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Biomedical subjects

V Kon

Publications and source records attributed to V Kon.

At least 55 records · Page 3Linked to original sources

Endothelin and cyclosporine nephrotoxicity.

Although some humoral and neural factors have been implicated in the persistent vasoconstriction characterizing many forms of acute renal failure, the mechanisms for this abnormal vascular function have remained largely unresolved. Several factors previously postulated to have a role in acute renal failure have been shown to enhance endothelin (Et) production or gene expression. We studied the potential pathophysiologic role for Et in several models of acute renal failure, including postischemia, endotoxin, and cyclosporine (Cy) nephrotoxicity. We have found that, in vivo, Cy (and also endotoxin) elevates circulating Et. We further showed that antagonizing Et's action with Et antibody ameliorates renal vasoconstriction following renal ischemia, Cy, and endotoxin administration. Additionally, our studies showed that even after circulating levels of Et decrease (following Cy), there is upregulation in Et receptors in the kidneys. Overall, endothelin appears to feature prominently in the pathophysiologic processes occurring during several forms of acute renal failure.

Acute Kidney Injury↗

Down-regulation of endothelin-1 receptors by protein kinase C in streptozotocin diabetic rats.

The vasoconstrictor response is defective in diabetes mellitus (DM). Activation of protein kinase C (PKC) is also known to prevail in diabetes mellitus, and it is thought to be secondary to abnormal diacylglycerol metabolism. To ascertain whether this PKC activation in diabetes underlies the vasomotor defect by regulating biological receptors, we studied the characteristics of the receptor for endothelin (ET), "the vasoconstrictor of injury." For this purpose, diabetes was induced in rats by intravenous streptozotocin. One to 2 weeks after streptozotocin treatment (average glucose at time of experiments: 518 mg/dl), glomeruli were isolated and assessed for ET receptor and PKC activity. ET receptor characteristics were also assessed following infusion of a specific PKC inhibitor, 1-(5-isoquinolinesulfonyl)piperazine (CI). For comparison, nondiabetic controls with and without PKC inhibitor were studied. No differences in high-affinity ET-1 receptor (ER-1) characteristics were found among the diabetic and normal rats. In contrast, receptor density for the lower-affinity receptor (ER-2) was significantly depressed in DM without changes in the equilibrium dissociation constant. Infusion of CI 20 min before glomerular harvesting did not affect the glomerular PKC activity in controls (particulate: 28.0 +/- 4.0% of total activity to 22.0 +/- 3.9%, n = 3). In contrast, in diabetes mellitus rats infused with CI, PKC activity decreased (particulate: from 44.7 +/- 2.9% of total activity to 18.5 +/- 3.2%, n = 3, p less than 0.05). This CI-induced suppression of PKC in DM was accompanied by complete reversal in down-regulation of ER-2 receptors. Thus, DM is characterized by down-regulation in low-affinity ET-1 receptors. Furthermore, this receptor down-regulation can be reversed by abolishing abnormally enhanced PKC activity. These results indicate that abnormal activation of PKC may underlie the profoundly vasodilative status and defective vasoconstrictor response characterizing DM.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine↗

Renal sympathetic nerves modulate glomerular ANP receptors and filtration.

We examined characteristics of atrial natriuretic peptide (ANP) receptors in glomeruli isolated from subacutely (3-5 days) denervated (DNX) and contralateral nondenervated (non-DNX) kidneys of normal rats (NL) and rats subjected to water deprivation for 48 h (WD). Total ANP receptor density in DNX kidneys of WD rats, measured by competitive inhibition binding between 125I-labeled ANP and ANP, was twofold higher than non-DNX kidneys (726 +/- 96 vs. 384 +/- 32 fmol/mg protein, P less than 0.05). Equilibrium association constant (Ka) was not significantly different (2.33 +/- 0.43 vs. 3.34 +/- 0.78 x 10(9) M-1). In NL rats, there was no difference in ANP receptor density between DNX and non-DNX kidneys (244 +/- 20 and 264 +/- 16 fmol/mg protein). Production of guanosine 3',5'-cyclic monophosphate (cGMP), a putative second messenger of ANP, in response to ANP (10(-7) M) in glomeruli isolated from DNX was significantly larger than non-DNX kidneys of WD rats. To determine whether these changes in ANP receptors have functional consequences in vivo, glomerular capillary ultrafiltration coefficient (Kf) was assessed by micropuncture technique in WD Munich-Wistar rats. In DNX kidneys, ANP infusion (4 micrograms.kg-1.h-1) significantly increased whole kidney glomerular filtration rate (GFR) and single-nephron (SN) GFR (0.64 +/- 0.06 to 0.89 +/- 0.17 ml/min and 25 +/- 2 to 33 +/- 2 nl/min, respectively; n = 7) and Kf (1.26 +/- 0.29 to 2.18 +/- 0.41 nl.min-1.mmHg-1).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Cyclosporine promotes glomerular endothelin binding in vivo.

It has previously been shown that administration of cyclosporine causes a prompt (within 15 min after infusion) increase in circulating level of endothelin 1 and a pattern of glomerular hypoperfusion and hypofiltration which can be ameliorated with antiendothelin antibody. We now show that 60 min after cyclosporine, serum endothelin 1 level falls to less than 2.55 +/- 0.31 pg/mL (N = 6), a value comparable to that found in normal animals (less than 2 pg/mL). The study presented here also examines whether sustained cyclosporine-induced glomerular dysfunction is associated with altered endothelin receptor characteristics. Saturation and competitive inhibition binding studies in isolated glomerular membranes showed two binding sites. Of these, the density of the low-affinity site was affected by cyclosporine treatment (851 +/- 117 versus 425 +/- 61 fmol/mg of protein; P less than 0.05; N = 6) without a change in equilibrium dissociation constant, KD. The high-affinity site was not affected. The receptor characteristics of another vasoconstrictor, angiotensin II, were not affected by cyclosporine. In addition, there was no difference in endothelin binding sites in hepatic tissue between cyclosporine and control rats. These results raise the intriguing possibility that cyclosporine-induced glomerular dysfunction involves upregulation of endothelin binding sites and that altered endothelin receptors appear specific to the kidney.

Animals↗

Role of endothelin in cyclosporine-induced glomerular dysfunction.

Since recent studies indicate that cyclosporine (CsA) disrupts endothelial integrity and that injured endothelial cells release excess endothelin, we examined endothelin's role in acute cyclosporine nephrotoxicity. Following CsA (20 mg/kg i.v.), rabbit anti-porcine endothelin (aE) serum was continuously infused into a first order branch of the main renal artery in Munich-Wistar rats whereupon the hemodynamics of glomeruli not infused with aE as well as those infused with aE within the same kidney were simultaneously assessed by micropuncture techniques. In CsA treated kidneys, in glomeruli not infused with aE, single nephron GFR (SNGFR) and glomerular plasma flow rate (QA) fell profoundly (on average by 42 and 48%, respectively) below the baseline values in association with lower glomerular capillary pressure and elevated afferent arteriolar resistance. By contrast, in glomeruli infused with aE within the same CsA treated kidneys, this vasoconstrictive pattern was markedly attenuated: SNGFR was, on average, only 19% lower than baseline and values for QA as well as other parameters determining glomerular filtration were at or near the levels observed before administration of CsA. In another group of rats (N = 6) an identical dose of CsA was given to measure the circulating level of endothelin. In these CsA treated rats, endothelin level (measured by radioimmunoassay) was elevated at 41.7 +/- 14.7 pg/ml, contrasting the value of less than 2 pg/ml uniformly observed in identically instrumented normal rats not given CsA (N = 5). Thus, cyclosporine is a potential inducer for endothelin release and endothelin appears to have a pivotal role in pathophysiology of cyclosporine-induced acute renal vasoconstriction and glomerular dysfunction.

Animals↗

A regulatory role for large vessels in organ circulation. Endothelial cells of the main renal artery modulate intrarenal hemodynamics in the rat.

After arterial denudation by external rubbing of the left main renal artery, we assessed renal plasma flow rate (RPF) and glomerular filtration rate (GFR) in left and right kidneys of Munich-Wistar rats before and after intravenous infusion of acetylcholine (ACH), atrial natriuretic peptide (ANP), or nitroprusside (NP). In the right kidney RPF and/or GFR increased in response to both endothelium-derived relaxing factor (EDRF)-dependent (i.e., ACH) and -independent vasodilators (i.e., ANP and NP); on average, RPF rose by 22 +/- 4% (P less than 0.005), 19 +/- 10% (P less than 0.005), and 37 +/- 12% (P greater than 0.05), respectively. By contrast, in the left kidney RPF failed to increase after ACH (falling by 23 +/- 10%, P less than 0.001) and rose only in response to ANP and NP. To further evaluate the main renal artery's contribution to renal vasodilation, ACH and another EDRF-dependent agent, histamine, were infused through a micropipette into either the proximal or distal portions of the endothelium-intact renal artery. Proximal infusion of ACH led to increases in RPF and GFR, on average by 8 +/- 2% (P less than 0.025) and 10 +/- 3% (P less than 0.01), while bypassing the arterial endothelium by distal infusion failed to increase RPF and GFR, which fell by 24 +/- 6% (P less than 0.025) and 22 +/- 6% (P less than 0.005), respectively. Similarly, proximal infusion of histamine increased RPF by 12 +/- 3% (P less than 0.05), while distal infusion was virtually without effects on plasma flow. Micropuncture study during intravenous ACH infusion revealed significantly higher afferent and efferent arteriolar resistances and lower ultrafiltration coefficients in denuded versus nondenuded kidneys. These data indicate that the main renal artery is a major regulator of renal blood flow and vascular resistances. Similar to other endothelium-derived substances, EDRF may be elaborated mainly by large vessels and may act on the downstream microcirculatory systems, which determine organ blood flow and transcapillary fluid transfer.

Acetylcholine↗

Endotoxin stimulates endothelin-release in vivo and in vitro as determined by radioimmunoassay.

A marked increase in immunoreactive endothelin was observed in rat serum collected within 10-15 min after infusion of endotoxin. Endothelin level was 117 +/- 11.5 pg/ml (mean +/- S.E., N = 4) in rats exposed to endotoxin as compared with undetectable levels (less than 2 pg/ml, N = 4) in controls. We have also observed a significant stimulation of endothelin-release by endotoxin from cultured bovine transformed thoractic aortic endothelial cells at concentrations of endotoxin ranging between 0.1 and 10.0 micrograms/ml. Serum was indispensable for the stimulating effect of endotoxin, although serum itself did not show any effect at the concentration used (1%). These results suggest that endothelin plays an important role in mediation of pathophysiological responses caused by endotoxin. The levels of endothelin were measured by radioimmunoassay with high sensitivity.

Animals↗

Role of endogenous atrial natriuretic peptide in congestive heart failure.

Effects of purified rabbit anti-rat 25-amino acid atrial natriuretic peptide (ANP) immunoglobulin G (IgG) on renal sodium excretion and glomerular filtration rate were studied in a rat model of congestive heart failure (CHF) having high circulating ANP levels. Bolus injection of anti-ANP into anesthetized rats with surgically induced myocardial infarction (MI) significantly and markedly depressed both absolute and fractional urinary excretion of sodium without affecting mean arterial pressure or glomerular filtration rate. By contrast, anti-ANP failed to affect these renal functions in normal or acutely water-deprived rats. Nonimmune IgG did not affect renal function in MI rats. These results indicate that high circulating ANP plays an important role in sodium homeostasis of congestive heart failure: by promoting sodium excretion, ANP opposes the tendency of sodium retention characteristic of CHF.

Animals↗

Impaired preservation of GFR during hypotension in preexistent renal hypoperfusion.

Autoregulation of renal blood flow and filtration rate was studied using micropuncture technique in Munich-Wistar rats with acute water deprivation (AWD) or congestive heart failure (CHF). In the first set of experiments, reduction of renal perfusion pressure to approximately to 70% of its initial value resulted in uncoupling of glomerular plasma flow rate and single-nephron glomerular filtration rate (GFR) (i.e., disproportionally profound fall in the latter) in AWD and CHF rats, whereas both indices changed little in normal control (NC) rats. The profound decrease in single-nephron GFR in AWD and CHF rats was primarily due to a reduction in glomerular capillary pressure (change from base-line value was -29 +/- 2% in AWD, -27 +/- 1% in CHF, and -8 +/- 2% in NC). This profound fall in glomerular capillary pressure in AWD and CHF rats was associated with a reduction in efferent arteriolar resistance, which contrastingly increased in NC. To investigate the mechanism underlying this unique efferent arteriolar responsiveness in AWD and CHF, the response of renal arterioles to exogenous angiotensin II was examined in separate groups of AWD, CHF, and NC. There was a markedly attenuated efferent arteriolar vasoconstrictive response in AWD and CHF (the change of efferent arteriolar resistance in both groups was some 5% of that in NC). Thus impairment in the ability to preserve GFR in these two conditions is attributed, at least in part, to altered efferent arteriolar response in the face of reduced renal perfusion pressure.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Glomerular actions of endothelin in vivo.

In Munich-Wistar rats, a micropipette was inserted into a first-order branch of the left main renal artery and continuously infused with human/porcine endothelin (0.4 ng/min). Micropuncture measurements revealed substantial differences within the cortical microcirculation of the same left kidney: SNGFR was some 35% lower in glomeruli exposed to endothelin compared with non-endothelin-perfused glomeruli (P less than 0.005). Similarly, glomerular plasma flow rate was some 38% lower in the endothelin-exposed glomeruli (P less than 0.001). The hypoperfusion and hypofiltration in the endothelin-exposed glomeruli reflected an increase in resistances in the afferent and efferent arterioles. There was no difference in the value of the glomerular capillary ultrafiltration coefficient between the two populations of glomeruli. We also studied kidneys that underwent 25 min of renal artery clamping 48 h before study. Antiendothelin antibody infused into one of the branches of the main renal artery ameliorated the vasoconstriction characteristic of postischemic nephrons: within the cortical microcirculation, the SNGFR in glomeruli exposed to antiendothelin antibody was 27.0 +/- 3.1 nl/min as compared with 17.4 +/- 1.7 measured in glomeruli not perfused with the antibody (P less than 0.001). Similarly, glomerular plasma flow rate was higher in the glomeruli exposed to antiendothelin antibody (128.7 +/- 14.4 nl/min vs. 66.6 +/- 5.6, P less than 0.005). Resistances in both the afferent and efferent arterioles were substantially lower in the antibody-exposed glomeruli. It is, therefore, suggested that endothelin, presumably released from damaged endothelium, may play an important intermediary role in the hypoperfusion and hypofiltration observed in postischemic kidneys.

Animals↗

Neural control of renal circulation.

It has long been appreciated that renal nerves influence renal hemodynamics. Direct or reflex activation of renal nerves causes vasoconstriction, with the degree of vasoconstriction being proportional to the magnitude of stimulation. Conversely, removal of enhanced nerve activity ameliorates renal vasoconstriction. The effector loci within the renal microcirculation have been identified and include afferent and efferent arterioles as well as the glomerular capillary bed itself. The hemodynamic changes have been corroborated by morphological studies which reveal that the lumen of arterioles constrict and the glomerular capillary tuft contracts following an increase in neural activity. Moreover, mesangial cells, which are the putative vectors of regulation of hemodynamics within the glomerular capillary bed, constrict in response to the neurotransmitter, norepinephrine.

Animals↗

Morphologic demonstration of adrenergic influences on the glomerulus.

Previous micropuncture studies found that increasing the adrenergic nerve activity to the kidneys elevates the pre- and postglomerular arteriolar resistances and decreases the glomerular capillary ultrafiltration coefficient (product of the filtration surface area and the hydraulic conductivity to water). To define the morphologic expression of this adrenergic effect on the glomerular capillaries the authors compared the microscopic vascular casts of entire glomeruli from right and left kidneys that were simultaneously perfusion-fixed during selective stimulation of only the left renal nerves. The maximum cross-sectional diameter of ten randomly chosen glomeruli from each stimulated and contralateral kidneys of eight rats averaged 123.7 +/- 4.1 mu in stimulated kidneys compared with a maximum diameter of 136.3 +/- 6.4 in the contralateral kidneys (P less than 0.001). The average perpendicular diameter of 100.4 +/- 1.5 mu in the stimulated kidneys was also significantly smaller than the average diameter of 110.7 +/- 1.9 mu in the contralateral kidneys (P less than 0.005). To examine if morphologic changes analogous to those found in whole glomeruli can be demonstrated at the single cell level, the authors assessed the size of mesangial cells in vitro before, during, and after exposure to the adrenergic neurotransmitter, norepinephrine. First passage mesangial cells approximately 4 weeks after explantation were studied by phase-contrast microscopy and recorded on time-lapse video recorder. The planar surface area of individual mesangial cells was measured by electronic planimeter from photographs of the video images. In response to norepinephrine (1 microM), the surface area decreased significantly on average, from 3.58 +/- 0.28 X 10(-6) sq mm to 3.38 +/- 0.27 (P less than 0.005). Washout of norepinephrine and replacement with hormone-free media in other cells led an increase in the surface area (from 2.47 +/- 0.43 X 10(-6) sq mm to 2.61 +/- 0.40, P less than 0.005). No changes were observed in cells initially bathed in hormone-free media. Thus, the morphologic equivalent of the adrenergic nerve-induced reduction in the ultrafiltration coefficient is a contraction of the glomerular corpuscle. By regulating the configuration of mesangial cells that anchor the glomerular capillary network to the vascular pole, the adrenergic nerve may concurrently determine the number of capillary channels available for filtration as well as the glomerular corpuscular volume.

Adrenergic Fibers↗

Role for angiotensin II in an overt functional proteinuria.

A partial renal vein constriction (RVC) was induced acutely in Munich-Wistar rats. RVC caused a marked reduction in glomerular plasma flow rate, and rises in glomerular transcapillary hydraulic pressure difference and efferent arteriolar resistance. These changes were associated with a marked increase in urinary protein excretion, on average from a baseline level of 8 to approximately 120 mg/24 hrs per kidney. Infusion of saralasin, an angiotensin II (AII) antagonist, largely normalized these indices, including urinary protein excretion (to approximately 35 mg/24 hrs per kidney), despite continued RVC. In separate rats, fractional clearances of neutral [125I]dextrans (molecular radii = 18-60 A) (CDEX/CIN) were measured. RVC caused a significant increase in CDEX/CIN for large dextrans (greater than or equal to 44A), but not small dextrans (less than or equal to 42A). Saralasin infusion led to a partial return toward baseline values of CDEX/CIN for the large dextrans. On the basis of the heteroporous membrane theory for glomerular filtration, the glomerular sieving defect during RVC was attributed to an increase in the relative fluid flux through a group of large non-selective pores. A marked alteration in glomerular microcirculatory pattern induced by enhanced action of endogenous AII in turn seemed to account largely, although not entirely, for the impairment of glomerular size-selectivity during RVC.

Angiotensin II↗