope of 0.99 and a pA2 of 6.13. 10. We conclude that 8-epi PGF2 alpha is a vasoconstrictor within porcine and bovine coronary arteries, with a potency approximately twice that of PGF2 alpha but 5-20 times lower than U46619. The data suggest that 8-epi PGF2 alpha is acting as a partial agonist on the TP-receptor in the coronary vasculature.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

The effects of ureteral occlusion and renal venous constriction on kidney kallikrein-kinin and prostaglandin systems in dogs.

The intrarenal pressure was raised to 40--50 mmHg by ureteral occlusion or by renal venous constriction in anesthetized dogs loaded with 10% mannitol in saline and with a urine flow of approximately 1 ml/min/kidney. Both manoeuvres produced vasodilation and decreased urine creatinine excretion (GFR). Ureteral occlusion was associated with a marked antinatriuresis, which contrasted the variable decrements in sodium excretion during renal venous constriction. Ureteral occlusion did not affect urine excretion of kallikrein or kinins, whilst renal venous constriction decreased urinary kallikrein excretion, yet markedly increased urinary kinin excretion. Ureteral occlusion and renal venous constriction comparably increased urine prostaglandin (E-like) excretion by a presumably pressure dependent mechanism. Inhibition of prostaglandin synthesis by indomethacin abolished the vasodilation during renal venous constriction and this was accompanied by marked reductions of urinary creatinine (GFR) and kallikrein excretions, whilst the kinin excretion was enhanced as observed before the administration of indomethacin.

Animals↗

Renal hypertension following aortic constriction is abolished by angiotensin II converting enzyme inhibitor, but not by low-salt diet.

This study evaluates the role of different sodium intakes and the role of angiotensin II in the development and the maintenance of renovascular hypertension in rats with constriction of the aorta proximal to the renal arteries. The rats were studied 3 weeks after surgery when the hypertension was well established. Glomerular filtration rate was decreased and filtration fraction was increased in rats with proximal aortic constriction. Low and high salt intakes had no effect on glomerular filtration and filtration fraction. Treatment with angiotensin II converting enzyme inhibitor increased the glomerular filtration rate and reduced the filtration fraction in rats with proximal aortic constriction to the same levels as in control rats. Serum levels of angiotensin II were about the same in rats with proximal aortic constriction as in control rats. Conclusion. The renovascular hypertension in proximal aortic constriction is influenced by locally formed angiotension II but not by alterations in salt intake.

Angiotensin II↗

The responses of left ventricular end-systolic pressure-diameter relationship to acute pressure overload induced by aortic constriction.

The aim was to investigate the responses of the left ventricular (LV) end-systolic pressure-diameter relationship (ESPDR) to acute pressure overload. ESPDRs were made by 2-min ascending and descending aortic constrictions before and after administration of propranolol and atropine sulphate (both 0.2 mg kg-1 i.v.) in eight open-chest dogs with the pericardium preserved. LV anterior-posterior diameter was measured with ultrasonic crystals. In the ascending aortic constriction, end-diastolic pressure (EDP) and end-diastolic diameter (EDD) were unchanged and ESPDR shifted to the left. In the descending aortic constriction, EDP and EDD increased from 6.8 +/- 0.7 to 8.8 +/- 0.9 mmHg (P < 0.01) and from 32.7 +/- 1.4 to 34.5 +/- 1.6 mm (P < 0.05) and ESPDR shifted to the right. After administration of propranolol and atropine sulphate, cases having smaller changes in EDD during 2 min constriction (0.3 +/- 0.3 mm in all cases of ascending, 0.3 +/- 0.2 mm in four cases of descending aorta) showed a leftward shift of ESPDR. The remaining four cases of descending aortic constriction with larger changes in EDD (1.8 +/- 0.8 mm, P < 0.05) showed a rightward shift of ESPDR. An inverse curvilinear correlation was found between percentage changes in EDD and in the slopes. These results suggest that the responses in ESPDR to acute pressure overload were determined by not only changes in the contractile state but also the interplay between adaptation to acute pressure overload (the Anrep effect) and pre-load.

Animals↗

Fundamental azimuthal modes of a constricted annular resonator: theory and measurement.

The fundamental azimuthal modes of a constricted annular resonator are investigated. It is found that a given mode of an unconstricted resonator splits into two separate modes in the constricted resonator. One mode is of a higher frequency and has a pressure antinode centered in the constricted region. The other mode is of a lower frequency and has a pressure node centered in the constricted region. The resonance frequency of the higher-frequency modes increases linearly with a decrease in the constricted to unconstricted area ratio, whereas the lower frequency drops nonlinearly. Measurements and theory match to within 0.5% when end corrections and thermo-viscous losses are included in the system model. It was found that end correction impedances derived by mode-matching techniques were the only ones accurate enough to match the measurements and computation to within the error bounds.

Journal Article↗

Pressure-dependent myogenic constriction of cerebral arteries occurs independently of voltage-dependent activation.

Pressure-induced decreases in arterial diameter are accompanied by membrane depolarization and Ca(2+) entry via voltage-gated Ca(2+) channels. Recent evidence also suggests the involvement of Ca(2+) sensitization of the contractile proteins. Both PKC and Rho kinase are candidate second messengers for the mediation of the sensitization process. We investigated the signaling pathways of pressure-induced decreases in rat cerebral artery diameter in vessels that were depolarized with a 60 mM potassium-physiological salt solution (KPSS). Arteries were mounted on a pressure myograph, and pressure-induced constrictions were recorded. In some experiments simultaneous changes in intracellular Ca(2+) concentration ([Ca(2+)](i)) were recorded by using fura 2 fluorescence photometry. Pressure increases induced constriction with significant changes in [Ca(2+)](i) at high pressures (60-100 mmHg). The ratio of the change in diameter to change in [Ca(2+)](i) was greater for pressure-induced constriction compared with constriction produced by depolarization with 60 mM KPSS, suggesting that in addition to increases in [Ca(2+)](i), enhanced myofilament Ca(2+) sensitivity occurs during pressure-induced decreases in arterial diameter. Depolarizing the membrane with 60 mM KPSS increased [Ca(2+)](i) via a Ca(2+) influx pathway insensitive to PKC inhibition. Cerebral arteries were able to maintain their diameters in the continued presence of 60 mM KPSS. Pressure-induced constriction under these conditions was not associated with further increases in Ca(2+) but was abolished by selective inhibitors of PLC, PKC, and Rho kinase. We report for the first time that in rat cerebral arteries, pressure-induced decreases in arterial diameter are not only due to increases in voltage-gated Ca(2+) influx but also to accompanying increases in myofilament sensitivity to Ca(2+) mediated by PKC/Rho kinase activation.

Actin Cytoskeleton↗

Fibrinogen and fragment D-induced vascular constriction.

Elevated fibrinogen (Fg) concentration in blood is a high risk factor for many cardiovascular diseases. We hypothesize that Fg and its early degradation product, fragment D, may result in arterial constriction by binding endothelial intercellular adhesion molecule-1 (ICAM-1). The vasoconstriction induced by Fg and fragment D was studied in third- and second-order arterioles (3As and 2As, respectively) of Sprague-Dawley rat cremaster muscle in vivo, in aortic and femoral artery rings, and in the segments of first-order arterioles (1As) isolated from rat cremaster muscle. Intravascular infusion of Fg induced significant constriction of 3As and 2As (by 33.4 +/- 3.4 and 23.7 +/- 4.3%, respectively) in vivo and was abolished in the presence of the specific endothelin type A receptor blocker BQ-610. Fg and fragment D produced significant constriction of both aortic and femoral artery rings. Isolated 1As constricted in response to Fg (0.3 microM) and fragment D (3 microM) by 31 +/- 1.4 and 12 +/- 1.5%, respectively. Fluorescently labeled Fg and fragment D bound to the vascular wall, whereas albumin bound to a significantly lesser degree. The binding of Fg and fragment D to the arteriolar wall and constriction of aortic and femoral artery rings as well as isolated 1As were abolished in the presence of anti-Fg and anti-ICAM-1 antibodies. These results indicate that binding of Fg and fragment D to the vascular wall through ICAM-1 may contribute to the increased vascular tone and resistance that compromise circulation.

Animals↗

alphavbeta3- and alpha5beta1-integrin blockade inhibits myogenic constriction of skeletal muscle resistance arterioles.

In isolated resistance arterioles with spontaneous tone, ligation of alpha4beta1- and alpha5beta1-integrins induces vasoconstriction whereas ligation of alphavbeta3-integrin induces vasodilation. However, whether integrins directly participate in myogenic constriction to pressure elevation is not known. To answer this question, isolated rat skeletal muscle arterioles were exposed to step increments in pressure in the absence or presence of peptides and function-blocking antibodies known to bind alpha4beta1-, alpha5beta1-, or alphavbeta3-integrins while vessel diameter was continually monitored. Myogenic constriction, as assessed by the ability of isolated arterioles to reduce their diameter in response to two consecutive increments in intraluminal pressure (90-110 and 110-130 cmH2O), was not affected by treatment with any of the control peptides (RAD, LEV), a control antibody (anti-rat major histocompatibility complex), an alpha4beta1-integrin-binding peptide (LDV), or an anti-alpha4-integrin antibody. In contrast, alpha5beta1-integrin blockade with either anti-alpha5- or anti-beta1-integrin antibody caused a significant inhibition of myogenic constriction. Also, both RGD peptide and anti-beta3-integrin antibody inhibited myogenic constriction. These results indicate that alpha5beta1- and alphavbeta3-integrins are necessary for myogenic constriction and further suggest that integrins are part of the mechanosensory apparatus responsible for the ability of vascular smooth muscle cells to detect and/or respond to changes in intraluminal pressure.

Animals↗

Cardiac adaptations to aortic constriction in adult and aged rats.

Myocardial function in vitro and myosin heavy chains (MHCs) were studied in control and hypertrophied hearts of adult (9-10 mo) and aged (25-28 mo) female Fischer 344 rats 7 days after aortic constriction. Aortic constriction increased left ventricular mass to 110 and 112% of the control values of 484 +/- 12 and 617 +/- 18 (SE) mg in adult and aged rats, respectively. After aortic constriction, there was a significant age-related difference in the adaptation of peak pressure development in vitro, as peak left ventricular systolic pressure increased and decreased in hearts of adult and aged rats. The maximum rate of pressure development in control hearts of aged rats was 79% of the adult value of 11,264 +/- 1,527 mmHg/s; hypertrophy did not alter values of either age group. alpha-MHC accounted for 82 +/- 1 and 48 +/- 3% of the total left ventricular MHC for the adult and aged control groups, respectively, and values were not altered by aortic constriction. With hypertrophy 7 days after aortic constriction, there is an impairment in the adaptation of left ventricular function in hearts of aged compared with adult rats. This impairment is not explained by alterations in MHC isoform.

Aging↗

Nucleoside-induced arteriolar constriction: a mast cell-dependent response.

Adenosine (Ado) is a potent vasodilator that has occasionally been shown to cause vasoconstriction. Constrictor responses are generally attributed to A1-receptor stimulation or interactions with the renin-angiotensin system. We describe a previously unreported vasoconstrictor action of Ado and inosine (Ino) in hamster cheek pouch arterioles and examine the mechanism by which these nucleosides induce constriction. Arterioles were dissected from male Golden hamster cheek pouches, transferred to a 37 degrees C tissue chamber, and cannulated at both ends. Changes of luminal diameter in response to Ado were measured to generate cumulative concentration-response curves. The concentration-response curves were biphasic: 10(-6) M Ado elicited an intense, transient constriction, and higher concentrations induced dilator responses. Pretreatment with 8(p-sulfophenyl)theophylline, an Ado receptor antagonist, inhibited the dilator responses but did not alter the constriction. Inhibition of Ado uptake with S-(4-nitrobenzyl)-6-thio-inosine eliminated the constrictor response without altering dilator responses. Similar effects were found after pretreatment with an Ado deaminase inhibitor erythro-9-(2-hydroxy-3-nonyl)adenine hydrochloride. Finally, Ino, a metabolite of Ado, induced constrictions of similar magnitude to those seen with Ado, but at higher concentrations. The constrictor response was focal in nature, suggesting discrete sites of action of Ado. Methylene blue staining after Ado application revealed degranulated mast cells closely associated with the vessel wall, indicating a possible role for mast cell degranulation in the constrictor response. Supporting this idea were the observations that inhibition of degranulation by 10 microM cromolyn blocked the constrictor response, and compound 48/80 (a mast cell secretagogue) caused constriction similar to that elicited by Ado.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenine↗

Different alpha-adrenoceptor subtypes mediate constriction of arterioles and venules.

Recent studies indicate that rat vascular smooth muscle can express mRNAs for the alpha 1A-(alpha 1c-), alpha 1B-, alpha 1D-, alpha 2B-, and alpha 2D-adrenoceptors (ARs). The present study sought to determine which subtypes mediate constriction of resistance and capacitance vessels in rat cremaster skeletal muscle using videomicroscopy. Arterioles (125 microns internal diameter) were isolated, cannulated, and pressurized in a tissue bath. Vascularly "isolated" first-order venules (211 microns) were studied in situ in the cremaster muscle maintained in a tissue bath. Concentration-response curves for stimulation of alpha 1-ARs (norepinephrine plus 1 microM rauwolscine) and alpha 2-ARs (UK-14,304 plus 10 microM 5-methyl-urapidil) were obtained in the presence or absence of alpha-AR subtype-selective antagonists. Chloroethylclonidine (35 and 70 microM), which is most potent against alpha 1B-ARs, had no effect on alpha 1-constriction of arterioles but decreased venule alpha 1-sensitivity (50% effective concentration) by 13-fold (P < 0.01). The alpha 1A- and alpha 1D-selective AR antagonists WB-4101 (50 nM) and 5-MU (350 nM) had no effect on venule alpha 1-sensitivity but reduced arteriole alpha 1-AR sensitivity by 35-fold (P < 0.001) and 6-fold (P < 0.01), respectively. The alpha 1D-antagonist BMY-7378 (350 nM) decreased arteriole sensitivity by fourfold (P < 0.01) but had no effect on venule sensitivity. The alpha 2D-antagonist BRL-44408 (1 microM) caused a ninefold (P < 0.01) decrease in arteriole sensitivity to UK-14,304, whereas the alpha 2B-antagonist ARC-239 (1 microM) had no effect. BRL-44408 also caused a fourfold decrease (P < 0.01) in arteriole sensitivity to oxymetazoline, an agonist selective for alpha 2D- over alpha 2B-ARs. Venule sensitivity to UK-14,304 was reduced fivefold by BRL-44408 (P < 0.05), whereas ARC-239 had no effect. alpha 2 Subtype-selective antagonists inhibited UK-14,304 constriction of venules, with 50% inhibitory concentration values for BRL-44408 (alpha 2D-selective) of 6.04 +/- 0.07, and for the alpha 2B-selective antagonists ARC-239 of 4.79 +/- 0.20, spiroxatrine of 4.91 +/- 0.07, and SK&F-104856 of 5.06 +/- 0.10. These results suggest that constriction of rat skeletal muscle arterioles is mediated predominantly by an alpha 1D-like receptor and the alpha 2D-AR, whereas constriction of venules is dominated by the alpha 1B- and alpha 2D-adrenergic receptor subtypes.

Adrenergic alpha-Antagonists↗

Myogenic constriction of human coronary arterioles.

Myogenic constriction is an important mechanism of blood flow regulation; however, it has never been demonstrated in the human coronary circulation. We examined responses of human coronary resistance vessels in vitro to changes in intraluminal pressure and evaluated the role of protein kinase C (PKC). Microvessels (passive diameter 44-227 microns) were dissected from atrial appendages obtained during cardiac surgery and studied under conditions of zero flow. In response to stepped increases in pressure, there was a graded response such that at 100 mmHg, vessels constricted to 55 +/- 4% of their passive diameter. There was an inverse relationship between vessel diameter and myogenic responsiveness. Basal tone was attenuated by inhibition of voltage-dependent calcium channels (VDCC) with diltiazem and by inhibition of PKC with calphostin C. Activation of PKC with phorbol 12-myristate 13-acetate (PMA) enhanced basal tone. Active myogenic constriction was also impaired by calphostin C and augmented by PMA. Arterioles from patients with hypertension demonstrated enhanced myogenic constriction compared with vessels from normotensive patients (0.55 +/- 0.04 vs. 0.74 +/- 0.03; P < 0.01). These results demonstrate myogenic constriction in the human coronary microcirculation. Regulation of extracellular calcium by VDCC and intracellular calcium by PKC are important in mediating the magnitude of basal tone and myogenic responsiveness of these vessels.

Adolescent↗

Increased Ca2+ sensitivity as a key mechanism of PKC-induced constriction in pressurized cerebral arteries.

The effects of activating protein kinase C (PKC) with indolactam V (Indo-V) and 1,2-dioctanoyl-sn-glycerol (DOG) on smooth muscle intracellular Ca2+ concentrations ([Ca2+]i) and arterial diameter were determined using ratiometric Ca2+ imaging and video edge detection of pressurized rat posterior cerebral arteries. Elevation of intraluminal pressure from 10 to 60 mmHg resulted in an increase in [Ca2+]i from 74 +/- 5 to 219 +/- 8 nM and myogenic constriction. Application of Indo-V (0.01-3 microM) or DOG (0.1-30 microM) induced constriction and decreased [Ca2+]i to 140 +/- 11 and 127 +/- 12 nM, respectively, at the highest concentrations used. In the presence of Indo-V, the dihydropyridine Ca2+-channel-blocker nisoldipine produced nearly maximum dilation and decreased [Ca2+]i to 97 +/- 7 nM. In alpha-toxin-permeabilized arteries, the constrictor effects of Indo-V and DOG were not observed in the absence of Ca2+. Both PKC activators significantly increased the degree of constriction of permeabilized arteries at different [Ca2+]i. We conclude that 1) Indo-V- or DOG-induced constriction of pressurized arteries requires Ca2+ influx through voltage-dependent Ca2+ channels, and 2) PKC-induced constriction of pressurized rat cerebral arteries is associated with a decrease in [Ca2+]i, suggesting an increase in the Ca2+ sensitivity of the contractile process.

Animals↗

Vascular ENaC proteins are required for renal myogenic constriction.

The myogenic response is an essential component of renal blood flow autoregulation and is the inherent ability of vascular smooth muscle cells (VSMCs) to contract in response to increases in intraluminal pressure. Although mechanosensitive ion channels are thought to initiate VSMC stretch-induced contraction, their molecular identity is unknown. Recent reports suggest degenerin/epithelial Na(+) channels (DEG/ENaC) may form mechanotransducers in sensory neurons and VSMCs; however, the role of DEG/ENaC proteins in myogenic constriction of mouse renal arteries has not been established. To test the hypothesis that DEG/ENaC proteins are required for myogenic constriction in renal vessels, we first determined expression of ENaC transcripts and proteins in mouse renal VSMCs. Then, we determined pressure- and agonist-induced constriction and changes in vascular smooth muscle cytosolic Ca(2+) and Na(+) in isolated mouse renal interlobar arteries following DEG/ENaC inhibition with amiloride and benzamil. We detect alpha-, beta-, and gammaENaC transcript and protein expression in cultured mouse renal VSMC. In contrast, we detect only beta- and gamma- but not alphaENaC protein in freshly dispersed mrVMSC. Selective DEG/ENaC inhibition, with low doses of amiloride and benzamil, abolishes pressure-induced constriction and increases in cytosolic Ca(2+) and Na(+) without diminishing agonist-induced responses in isolated mouse interlobar arteries. Our findings indicate that DEG/ENaC proteins are required for myogenic constriction in mouse interlobar arteries and are consistent with our hypothesis that DEG/ENaC proteins may be components of mechanosensitive ion channel complexes required for myogenic vasoconstriction.

Amiloride↗

Segmental analysis of sodium reabsorption during renal vein constriction.

Clearance and micropuncture studies were performed in rats to identify the nephron site(s) of altered sodium reabsorption during partial renal vein constriction in the presence and absence of volume expansion. Renal vein constriction increased fractional deliver of sodium to the late proximal tubule from 52 +/- 3 to 61 +/- 4% in euvolemia and from 59 +/- 3 to 65 +/- 3% in volume expansion. In euvolemia, fractional delivery of sodium to the early distal tubule was 13 +/- 3% before and 24 +/- 6% after renal vein constriction. In volume expansion, fractional delivery of sodium to the early distal tubule decreased from 15 +/- 3 to 9 +/- 2% in response to renal vein constriction. We conclude that renal vein constriction decreases sodium reabsorption by the proximal tubule both in euvolemia and in volume expansion but that it increases sodium reabsorption by the superficial loop of Henle only in the presence of volume expansion.

Animals↗

Vasopressin constricts outer medullary descending vasa recta isolated from rat kidneys.

Arginine vasopressin (AVP) can selectively decrease blood flow in the renal medulla, but the sites of vasoconstriction are uncertain. We have examined the effects of vasopressin-receptor agonists and antagonists on the diameters of outer medullary descending vasa recta (OMDVR), isolated and perfused in vitro. AVP can constrict OMDVR, apparently via V1a-receptors. Ablumenal AVP (10(-10)-10(-6)M) or the selective V1a-receptor agonist [Phe2, Ile3, Orn8]-vasopressin (PO-VT, 10(-8) M) constricted OMDVR focally and (at higher AVP concentrations) transiently. The V1b agonist ideamino-Cys1,D-3-(pyridyl)Ala2,Arg8)vasopressin (DP-VP; 10(-8) M) and the V2 agonist [deamino-Cys1, D-Arg8]vasopressin (DDAVP; 10(-8) M) did not constrict OMDVR. The V1a antagonist [d(CH2)5(1), O-Me-Tyr2,Arg8]vasopressin (CTM-VP, 10(-10) 10(-8) M) inhibited vasoconstriction by AVP 10(-9 M), whereas the V2 antagonist [d(CH2)5(1), D-Ile2,Ile4 Arg8]vasopressin (II-VP) at low concentration (10(-10) M) did not. V2 stimulation seems to inhibit V1a constriction of OMDVR. DDAVP prevented constriction by PO-VT (10(-8) M) applied at the same time and dilated OMDVR preconstricted with PO-VT.

Animals↗

Influence of ventrolateral surface of medulla on reflex tracheal constriction.

To assess the role of structures located superficially near the ventrolateral surface of the medulla on the reflex constriction of tracheal smooth muscle that occurs when airway and pulmonary receptors are stimulated mechanically or chemically, experiments were conducted in alpha-chloralose-anesthetized, paralyzed, and artificially ventilated cats. Pressure changes within a bypassed segment of the trachea were used as an index of alterations smooth muscle tone. The effects of focal cooling of the intermediate areas or topically applied lidocaine on the ventral surface of the medulla on the response of the trachea to mechanical and chemical stimulation of airway receptors were examined. Atropine abolished tracheal constriction induced by mechanical stimulation of the carina or aerosolized histamine, showing that the responses were mediated over vagal pathways. Moderate cooling of the intermediate area (20 degrees C) or local application of lidocaine significantly decreased the tracheal constrictive response to mechanical activation of airway receptors. Furthermore, when the trachea was constricted by histamine, cooling of the intermediate area significantly diminished the increased tracheal tone, whereas rewarming restored tracheal tone to the previous level. These findings suggest that under the conditions of the experiments the ventral surface of the medulla plays an important role in constriction of the trachea by inputs from intrapulmonary receptors and in the modulation of parasympathetic outflow to airway smooth muscle.

Administration, Topical↗