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Biomedical subjects

W R Adam

Publications and source records attributed to W R Adam.

At least 19 recordsLinked to original sources

Factors affecting 39K NMR detectability in rat tissue.

In this study we have found that NMR detectability of 39K in rat thigh muscle may be substantially higher (up to 100% of total tissue potassium) than values previously reported of around 40%. The signal was found to consist of two superimposed components, one broad and one narrow, of approximately equal area. Investigations involving improvements in spectral parameters such as signal-to-noise ratio and baseline roll, together with computer simulations of spectra, show that the quality of the spectra has a major effect on the amount of signal detected, which is largely due to the loss of detectability of the broad signal component. In particular, lower-field spectrometers using conventional probes and detection methods generally have poorer signal-to-noise and worse baseline roll artifacts, which make detection of a broad component of the muscle signal difficult.

Animals

Effects of opiates on sodium excretion in the isolated perfused rat kidney.

1. A rat isolated perfused kidney preparation was utilized to define clearly a renal site of action. The variables measured were perfusate pressure and flow, glomerular filtration rate, urine volume, sodium excretion and potassium excretion. 2. Dextromethorphan (3 nmol/L) and dextrorphan (10 nmol/L) reduced sodium excretion in kidneys from rats on either control or high K+ diet, in the absence of any other measured renal effects. Dextromethorphan (10 nmol/L) produced a decrease in glomerular filtration rate as well as a decrease in sodium excretion. Naloxone (1 mumol/L) inhibited the effect of dextromethorphan on sodium excretion but had no effect when administered alone. 3. The levorotatory opiates levorphanol and levomethorphan, the kappa agonist ketocyclazocine and a range of other opiates had no effect on sodium excretion. 4. The results suggest a renal action specific for dextrorotatory opiates. This renal action is consistent with earlier binding studies suggesting preferential recognition of dextrorotatory opiates.

Animals

Angiotensin II receptors in the kidney. Localization and physiological significance.

Angiotensin II (Ang II) exerts a variety of actions through specific receptor binding in the kidney. These include modulation of renal hemodynamics, glomerular filtration rate (GFR), and tubular reabsorption. Quantitative in vitro autoradiography was used to localize the Ang II receptors and angiotensin converting enzyme (ACE) in rat, rabbit, and human kidney. We incubated 20 microns cryostat sections of kidney with either 125I-[Sar1]Ang II or 125I-[Sar1,Ile8]Ang II for Ang II binding or with 125I-351A for ACE localization. The resulting autoradiographs were analyzed by computerized densitometry. A high density of Ang II binding was found over glomeruli and vasa recta bundles in all species examined. The interbundle area of the outer medulla was associated with low to moderate binding of Ang II. Moderate binding of Ang II was observed over proximal convoluted tubules in the outer cortex of rat kidney. ACE was predominantly distributed in proximal convoluted tubules in all species. These studies reveal multiple sites where Ang II could modulate renal function by acting on the renal vasculature, glomeruli, vasa recta bundles, and proximal tubular sites.

Angiotensin II

Comparison of the effects of parathyroid hormone (PTH) and recombinant PTH-related protein on bicarbonate excretion by the isolated perfused rat kidney.

The isolated perfused rat kidney was used to study the effects of amino-terminal fragments of human parathyroid hormone, hPTH(1-34), bovine parathyroid hormone, bPTH(1-84) and of PTH-related proteins, PTHrP(1-34), PTHrP(1-84), PTHrP(1-108) and PTHrP(1-141) on urinary bicarbonate excretion. PTHrP(1-34) (7 nmol/l), bPTH(1-84) (5.5 nmol/l) and hPTH(1-34) (7 nmol/l) had similar effects in increasing bicarbonate excretion with respect to the control. At lower concentrations (0.7 nmol/l) all PTHrP components, but not hPTH(1-34) or bPTH(1-84) increased bicarbonate excretion significantly. Infusions of PTHrP(1-108) and PTHrP(1-141) at 0.7 nmol/l, while associated with a rise in urinary bicarbonate concentration and excretion during the early stages of perfusion, produced a sharp decline in bicarbonate concentration and excretion in the latter part of perfusion. The different peptides produced no significant differences in glomerular filtration rate, fractional excretion of sodium or urine volume. The absence of substantial differences between the effects of hPTH(1-34) and PTHrP(1-34) are as noted in previous studies. The differences between PTHrP(1-108)/PTHrP(1-141) and PTHrP(1-34) demonstrated here are consistent with (1) the clinical manifestations of acidosis in hyperparathyroidism and alkalosis in humoral hypercalcaemia of malignancy, and (2) an independent action of a component of PTHrP beyond amino acids 1-34.

Animals

Intracellular compartmentalization of potassium.

The evidence that there is intracellular compartmentalization of potassium is indirect but diverse. Intracellular electrode measurement of potassium activity, 42K radioisotope studies, and more recently 39K nuclear magnetic resonance (NMR) all support such compartmentalization. The use of rubidium to apparently shift potassium between sites with different NMR characteristics (visibility) is strong evidence for such compartmentalization. The evidence that intracellular compartmentalization of potassium is of (patho) physiological significance is also indirect. Postulated roles for regulation of intracellular K+ activity, perhaps by control of compartmentalization, include enzyme activity, protein synthesis, and cell growth. There is also evidence that compartmentalization of potassium may contribute to the maintenance of a stable intracellular environment following potassium loading. The apparent magnetic field dependence of the visibility of K+ by 39K NMR offers the opportunity to explore further the phenomenon of compartmentalization.

Animals

Potassium tolerance.

The maintenance of potassium homeostasis with an increased potassium intake or decreased renal function is dependent in part on the renal adaptation observed in 'potassium tolerance'. However other factors, including control of ingestion, and increased distal delivery of fluid, also play a role.

Animals

Effect of magnesium depletion and potassium depletion and chlorothiazide on intracellular pH in the rat, studied by 31P NMR.

1. Both dietary magnesium depletion and potassium depletion (confirmed by tissue analysis) were induced in rats which were then compared with rats treated with chlorothiazide (250 mg/kg diet) and rats on a control synthetic diet. 2. Brain and muscle intracellular pH was measured by using a surface coil and [31P]-NMR to measure the chemical shift of inorganic phosphate. pH was also measured in isolated perfused hearts from control and magnesium-deficient rats. Intracellular magnesium status was assessed by measuring the chemical shift of beta-ATP in brain. 3. There was no evidence for magnesium deficiency in the chlorothiazide-treated rats on tissue analysis or on chemical shift of beta-ATP in brain. Both magnesium and potassium deficiency, but not chlorothiazide treatment, were associated with an extracellular alkalosis. 4. Magnesium deficiency led to an intracellular alkalosis in brain, muscle and heart. Chlorothiazide treatment led to an alkalosis in brain. Potassium deficiency was associated with a normal intracellular pH in brain and muscle. 5. Magnesium depletion and chlorothiazide treatment produce intracellular alkalosis by unknown mechanism(s).

Acid-Base Equilibrium

Actions of synthetic parathyroid hormone-related protein(1-34) on the isolated rat kidney.

The isolated perfused rat kidney was used to study the effects of parathyroid hormone-related protein (PTHrP) on renal cyclic AMP (cAMP) and electrolyte excretion. A perfusate of PTHrP(1-34) increased cAMP excretion from 0.14 +/- 0.09 (S.E.M.) nmol/l glomerular filtrate (GF) in controls to 24.67 +/- 5.14 (P less than 0.01) and decreased calcium excretion from 0.278 +/- 0.033 to 0.162 +/- 0.011 mumol/l GF (P less than 0.01). Human PTH(1-34) (0.7 nmol/l) caused no significant change in calcium excretion, whilst the rise in cAMP excretion was similar to that with PTHrP. PTHrP(1-34) (7 nmol/l) further increased cAMP production to 366.7 +/- 100.8 nmol/l GF (P less than 0.01), higher than the rise with hPTH(1-34) (7 nmol/l) which was 76.7 +/- 46.8 (P less than 0.05). With the higher concentrations of both peptides (7 nmol/l), calcium excretion was further reduced to 0.090 +/- 0.009 mumol/l GF (P less than 0.01), whilst phosphate excretion increased with both PTHrP and PTH. PTHrP (7 nmol/l) caused a fall in urinary pH compared with controls (P less than 0.05). At low and high concentrations of both hormones, urinary pH was lower with PTHrP than hPTH (P less than 0.01). Thus PTHrP, like PTH, acts on the kidney to increase cAMP and phosphate excretion and reduce calcium excretion, but PTHrP may be more effective. Disparate effects on urinary pH could be reflected in the clinical features of humoral hypercalcaemia of malignancy.

Animals

Problems in the assessment of magnesium depletion in the rat by in vivo 31P NMR.

Prior in vitro studies, utilizing 31P nuclear magnetic resonance (31P NMR) to measure the chemical shift (sigma) of beta-ATP and lengthening of the phosphocreatine spin-spin (T2) relaxation time, suggested an assessment of their efficacy in measuring magnesium depletion in vivo. Dietary magnesium depletion (Mg2+ decreases) produced markedly lower magnesium in plasma (0.44 vs 1.13 mmol/liter) and bone (130 vs 190 mumol/g) but much smaller changes in muscle (41 vs 45 mumol/g, P less than 0.01), heart (42.5 vs 44.6 mumol/g), and brain (30 vs 32 mumol/g). NMR experiments in anesthetized rats in a Bruker 7-T vertical bore magnet showed that in Mg2+ decreases rats there was a significant change in brain beta-ATP shift (16.15 vs 16.03 ppm, P less than 0.05). These chemical shifts gave a calculated free [Mg2+] of 0.71 mM (control) and 0.48 mM (Mg2+ decreases). In muscle the change in beta-ATP shift was not significant (Mg2+ decreases 15.99 ppm, controls 15.96 ppm), corresponding to a calculated free Mg2+ of 0.83 and 0.95 mM, respectively. Phosphocreatine T2 (Carr-Purcell, spin-echo pulse sequence) was no different with Mg2+ decreases in muscle in vivo (surface coil) (Mg2+ decreases 136, control 142 ms) or in isolated perfused hearts (Helmholtz coil) (control 83, Mg2+ decreases 92 ms). 31P NMR is severely limited in its ability to detect dietary magnesium depletion in vivo. Measurement of beta-ATP shift in brain may allow studies of the effects of interaction in group studies but does not allow prediction of an individual magnesium status.

Animals

Potassium excretion in renal failure in the rat: the role of distal tubule flow and aldosterone.

1. This study examines the contribution of an increased distal tubule flow and of aldosterone to the handling of a potassium load in conscious rats with renal failure induced by subtotal nephrectomy or by gentamicin on a control of high K+ diet. 2. Glomerular filtration rate was reduced by subtotal nephrectomy to 40% and by gentamicin treatment to 60% of control. Subtotal nephrectomy induced significant hypertrophy of glomeruli and proximal and distal tubules, but gentamicin did not. Both experimental groups had a normal iothalamate space and plasma potassium after a 20 h fast. 3. Two hours after an acute KCl load rats with renal failure excreted less potassium than control rats. There was also a lesser natriuretic effect of KCl in the renal failure groups. 4. A high K+ diet, given for 5-7 days, increased excretion of an acute KCl load in control rats and rats with renal failure. 5. (UNaV + UKV) was used as an estimate of distal tubule flow. Potassium excretion, related to distal tubule flow, was similar in the renal failure and control rats when on the same diet. This is consistent with potassium excretion being strongly, but not necessarily solely, dependent on distal flow. 6. Adrenalectomy reduced, and aldosterone restored, potassium excretion in the renal failure and control groups. This suggests a role for aldosterone in excretion of an acute potassium load with this degree of renal failure.

Acute Kidney Injury

Potassium adaptation: 39K-NMR evidence for intracellular compartmentalization of K+.

To investigate the effects of K+ uptake on the intracellular environment, both 39K-nuclear magnetic resonance (NMR) and K+-selective electrodes were used to measure K+ activity with acute K+ loading in control and K+-adapted rats. These results were then compared with tissue K+, measured by flame photometry. There was a lower NMR K+ visibility (ratio of NMR signal to tissue content) in muscle and liver in K+-adapted rats, compared with controls before and after an acute K+ load. This lower K+ visibility in K+-adapted rats was confirmed in liver homogenate with the K+-specific electrode. In liver homogenates from control and K+-adapted rats, addition of RbCl (300 mumol/g) increased the NMR K+ signal more in K+-adapted rats (19 +/- 1.1 mumol/g) than controls (11 +/- 1.0 mumol/g, P less than 0.01). This is consistent with the displacement of K+, by Rb+, from NMR-undetected sites. These results suggest that some 10-15% of intracellular K+ may be within a compartment not detectable by NMR or electrodes and that chronic K+ loading leads to an increased capacity of this compartment.

Adaptation, Physiological

Measurement of tissue potassium in vivo using 39K nuclear magnetic resonance.

39K nuclear magnetic resonance (NMR) spectra were readily obtained, in vivo, from rat muscle, kidney, and brain in 5-10 min with signal-to-noise ratios of approximately 20:1. Quantitation of the K+ signal was achieved by reference to an external standard of KCl/dysprosium nitrate as well as by reference to the proton signal from tissue water. In vitro NMR studies of isolated tissue showed a K+ visibility (NMR K+/total tissue K+) of 96%, 62 +/- 8%, 47 +/- 1.9%, 45 +/- 3.5%, and 43 +/- 2.5% for blood, brain, muscle, kidney, and liver, respectively. Absolute tissue K+ was determined by flame photometry of acid-digested tissue. Changes in tissue K+ status by chronic K+ depletion or acute K+ loading produced changes of 39K NMR signal intensity that were equal to changes of absolute tissue K+. Acidosis, alkalosis, mannitol, or RbCl infusion did not significantly change the NMR K+ signal. These results indicate that the changes in K+ detected by NMR were specifically and accurately detected. To investigate the factors that affect the 39K NMR signal, the effects of liver homogenate on 39K NMR signal intensity were studied. Addition of homogenate produced a 60% loss of signal intensity, suggesting that a large portion of cell K+ may be only 40% visible. Addition of RbCl to undiluted homogenate increased the NMR K+ signal by 11 +/- 2 mumol/g. Addition of H2O or NaCl had no effect, suggesting that Rb+ was replacing K+ in sites of low (less than 40%) NMR visibility. These results demonstrate that 39K NMR experiments can be performed using intact organs. To explain the lack of detectable K+ and changes in K+ NMR visibility, a three compartment model is proposed.

Animals

Localization and characterization of renal calcitonin receptors by in vitro autoradiography.

Calcitonin receptor binding sites were identified in renal cortex and medulla using the radioligand 125I-salmon calcitonin. Microscopic localization of these receptors revealed binding over medullary and cortical thick ascending limb of the loop of Henle and in distal convoluted tubule. A number of receptor positive cells in the inner medulla were also identified. Characterization of the binding demonstrated a single class of high-affinity binding sites in both the medulla and the cortex with affinity constants of 0.74 +/- 0.09 x 10(9) M-1 and 0.32 +/- 0.05 x 10(9) M-1, respectively, and receptor concentrations of 205 +/- 45 fmol/mg protein and 453 +/- 54 fmol/mg protein, respectively. Competition for 125I-salmon calcitonin binding by a wide range of calcitonin analogs revealed a close correspondence between the reported biological potencies and activities in the current system. The localization of binding sites within the nephron corresponds to the reported localization of calcitonin-stimulated adenylate cyclase activity and suggests that the receptor mediated actions of calcitonin in the kidney utilize cyclic AMP as a second messenger. In addition, the microscopic identification of specific calcitonin receptors helps the delineation of direct actions of this hormone from those which are indirect.

Animals

Water depletion, not oral sodium loading, increases levels of sodium, potassium-dependent adenosine triphosphatase inhibitors in rat plasma.

In order to define a physiological role for circulating inhibitors of sodium, potassium-dependent adenosine triphosphatase (Na+,K+-ATPase), plasma was obtained from control, water deplete, water repleted, sodium deplete and sodium loaded rats. The effect of this plasma on Na+,K+-ATPase activity, and its transport equivalent 86Rb uptake, was measured in separated guinea pig renal cortical tubules. Plasma from water deplete rats had a raised plasma osmolality and sodium concentration and a significant inhibitory effect on Na+,K+-ATPase (14%) and 86Rb uptake (24%) compared with control or water repleted rats. Inhibition of Na+,K+-ATPase and 86Rb transport was not seen with plasma from rats after dietary sodium loading (urine sodium 5.2 +/- 0.9 mmol/day) compared with low sodium diet controls (urine sodium 0.41 +/- 0.08 mmol/day). Des-amino arginine vasopressin in vivo produced no inhibition of Na+,K+-ATPase or Rb transport. These studies suggest, that in terms of common homoeostatic insults, circulating inhibitors of Na+,K+-ATPase are more responsive to water depletion than to oral sodium loading. The inhibitors may fulfil a physiological role in increasing sodium excretion to maintain osmolality after dehydration.

Animals

In vivo estimation of changes in distal tubule flow and their role in dexamethasone-induced kaliuresis in control and potassium-adapted rats.

The aim of this study was to determine whether the kaliuresis associated with glucocorticoids is due to a direct tubular action or is secondary to effects of glucocorticoids on distal tubule flow. A whole kidney technique was used to avoid the problem, inherent in microperfusion and micropuncture studies, of deciding whether (all) the appropriate nephron segment(s) are being studied. The method used was to determine the best whole kidney measure of distal tubule flow (the independent variable) by correlating this with the dependent variable (potassium excretion, corrected for differences in plasma potassium, UkV/PIK+) in conscious intact and adrenalectomized control and potassium-adapted rats. After an intragastric potassium chloride load, the correlation of UkV/PIK+ with UkV + UNaV was better than with either UNaV or UV, as measures of distal tubule flow. From the relationship a measure of potassium excretion independent of distal tubule flow can thus be calculated as UkV/PIK+ divided by (UkV + UNaV), defined as UK#. Measurement of UK# clearly demonstrates decreases in potassium excretion with adrenalectomy and increases in potassium excretion with aldosterone and in the potassium-adapted rat, consistent with described changes in potassium secretion. In contrast, with dexamethasone treatment, whilst there was an increase in UkV and UkV/PIK+, there was no change in UK# either in the control of potassium-adapted rats. These results suggest that the kaliuretic effect of dexamethasone cannot be attributed to direct tubular effects of glucocorticoids but rather can be explained by its effect on distal tubule flow.

Adaptation, Physiological

Aldosterone is a physiologically significant kaliuretic hormone.

To study the role of aldosterone in the short-term control of potassium excretion, rats were gavaged with a liquid diet containing 10-20% of their daily caloric and potassium intake, with a range of sodium intakes. Levels of (effective) aldosterone at the time of gavage were manipulated by administration of spironolactone, aldosterone, and adrenalectomy. Urinary sodium, potassium, and creatinine excretion were measured in conscious unrestrained rats for 2 h after the food load, and then blood was collected for measurement of plasma potassium, aldosterone, and renin activity. Potassium excretion was dependent on both dietary potassium and a minimum dietary sodium content. Potassium excretion was reduced by spironolactone and adrenalectomy and increased by acute aldosterone treatment in most dietary groups. These results strongly suggest that the ambient levels of aldosterone are important in determining potassium excretion following food ingestion. Plasma aldosterone was higher with the higher potassium and lower sodium content diets. Changes in plasma aldosterone, with variations in dietary potassium or sodium, suggest a role for aldosterone in subsequent potassium excretion.

Adrenalectomy

A simple method for definition of incomplete suppression of aldosterone and its association with hypertension and hypokalaemia in man.

By defining a model for control of potassium homoeostasis, patients with unexplained hypokalaemia may then be described as fitting or not fitting the model. Fitting the model implies an abnormality of known control mechanisms (e.g. aldosterone); by contrast, not fitting the model suggests other unknown factors responsible for the hypokalaemia and, possibly, hypertension. In the presence of normal acid-base status, potassium excretion (UK+V) is regulated by plasma potassium (PK+), delivery of sodium to the distal tubule and aldosterone secretion. A linear relationship (correlation coefficient of 0.72) was defined by: UK + V/PK+ = 5.1 X log(UAldoV) X log(UNa+ V) + 1.4 based on a 24 h urine collection and plasma sample, in 16 normal subjects, 50 hypertensive normokalaemic subjects and 11 patients with hyperaldosteronism. The relationship was robust and held true for variations in dietary sodium and potassium intake (5-300 and 20-100 mmol/day respectively) and variations in aldosterone excretion produced by enalapril. Patients with abnormal renal potassium wasting due to known extraneous factors (n = 11) all fell outside the 95% confidence limits. Twelve patients with hypertension and hypokalaemia and renal potassium wasting all fitted within the confidence limits, being no different from 22 controls selected on the basis of age and urinary potassium excretion (30-50 mmol/day). This suggests that in these 12 patients the hypokalaemia (but not necessarily the hypertension) was not due to 'unknown' steroids but rather lack of regulation of the controlling variable, aldosterone.

Aged

Aromatic L-amino acid decarboxylase: histochemical localization in rat kidney and lack of effect of dietary potassium or sodium loading on enzyme distribution.

Utilizing a mono-specific antiserum produced in rabbits to hog kidney aromatic L-amino acid decarboxylase (AADC), the enzyme was localized in rat kidney by immunoperoxidase staining. AADC was located predominantly in the proximal convoluted tubules; there was also weak staining in the distal convoluted tubules and collecting ducts. An increase in dietary potassium or sodium intake produced no change in density or distribution of AADC staining in kidney. An assay of AADC enzyme activity showed no difference in cortex or medulla with chronic potassium loading. A change in distribution or activity of renal AADC does not explain the postulated dopaminergic modulation of renal function that occurs with potassium or sodium loading.

Animals