Search PubMed⌕ Search

Biomedical subjects

L G Navar

Publications and source records attributed to L G Navar.

At least 109 records · Page 6Linked to original sources

Renal responses to intra-arterial administration of nitric oxide donor in dogs.

Inhibition of nitric oxide synthesis by intra-arterial administration of nitro-L-arginine (NLA) leads to attenuation of the slope of the relation between renal arterial pressure (RAP) and sodium excretion without an alteration in renal autoregulatory efficiency. In the present study, we examined whether only the presence of nitric oxide or, alternatively, changes in nitric oxide production during changes in RAP are required for pressure natriuresis to occur. Anesthetized sodium-replete dogs (n = 8) were treated with NLA (50 micrograms.kg-1 x min-1) to inhibit endogenous nitric oxide formation, and S-nitroso-n-acetylpenicillamine (SNAP) was infused intra-arterially at a constant rate (2 micrograms.kg-1 x min-1) to replenish intrarenal nitric oxide levels. Renal responses to reductions in RAP within the autoregulatory range were assessed before and during NLA infusion followed by SNAP+NLA infusion. As reported previously, NLA infusion alone increased renal vascular resistance and decreased renal blood flow, urine flow, sodium excretion, and fractional excretion of sodium, with no change in glomerular filtration rate. Autoregulatory efficiency remained intact, whereas the pressure-induced natriuretic responses were attenuated. During SNAP+NLA infusion, renal blood flow increased from 2.8 +/- 0.3 to 3.5 +/- 0.3 mL.min-1 x g-1 (P < .001), without significant changes in glomerular filtration rate (0.75 +/- 0.07 to 0.81 +/- 0.05 mL.min-1 x g-1); the autoregulatory efficiency of renal blood flow and glomerular filtration rate remained intact. SNAP increased urine flow (4.8 +/- 1.8 to 10.0 +/- 2.5 microL.min-1 x g-1), sodium excretion (0.63 +/- 0.26 to 1.70 +/- 0.37 mumol.min-1 x g-1), and fractional excretion of sodium (0.55 +/- 0.20% to 1.38 +/- 0.27%).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Contribution of angiotensin II to renal hemodynamic and excretory responses to nitric oxide synthesis inhibition in the rat.

This study was performed to evaluate the contribution of angiotensin II to the effects of nitric oxide (NO) synthesis inhibition on renal hemodynamics and excretory function in rats. Intravenous infusion of N omega-nitro-L-arginine (NLA; 20 micrograms/100 g.min) increased renal arterial pressure (RAP) from 128 +/- 2 to 143 +/- 3 mm Hg (P < 0.05; N = 6) and decreased RBF by 64 +/- 3% (P < 0.01) and GFR by 41 +/- 5% (P < 0.05). In response to reduction of RAP to control levels (127 +/- 2 mm Hg) by means of an adjustable clamp (CL) placed on the suprarenal aorta, RBF and GFR exhibited efficient autoregulation and were not altered. In rats (N = 6) pretreated with the AT1 angiotensin II receptor antagonist losartan (10 mg/kg iv), the infusion of NLA increased RAP (from 114 +/- 1 to 135 +/- 2 mm Hg; P < 0.05) and decreased RBF by 42 +/- 3% (P < 0.05). However, NLA did not decrease GFR in the losartan-treated rats. As in the control rats, the reduction of RAP to 113 +/- 1 mm Hg elicited autoregulatory responses that maintained RBF and GFR. In the untreated rats, at similar RAP (128 +/- 2 (control) versus 127 +/- 2 mm Hg (NLA+CL)). NO synthesis inhibition decreased urine flow and sodium excretion (P < 0.05, in both cases). However, during blockade of AT1 receptors, NLA infusion failed to decrease urine flow and sodium excretion, even when RAP was controlled (114 +/- 1 (control) versus 113 +/- 1 mm Hg (NLA+CL)).(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin II↗

Relevance of the tubuloglomerular feedback mechanism in pathophysiology.

The balance between a high filtration rate and high reabsorption rate in the kidney is critical in the maintenance of extracellular fluid volume. One of the mechanisms that maintain this balance is the tubuloglomerular feedback (TGF) mechanism, which operates at the level of the macula densa assessing the load and/or solute concentration coming out of the loop of Henle and controlling this load by adjusting the GFR. This review discusses the potential role of the TGF system with respect to volume homeostasis in various conditions where GFR is maintained, decreased, or increased. In most of the states discussed, the TGF system seems to act appropriately regarding volume control; however, trade-off effects occasionally occur. After acetazolamide administration, during extracellular fluid volume contraction or expansion or acute hyperkalemia, the TGF mechanism responds appropriately with regard to volume balance. After a large reduction of renal mass, the system adjusts to function at a higher level of GFR and distal delivery. In chloride-depletion metabolic alkalosis, glomerulonephritis, diabetes mellitus, and acute renal failure, the adaptation of the TGF system appears to be appropriate with regard to volume control; however, it may lead to trade-off effects, such as maintenance of metabolic alkalosis, glomerular hypertension and sclerosis, or depression of GFR, respectively. Because the TGF mechanism often contributes to compensatory adjustments to or development of disease, it can be appreciated that any in-depth evaluation of the mechanisms responsible for various pathophysiologic conditions should include an assessment of the potential role of the TGF mechanism.

Acute Kidney Injury↗

Role of endothelium-derived nitric oxide in the renal hemodynamic response to amino acid infusion.

The present study was performed in anesthetized rats to compare the renal hemodynamic responses to mixed amino acids (M-AA) with those to L-arginine (L-Arg) and to examine the effect of endothelium-derived nitric oxide (EDNO) synthesis blockade on the M-AA-induced rise in renal plasma flow (RPF) and glomerular filtration rate (GFR). Intravenous infusion of both M-AA (Ser, Gly, Ala, and Pro, 0.71 mmol.100 g-1.min-1) and L-Arg (0.71 mmol.100 g-1.min-1) increased RPF and GFR. Peak increases in RPF for M-AA and L-Arg were 39.7% (P less than 0.05) and 63.4% (P less than 0.01), whereas GFR increases were 33.6% (P less than 0.05) and 46.7% (P less than 0.01, respectively). Outer cortical blood flow (OCBF) was increased with both treatments. Sodium excretion and urine flow were increased more with L-Arg than M-AA (both P less than 0.01). Infusion of the nitric oxide synthesis inhibitor, nitro-L-arginine (N-L-Arg, 20 micrograms.100 g-1.min-1) increased mean arterial pressure but decreased RPF 48.4% (P less than 0.001), OCBF 39.5% (P less than 0.001), GFR 37.8% (P less than 0.01), urine flow 29.8% (P less than 0.01), and sodium excretion 40.9% (P less than 0.01). When M-AA was administered after N-L-Arg, significant increases in OCBF, RPF, and GFR were observed (P less than 0.01); there was also an enhancement of sodium excretion and urine flow (both P less than 0.05).(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acids↗

Suppression of blood flow autoregulation plateau during nitric oxide blockade in canine kidney.

We examined the autoregulation of renal blood flow (RBF) and renal function in anesthetized dogs during nitro-L-arginine (NLA)-induced blockade of endothelium-derived nitric oxide (EDNO). Intrarenal infusion of NLA (50 micrograms.kg-1.min-1) increased systemic arterial pressure (AP) and renal vascular resistance (RVR). RBF decreased by 27 +/- 3%, but glomerular filtration rate remained unchanged. There were reductions in urine flow (24 +/- 5%), urinary sodium excretion (42 +/- 10%), and fractional excretion of sodium (40 +/- 11%). The vasodilatory responses to intrarenal injections of ATP (1, 5, 10 microM) were reversed, whereas such responses to doses (10, 50, 100 ng) of acetylcholine (ACh) were attenuated during NLA infusion. Indomethacin (5 mg/kg iv) treatment further reduced but did not completely abolish ACh-induced vasodilation, suggesting that factor(s) other than EDNO and prostaglandins may also mediate ACh-induced vasodilation in the kidney. Although there was a suppression of the plateau of the AP-RBF relationship with a rightward shift in the slope of the linear portion of the curve during EDNO blockade, the normal autoregulatory pattern remained intact. Similar responses were seen in dogs treated with the angiotensin-converting enzyme inhibitor, MK-422. These data indicate that EDNO contributes to the normally low renal vascular tone by influencing an autoregulation-independent component of RVR. However, the basic capability to adjust RVR (autoregulation-responsive component) in response to changes in AP is essentially autonomous from EDNO activity.

Acetylcholine↗

Dietary Na and ACE inhibition effects on renal tissue angiotensin I and II and ACE activity in rats.

This study was designed to improve and validate methods for the accurate and consistent quantitation of angiotensin (ANG) I and II levels in rat kidney and to determine the effects on renal ANG I and II of changes in dietary sodium intake and ANG-converting enzyme (ACE) inhibition. Kidneys from pentobarbital-anesthetized rats were rapidly removed and homogenized in methanol before extraction and purification of ANG peptides by solid-phase extraction and high-performance liquid chromatography (HPLC). Recoveries of 125I-ANG I and II were greater than 80%. Reversed-phase HPLC of the partially purified methanol extract showed that greater than 75% of the ANG I- and greater than 82% of the ANG II-like immunoreactivity coeluted with ANG I and II, respectively. Dietary sodium deprivation (0.003 meq/g) and excess (1.34 meq/g) for 7 days significantly (P less than 0.01) increased and decreased renal ANG I (296 +/- 30 and 82.6 +/- 15.8 vs. 161 +/- 18 fmol/g) and ANG II (216 +/- 16 and 45.6 +/- 11.8 vs. 98 +/- 16 fmol/g) contents, respectively. Plasma ANG I and II levels showed similar changes. ACE activity was significantly upregulated by sodium deprivation in both kidney (44% increase) and plasma (30% increase). In rats fed normal chow, infusion of enalaprilat for 1 h abolished plasma ACE activity but decreased renal ACE activity by only 58%. ACE inhibition increased renal and plasma ANG I levels 2.8- and 12-fold, respectively, and decreased renal and plasma ANG II levels 75-78%.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin I↗

Effects of ATP on pre- and postglomerular juxtamedullary microvasculature.

Based on evidence that extracellular ATP can influence vascular smooth muscle function in other organ systems, experiments were conducted to characterize the responsiveness of rat juxtamedullary microvascular segments to ATP. Experiments were performed using the in vitro blood-perfused juxtamedullary nephron preparation combined with video microscopy. Pentobarbital-anesthetized rats were pretreated with enalaprilat (2 mg iv) for 30 min before the right kidney was isolated and prepared for study. Renal perfusion pressure was set at 110 mmHg and held constant. Under control conditions, afferent and efferent arteriolar diameters averaged 19.9 +/- 1.4 (n = 19) and 21.6 +/- 1.2 microns (n = 10), respectively. Superfusion with 1, 10, and 100 microM ATP solutions induced sustained dose-dependent afferent vasoconstriction of 8.3 +/- 1.4, 12.8 +/- 1.7, and 12.1 +/- 2.1%, respectively (P < 0.01). Afferent vasoconstrictor responses to ATP were also observed during adenosine receptor blockade. In contrast, efferent arterioles were unresponsive to ATP stimulation even at concentrations as high as 100 microM (P > 0.05). Arcuate and interlobular arterial diameters averaged 82.0 +/- 15.7 (n = 5) and 43.4 +/- 4.5 microns (n = 6), respectively, during control conditions and responded to ATP treatment with a transient vasoconstriction followed by a gradual return to control diameter. Interlobular arteries exhibited a sustained constriction only at the 100 microM concentration (P < 0.05). These data demonstrate that afferent arterioles are more responsive to ATP treatment than other renal microvascular segments and suggest the presence of ATP-sensitive P2x purinoceptors on pre- but not postglomerular juxtamedullary microvascular elements.

Adenosine↗

EDRF-angiotensin II interactions in rat juxtamedullary afferent and efferent arterioles.

The in vitro blood-perfused juxtamedullary nephron technique was utilized to determine the contribution of endothelium-derived relaxing factor (EDRF) to resting renal arteriolar caliber and to evaluate the interaction between EDRF and angiotensin II (ANG II) in renal microvascular control. Video microscopy was employed to visualize rat afferent and efferent arterioles and to measure their responses to blockade of nitric oxide (NO), which has been shown to account for much of the biological action of EDRF. The NO synthesis inhibitor, N omega-nitro-L-arginine (L-NNA), elicited vasoconstriction in a concentration-dependent manner, with 1,000 microM L-NNA significantly reducing both afferent (16 +/- 3%) and efferent (13 +/- 1%) diameters. This concentration of L-NNA also blocked the vasodilator response to 10 microM acetylcholine, while responsiveness to sodium nitroprusside was maintained. Vasoconstrictor responses to 1,000 microM L-NNA were attenuated in kidneys from rats pretreated with enalaprilat or losartan, reducing afferent diameter by 7 +/- 1 (n = 8) and 3 +/- 1% (n = 10) of control, respectively. Efferent arteriolar responses to L-NNA were similarly attenuated by losartan. The constrictor response to 10 nM ANG II was not exaggerated by L-NNA, suggesting that ANG II does not stimulate EDRF synthesis. These observations indicate that EDRF is continuously released in a quantity sufficient to affect both afferent and efferent arterioles of juxtamedullary nephrons in vitro. Furthermore, ANG II blockade attenuates the vasoconstriction elicited by L-NNA, suggesting that EDRF interacts with the renin-angiotensin system to control juxtamedullary afferent and efferent arteriolar resistance.

Acetylcholine↗

Angiotensin and angiotensin converting enzyme tissue levels in two-kidney, one clip hypertensive rats.

Renal tissue angiotensin I (Ang I) and II (Ang II) content and angiotensin converting enzyme activity were assessed in both kidneys during initial (7 days) and maintenance (25 days) phases of two-kidney, one clip hypertension in rats. At 7 and 25 days, systolic arterial pressure was 146 +/- 2 and 170 +/- 7 mm Hg, respectively. After 7 days, Ang I content of clipped kidneys was 64% and 70% higher (p < 0.001) than in nonclipped and sham-operated kidneys, respectively, when compared with levels in kidneys from sham-operated rats. In kidneys harvested 25 days after clipping one renal artery, Ang I and Ang II contents in clipped kidneys were increased 102% and 24% (p < 0.01), respectively. Ang II content was also 32% higher in nonclipped kidneys. Angiotensin converting enzyme activity in nonclipped kidneys was greater (p < 0.05) than that in either clipped (46% higher) or sham-operated kidneys (57% higher). Plasma Ang I and Ang II levels were elevated at 7 days but were not different at 25 days in clipped rats. These results demonstrate a dissociation between intrarenal and circulating levels of Ang I and Ang II and suggest that qualitatively different mechanisms may be responsible for the elevated intrarenal Ang II levels during the initial and maintenance phases of renal hypertension.

Angiotensin I↗

Effects of calcium antagonists on renal hemodynamics and glomerular function.

Cytosolic [Ca2+] can be increased by influx of the ion from the extracellular compartment, Ca2+ release from intracellular storage sites, and/or a reduced activity of active transport processes for Ca2+ extrusion or sequestration. Organic calcium antagonists block transmembrane calcium entry and, therefore, can be utilized to evaluate the importance of calcium influx in the regulation of renal hemodynamics. Recent studies indicate that calcium antagonists selectively vasodilate preglomerular arterioles, leading to increases in renal blood flow (RBF), glomerular filtration rate (GFR) and glomerular pressure. In contrast with angiotensin converting enzyme inhibitors and other vasodilator agents, calcium antagonists primarily influence the component of renal vascular resistance responsible for autoregulation, potently attenuating autoregulatory efficiency. Calcium antagonists also block the afferent arteriolar vasoconstriction elicited by angiotensin II, while not influencing the efferent arteriolar vasoconstriction evoked by this peptide. Tubuloglomerular feedback (TGF)-mediated vasoconstrictor responses are also abolished by calcium antagonists, indicating that the TGF effector mechanism may require transmembrane calcium influx into the smooth muscle cells of the afferent arterioles. These observations provide compelling evidence that calcium influx, through pathways which are influenced by organic calcium antagonists, is an integral component of the afferent arteriolar vasoconstriction elicited by a variety of stimuli, while efferent arteriolar vasoconstriction appears to depend on other calcium access pathways.

Angiotensin II↗

Synergistic intrarenal actions of angiotensin on tubular reabsorption and renal hemodynamics.

There is a growing awareness that the direct intrarenal actions of angiotensin II (ANG II) on both tubular and vascular structures contribute to sodium conservation. Even very low concentrations of ANG II (10(-1)) mol/L) stimulate proximal reabsorption rate. Recent studies indicate that this stimulatory action is due to an enhanced activity of the sodium/hydrogen exchanger of the luminal membrane. Elevated ANG II levels in the renal interstitium, effected either through increased delivery of ANG II via the circulation or as a consequence of conversion of angiotensin I (ANG I) generated locally, can also enhance proximal reabsorption rate. One consequence of enhanced proximal reabsorption rate is reduced distal volume delivery, which would be expected to elicit arteriolar vasodilation mediated by the tubuloglomerular feedback (TGF) mechanism. It has been observed, however, that peritubular capillary infusions of either ANG I or ANG II, at doses sufficiently low to be without obvious direct effects on glomerular dynamics, can increase the sensitivity of the TGF mechanism. This enhanced TGF sensitivity serves to minimize or prevent TGF mediated increases in glomerular filtration rate in the face of reduced distal delivery. With greater increases in interstitial ANG II concentration, reductions in glomerular pressure have been observed, demonstrating a powerful action on preglomerular arterioles that predominates over the well known effects on efferent arterioles. At these higher doses, the direct hemodynamic actions of ANG II, plus the effects on the glomerular filtration coefficient, will directly reduce filtered sodium load. Through these synergistic effects on both tubular reabsorptive and hemodynamic function, ANG II can elicit sustained decreases in distal nephron sodium delivery which contribute greatly to its efficacy as a regulator of sodium excretion.

Absorption↗

Dietary protein intake and the glomerular adaptations to partial nephrectomy in dogs.

After partial nephrectomy (Nx) in rats, a temporal pattern of progressively declining renal function often develops. This pattern has been attributed to the development of glomerular hyperfiltration, hypertension and hypertrophy in remnant nephrons. In rats, dietary protein restriction prevents these adaptive changes in remnant nephrons, thereby preserving renal structure and function. However, long-term studies of the temporal pattern of renal function have failed to identify a consistently progressive deterioration of renal function in partially Nx dogs, and a protective effect of protein restriction has not been apparent in this species. To address these issues in dogs, we evaluated the single nephron adaptations to partial Nx in dogs and the effect of dietary protein restriction on these adaptations. Results of our micropuncture studies in partially Nx dogs indicate that remnant nephrons of dogs exhibit glomerular hyperfiltration (single nephron glomerular filtration rate of 144 +/- 8 vs. 71 +/- 4 nL/min in controls, P less than 0.05), hypertension (glomerular capillary pressure of 75.1 +/- 1.6 vs. 63.2 +/- 1.9 mmHg in controls) and hypertrophy (glomerular volume of 3.54 +/- 0.24 x 10(6) vs. 2.04 +/- 0.05 x 10(6) microns3 in controls, P less than 0.05).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Juxtamedullary afferent arteriolar responses to P1 and P2 purinergic stimulation.

We assessed the responsiveness of rat juxtamedullary afferent arterioles to purinergic stimulation using the in vitro blood-perfused juxtamedullary nephron technique combined with videomicroscopy to allow direct measurement of arteriolar inside diameter. To minimize the contribution of endogenously formed angiotensin II, all rats were pretreated with enalaprilat (2 mg i.v.) for 30 minutes before the right kidney was isolated and prepared for study. Renal perfusion pressure was set at 110 mm Hg and held constant. Afferent arteriolar diameter averaged 20.9 +/- 0.8 microns (n = 41) under control conditions. Exposure to 1.0 microM 2-chloroadenosine induced a significant (11.1 +/- 3.2%) reduction in vessel diameter, whereas a 100 microM concentration induced an afferent vasodilation (7.6 +/- 1.5%; p less than 0.05). These data are consistent with the preferential stimulation of high affinity constrictor adenosine receptors (A1) at lower concentrations and activation of lower affinity vasodilator adenosine receptors (A2) at higher concentrations. In contrast, ATP elicited a significant afferent vasoconstriction of approximately 9.2%, 12.9%, and 10.0% at concentrations in the range of 1-100 microM (p less than 0.05). Treatment with ADP, at concentrations up to 100 microM, failed to alter vessel caliber significantly. Furthermore, the nonhydrolyzable ATP analogue alpha,beta-methylene ATP produced a rapid and potent vasoconstriction, which mimicked the response to ATP. These data reveal the presence of both adenosine-sensitive P1 and ATP-sensitive P2 purinergic receptors on rat juxtamedullary afferent arterioles and demonstrate that ATP can induce afferent arteriolar vasoconstriction directly without first requiring hydrolysis to adenosine.

2-Chloroadenosine↗

Influence of adenosine receptor blockade on renal function and renal autoregulation.

Experiments were conducted in anesthetized dogs to evaluate the effects of adenosine receptor blockade on renal function and on autoregulation of total RBF and outer cortical blood flow. After control measurements, the adenosine receptor antagonist, 1,3-dipropyl-8-p-sulfophenylxanthine (PSPX) was infused intrarenally for 45 min at 2 or 6 microM/min. Responses to PSPX were compared with those obtained during infusions of either aminophylline or theophylline. PSPX infusion led to substantial increases in urine flow and sodium excretion (four- to fivefold). RBF increased significantly; however, outer cortical blood flow and GFR were not significantly altered. PRA increased twofold during PSPX infusion. The vasoconstrictor responses to bolus injections of 2-chloroadenosine (100 mumol) were attenuated by 58 and 86% during the low and high doses of PSPX and to a lesser extent with aminophylline/theophylline infusions. At renal arterial pressures above the inflection point, the slope of the average pressure-flow relationship during PSPX infusion was close to zero and was not significantly different from control. Similarly, autoregulatory capability was not altered during infusions of theophylline or aminophylline. These data provide further evidence that endogenous adenosine contributes substantially to the control of renin release but only modestly to the control of RBF and GFR and to renal autoregulatory capability. The natriuretic responses during adenosine blockade, which occurred in the face of elevated renin levels, support the hypothesis that endogenous adenosine enhances tubular sodium reabsorption rate.

2-Chloroadenosine↗

Absence of glomerular injury or nephron loss in a normotensive rat remnant kidney model.

Severe reduction in renal mass (greater than 50%) in the rat uniformly results in progressive glomerular injury and loss of remnant nephrons postulated to be due to increases in glomerular function (hyperfiltration) and/or size (hypertrophy). Reduction in renal mass in the rat also leads to the development of systemic and/or glomerular hypertension. To examine the independent contributions of systemic hypertension and glomerular hyperfiltration and/or hypertrophy to progressive glomerular injury, a normotensive rat remnant kidney model was developed in the Wistar-Kyoto (WKY) strain. Of the 34 WKY rats that underwent 5/6 nephrectomy, 25 remained normotensive and without evidence of morphologic glomerular injury and/or nephron loss for up to 14 to 16 weeks, despite glomerular hyperfiltration and hypertrophy comparable to that previously observed in other rat strains. Micropuncture studies at approximately six weeks after reduction in renal mass demonstrated markedly increased SNGFR in remnant nephrons of normotensive rats as compared to controls (66 +/- 7 vs. 25 +/- 4 nl/min, P less than 0.01), but glomerular capillary pressures (PGC) estimated from stop flow pressures were only slightly increased (52.7 +/- 1 vs. 47.3 +/- 1 mm Hg, P less than 0.01). These data indicate that compensatory glomerular hyperfiltration and hypertrophy after 5/6 nephrectomy may not lead to progressive glomerular injury provided hypertension does not develop. These data further suggest that in the absence of systemic hypertension, increases in PGC required for adaptive hyperfiltration, may not be sufficient to initiate progressive glomerular injury and nephron loss.

Animals↗