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N Narang

Publications and source records attributed to N Narang.

At least 19 recordsLinked to original sources

Reduced alpha 1-adrenergic receptor-mediated inositide hydrolysis in cardiac atria of senescent rats.

We investigated the effect of age on epinephrine stimulation of phosphoinositide hydrolysis in atrial slices prepared from F-344 female rats. Three age groups were chosen for study: young adults (aged 6 months), mature adults (aged 15 months), and senescent animals (aged 25 months). Tissue slices were labeled with [3H]myoinositol and epinephrine-stimulated hydrolysis measured in the presence of LiCl. Epinephrine caused a dose-dependent increase in phosphoinositide hydrolysis in each age group. This increase was blocked by prazosin, suggesting that alpha 1-adrenergic receptors are involved. In animals aged 6 months, epinephrine caused a maximal increase in hydrolysis of 2.8-fold over basal. The maximal response was reduced at 15 months (2.52-fold increase, p less than 0.05) and at 25 months (2.02-fold increase, p less than 0.01). The potency for epinephrine stimulation of phosphoinositide hydrolysis was unchanged with age. The data indicate that alpha 1-mediated phosphoinositide hydrolysis in atria is reduced with age.

Aging

Decrease in N-ethylmaleimide-sensitive ATPase activity in collecting duct by metabolic alkalosis.

Changes in systemic acid-base balance are known to influence acidification in the collecting duct. The H+ secretion in the collecting duct has been shown to be an electrogenic process and it has been suggested that an H-ATPase sensitive to inhibition by N-ethylmaleimide (NEM) is responsible for H+ secretion. This study was designed to determine the effect of metabolic alkalosis on NEM-sensitive ATPase activity in the microdissected segments of the distal nephron. Metabolic alkalosis was produced by giving NaHCO3 to normal rats for 7 days. The plasma total CO2 concentration in the experimental group was 31.5 +/- 1.8 mM compared with 23.4 +/- 1.0 mM in the control group. NEM-sensitive ATPase activity was significantly lower in the cortical collecting duct and in the outer and inner medullary collecting ducts of alkali-loaded rats than those of control rats. There was no significant difference in the enzyme activity between the two groups of animals in the other nephron segments examined. Our results suggest that NEM-sensitive H-APTase activity in all three segments of the collecting duct is modulated by the acid-base status of the animal.

Adenosine Triphosphatases

Adenosine and its analogs stimulate phosphoinositide hydrolysis in the kidney.

Renal blood flow, glomerular filtration rate and sodium excretion are known to be affected by adenosine. The present studies were undertaken to investigate the actions of adenosine and its analogs (both agonists and antagonists) on phosphoinositide (PI) hydrolysis in the outer medullary slices. Adenosine was found to cause a dose-dependent stimulation of PI hydrolysis (ED50, 2.8 microM) in renal slices from outer medulla. The adenosine analogs 5'-(N-cyclopropyl)-carboxamidoadenosine (NCCA) and 5'-N-ethylcarboxamidoadenosine (NECA) also stimulated PI hydrolysis in renal medulla. Stimulation of PI hydrolysis was blocked by the adenosine antagonists: aminophylline, 1,3-dipropyl-7-methylxanthine (DMX) and 8-(p-sulfophenyl)-theophylline (8-SPT). Caffeine not only antagonized adenosine-stimulated PI hydrolysis but also increased PI hydrolysis independently. These results indicate that adenosine stimulates PI hydrolysis in renal medulla through a receptor-mediated mechanism.

Adenosine

Effects of aldosterone on NEM-sensitive ATPase in rabbit nephron segments.

Aldosterone (aldo) treatment of animals stimulates the rate of H+ secretion in the collecting duct, a process which may involve an H+-ATPase sensitive to inhibition by NEM (N-ethylmaleimide). Therefore, we determined NEM-sensitive ATPase activity in distal nephron segments from three groups of adrenalectomized (adx) rabbits maintained on different doses of aldo (in an osmotic minipump) for seven days. Group 1 was given 1.5 micrograms aldo/100 g body wt/day, whereas groups 2 and 3 were maintained on 5 micrograms and 50 micrograms of aldo/100 g body wt/day, respectively. Aldo concentrations in the plasma of groups 1, 2 and 3 were 10.4 +/- 0.8, 70 +/- 7 and 408 +/- 133 ng/dl, respectively. There was a significant increase in NEM-sensitive ATPase activity in connecting tubule (CNT) and cortical, outer and inner medullary duct segments (CCD, OMCD and IMCD) but not in cortical thick ascending limb (CTAL) and distal convoluted tubule (DCT) in group 2 as compared to group 1. A further increase in plasma concentration of aldo (group 3) did not produce any more increase in NEM-sensitive ATPase activity in the CNT, CCD, OMCD and IMCD, but did increase the enzyme activity in the DCT. These results are consistent with the hypothesis that aldo increases H+ secretion in the connecting tubule and collecting duct segments by increasing the activity of NEM-sensitive H+-ATPase activity in these segments.

Adrenalectomy

Ouabain-insensitive K-adenosine triphosphatase in distal nephron segments of the rabbit.

An electrogenic H-ATpase sensitive to inhibition by N-ethyl-maleimide has been reported to be present in renal distal tubules. In contrast to another H-ATPase (gastric H-K-ATPase), the renal enzyme is not stimulated by K+ and is not inhibited by vanadate. However, our preliminary observations indicated that a K-stimulated ATPase (K-ATPase) sensitive to inhibition by vanadate is present in renal medullary collecting duct (MCD). To localize and further characterize this renal tubular K-ATPase, we measured K-ATPase activity in eight specific segments of the rabbit nephron. K-ATPase activity was the difference in ATPase activity in the presence and absence of KCl but in the presence of ouabain (to inhibit Na-K-ATPase). ATPase activity was determined by a fluorometric microassay in which ATP hydrolysis is coupled to the oxidation of NADH. There was a significant K-ATPase activity (expressed as pmol.min-1.mm-1) in the connecting tubule (CNT, 17.0 +/- 3.3), cortical collecting duct (CCD, 6.6 +/- 0.7), and MCD (8.8 +/- 1.7), but not in the proximal segments and the thick ascending limbs. The renal tubular K-ATPase was not only inhibited by vanadate but also by omeprazole and SCH 28080 (relatively specific inhibitors of gastric H-K-ATPase). It is concluded that K-ATPase present in the CNT, CCD, and MCD has some properties in common with gastric H-K-ATPase. However, the physiological role of K-ATPase in the distal nephron segments remains to be elucidated.

Adenosine Triphosphatases

Effects of potassium bicarbonate on distal nephron Na-K-ATPase in adrenalectomized rabbits.

Na-K-ATPase activity in the connecting tubule (CNT) and cortical collecting duct (CCD) has been shown to be influenced by KCl both in the presence and in the absence of aldosterone. To investigate if the aldosterone-independent effect of K+ on Na-K-ATPase can be produced by other K+ salts, we studied the effects of dietary KHCO3 on Na-K-ATPase and ouabain-insensitive Mg-ATPase activities in four nephron segments of adrenalectomized (ADX) rabbits. The segments examined were: the distal convoluted tubule (DCT), CNT, CCD and medullary collecting duct (MCD). All diets were similar in composition except their KHCO3 contents which were 100, 300, 500 and 700 meq/kg in groups 1 to 4 respectively. Increasing KHCO3 in the diet increased K+ excretion (7 X) and urine pH (6.6 to 8.3). Na-K-ATPase activity in the CCD increased greater than 200% as dietary KHCO3 was increased to 700 meq/kg. There was a linear relation between Na-K-ATPase activity in this segment and steady state plasma K+ as well as K+ excretion in the urine. However, Na-K-ATPase activity in the CCD was lower in KHCO3-fed ADX rabbits than the KCl-fed animals studied previously under similar conditions. There were no significant differences in Na-K-ATPase activities in DCT, CNT and MCD among the four groups given different KHCO3-diets. It is concluded that dietary intake of KHCO3 can also influence Na-K-ATPase activity in the CCD independent of aldosterone.

Adrenalectomy

Effects of hydrochlorothiazide on Na-K-ATPase activity along the rat nephron.

Na-K-ATPase activity was determined in seven nephron segments of five-week-old, spontaneously hypertensive rats (SHR) with or without continuous hydrochlorothiazide (HCTZ) treatment for seven days. For comparison, the effects of HCTZ treatment on Na-K-ATPase activity in the nephron segments of age-matched normotensive Wistar-Kyoto rats (WKY) were also determined. Na-K-ATPase activity in proximal convoluted tubule (PCT), medullary thick ascending limb (MTAL), cortical thick ascending limb (CTAL), distal convoluted tubule (DCT) and cortical collecting duct (CCD) was significantly lower in HCTZ-treated SHR compared to control (untreated) SHR. However, there was no significant difference in Na-K-ATPase activity in proximal straight tubule (PST) and medullary collecting duct (MCD) between HCTZ-treated and control SHR. HCTZ treatment also produced a significant decrease in blood pressure (BP) and creatinine clearance (CCr) in SHR. On the other hand, HCTZ treatment did not produce a significant change in Na-K-ATPase activity in PCT, PST, MTAL, CTAL and MCD, in BP or in CCr in WKY. However, HCTZ treatment produced a decrease in the enzyme activity in the DCT and an increase in the enzyme activity in the CCD in WKY. The decrease in Na-K-ATPase activity in almost all nephron segments from SHR may be due to a significant decrease in CCr produced by HCTZ. On the other hand, a decrease in Na-K-ATPase activity in the DCT with an increase in the enzyme activity in the CCD from WKY suggest that renal compensation to the natriuretic effect of HCTZ occurs by an increase in Na+ reabsorption in the CCD.

Animals

Stimulation of an N-ethylmaleimide-sensitive ATPase in the collecting duct segments of the rat nephron by metabolic acidosis.

A plasma membrane ATPase sensitive to inhibition by N-ethylmaleimide (NEM) and insensitive to inhibition by oligomycin and ouabain has been shown to be involved in acidification of urine in the turtle bladder. The activity of this NEM-sensitive ATPase was determined in four types of distal nephron segments of normal rats and in rats treated with ammonium chloride. The enzyme activity was determined by a fluorometric micromethod in which ATP hydrolysis was coupled to NADH oxidation. Significant activities (10-35 pmol ADP X min-1 X mm-1) of NEM-sensitive ATPase were present in the distal convoluted tubule (DCT) and in the cortical and outer and inner medullary collecting duct segments of normal rats. In metabolic acidosis produced by ammonium chloride treatment (plasma CO2 content = 15.3 +/- 0.8 mequiv./L), the NEM-sensitive ATPase activity was increased significantly (60-100%) in the collecting duct segments without showing a significant change in the enzyme activity in the DCT. Our data are consistent with the hypothesis that a plasma membrane H+-ATPase (inhibited by NEM but not by oligomycin or ouabain) is involved in H+ secretion in the mammalian collecting duct.

Acidosis

Glucocorticoid effects on Na-K-ATPase in rabbit nephron segments.

We determined the effect of dexamethasone on Na-K-ATPase activity in six nephron segments of the adrenalectomized rabbit. Treatment consisted of 1.4 micrograms dexamethasone X 100 g body wt-1 X day-1 for 7 days prior to the study of the nephron segments. Enzyme activity was determined in individual nephron segments by a microfluorometric assay. There was 40-50% less activity of Na-K-ATPase in the S1 portion of the proximal convoluted tubule (PCT, S1), the medullary thick ascending limb (MTAL), and the distal convoluted tubule (DCT) of adrenalectomized rabbits compared with that of control (sham-operated) animals. There was no significant difference in the enzyme activity in proximal straight tubules (PST, S2 and S3) and cortical thick ascending limb (CTAL) of adrenalectomized and control animals. Dexamethasone treatment produced a dexamethasone concentration of 5 +/- 0.8 nM in the plasma and increased Na-K-ATPase activity in PCT (S1), MTAL, and DCT of the adrenalectomized animals to the control levels without significantly affecting the enzyme activity in the PST (S2, S3) or CTAL. The concentration of dexamethasone in the plasma was such that the hormone should bind mainly to dexamethasone receptors (Kd = 5 nM) and very little to aldosterone receptors (Kd greater than 60 nM). Thus, glucocorticoids probably stimulate Na-K-ATPase in PCT, MTAL, and DCT through glucocorticoid (Type II) receptors and not through mineralocorticoid (Type I) receptors.

Adenosine Triphosphatases

Na-K-ATPase in nephron segments of rats developing spontaneous hypertension.

Na-K-ATPase activity was determined in seven specific nephron segments of 5- and 12-wk-old spontaneously hypertensive rats (SHR) and age-matched Wistar-Kyoto (WKY) controls. The enzyme activity in proximal convoluted tubule (PCT) and proximal straight tubule (PST) was significantly higher in 5-wk-old SHR than in WKY. However, Na-K-ATPase activity in medullary thick ascending limb (MTAL), cortical thick ascending limb (CTAL), and distal convoluted tubule (DCT) was significantly lower in 5-wk-old SHR than in WKY. There were no significant differences in the enzyme activity in PCT, PST, MTAL, CTAL, and DCT in 12-wk-old SHR and WKY. Furthermore, there were no significant differences in Na-K-ATPase activity in collecting duct segments of 5- or 12-wk-old SHR and age-matched WKY. The possible role of the abnormal pattern of Na-K-ATPase activity in PCT, PST, MTAL, CTAL, and DCT in 5-wk-old SHR in generation of hypertension in this strain remains to be determined.

Age Factors

Renal adaptation to potassium in the adrenalectomized rabbit. Role of distal tubular sodium-potassium adenosine triphosphatase.

Potassium secretion and sodium-potassium adenosine triphosphatase (Na-K-ATPase) activity in the distal nephron segments are known to be influenced by the dietary intake of K+. This has been attributed to a change in the plasma aldosterone level, which also influences K+ secretion and Na-K-ATPase activity in the distal nephron. To investigate whether or not dietary K+ can modulate Na-K-ATPase activity in the distal nephron independently of aldosterone, we determined Na-K-ATPase activity in four distinct nephron segments of adrenalectomized (adx) rabbits given four specific diets for 1 wk before experimentation. Na-K-ATPase activity was determined by a fluorometric microassay in which ATP hydrolysis is coupled to NADH oxidation. The nephron segments examined were the distal convoluted tubule (DCT), the connecting tubule (CNT), the cortical collecting duct (CCD), and the outer medullary collecting duct (MCD). All diets were similar in composition except for their K+ contents, which were 100, 300, 500, and 700 meq/kg in groups 1-4, respectively. In these adx animals, Na-K-ATPase activity increased greater than 200% in the CCD as the dietary intake of K+ increased. There was a linear relationship between K+ excretion and the enzyme activity in this segment. There was a 50% increase in Na-K-ATPase activity in the CNT as the dietary intake of K+ increased in adx animals. However, there were no significant differences in Na-K-ATPase activities in the DCT and MCD among the four treatment groups. It is concluded that dietary K+ intake can influence Na-K-ATPase activity in the CCD and CNT independently of plasma aldosterone levels.

Adaptation, Physiological

Sodium-potassium-adenosine triphosphatase in nephron segments of spontaneously hypertensive rats.

Sodium pump activity of blood vessels has been reported to decrease in several animal models of hypertension. We studied sodium-potassium-adenosine triphosphatase (Na-K-ATPase) activity of renal tubular segments in 12-week-old spontaneously hypertensive rats and in age-matched Wistar-Kyoto normotensive rats. The enzyme activity of the individual nephron segments was determined by a microfluorometric assay in which ATP hydrolysis is coupled with NADH oxidation. In the spontaneously hypertensive rats, systolic blood pressure was significantly higher (181 +/- 3 mm Hg) than in the Wistar-Kyoto rats (134 +/- 2 mm Hg). However, there was no difference in mean Na-K-ATPase activity in any of the nephron segments from the spontaneously hypertensive compared with the Wistar-Kyoto group. It is concluded that Na-K-ATPase activity does not change in any of the nephron segments with spontaneous hypertension.

Adenosine Triphosphatases

Histochemical and electrophoretical studies in normal and infected Biomphalaria glabrata. II. Acid and alkaline phosphatase.

Various organs of normal and infected Biomphalaria glabrata were analysed, electrophoretically and histochemically, with respect to the acid phosphatase and alkaline phosphatase activity. In general, digestive gland, ovotestis and stomach show an increase in acid phosphatase activity in infected snails, whereas kidney and albumen gland show less activity. Alkaline phosphatase does not show any significant different in activity between normal and infected snails. Electrophoretically digestive glands of snails, twenty days after infection, show an extra faint band, whereas seven days after infection, the snails do not show any such extra band. Histochemically also after twenty days, infected snails show more activity in the sporocyst region, but those infected for only seven days, do not show any increase in acid phosphatase activity.

Acid Phosphatase

[Genetics of anapheline populations. III. Electrophoretic analysis of Anopheles aquasalis (Diptera: Culicidae) (author's transl)].

Genetic variation at 26 loci in a natural population of Anopheles aquasalis has been studied by zymogram technique. Average proportion of polymorphic loci is 23% (criterion I) and 34% (criterion II). On the average 8.1% of the genome is in heterozygous condition in each individual. The degree of genetic variability varies from locus to locus. Some enzymes such as AO, alpha-GPDH, 3 loci of HK, 3 loci of LAP, 3 loci of MDH, GOT, 3 loci of ODH and one locus of EST (EST-4), are monomorphic. Of the rest, proportion of heterozygosity varies from the minimum of 0.041 at Xdh-2 to a maximum of 0.493 at Est-2. Similarly, except for the loci Est-2 and Est-3, proportion of heterozygote individuals is extremely low. A. aquasalis has a higher genetic identity with A. evansae (I = 0.625) than with A. argyritarsis (I = 0.543). There seems to be direct correlation between the genetic variability of a species and its capacity to explore diverse ecological nitches.

Animals