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J Caverzasio

Publications and source records attributed to J Caverzasio.

At least 91 records · Page 5Linked to original sources

Mechanism of rapid phosphate (Pi) transport adaptation to a single low Pi meal in rat renal brush border membrane.

Previous studies have shown that the adaptive response of tubular inorganic phosphate (Pi) transport to Pi deprivation is detectable in the whole kidney 24 h after switching rats from a high (HPD) to a low (LPD) Pi diet. In the present work we report on a more rapid adaptive response of the sodium (Na)-dependent Pi transport system located in the luminal membrane of the proximal tubule and its relation with changes in phosphatemia an parathyroid hormone status. Rats were fed HPD and trained to eat their daily ration within 1 h. After two weeks of equilibration half of the animals received a single LPD ration. 1, 2 and 4 h after the end of food consumption the animals were either sacrificed for renal cortical brush border membrane vesicle (BBMV) isolation or used for determining plasma Pi concentration, urinary excretion of Pi and cAMP. The results indicate that 2 and 4 h after the end of feeding, the Na-dependent Pi transport in BBMV was stimulated by 70 and 140% respectively in intact rats exposed for the first time to LPD. This response was preceded by a significant fall in plasma Pi concentration (HPD: 2.46 +/- 0.03, LPD: 2.04 +/- 0.05 mM), in the urinary excretion of Pi (HPD: 899.0 +/- 68.1; LPD: 6.5 +/- 3.3 mumol/ml GFR) and cAMP (HPD: 76.9 +/- 7.4, LPD: 48.2 +/- 1.4 pmol/ml GF). This last result suggested a rapid inhibition of PTH after one single LPD feeding.(ABSTRACT TRUNCATED AT 250 WORDS)

Adaptation, Physiological↗

Expression of chronic thyroparathyroidectomy on phosphate transport in whole kidney and proximal luminal membranes during phosphate deprivation.

Both parathyroid hormone (PTH) and the dietary supply of inorganic phosphate (Pi) influence the tubular Pi reabsorptive capacity. In this study we have assessed how removal of parathyroid gland affects the response of Pi transport to Pi restriction in the whole kidney and in brush border membrane vesicles (BBMV) isolated from the renal cortex. Intact and thyroparathyroidectomized (TPTX) rats were switched from normal to low Pi diet. The maximal tubular Pi reabsorption per volume of glomerular filtrate (max. TRPi/ml GF) and the initial (3, 6 and 9 s) Na+-dependent Pi uptake by BBMV were determined before and after 1, 2, 3 and 8 days of Pi restriction. The results indicate that before Pi restriction max. TRPi/ml GF was 1.94 +/- 0.04 and 4.03 +/- 0.14 mumol/ml GF in intact and TPTX rats respectively. The corresponding Na+-dependent Pi uptake (3 s value) was 137 +/- 23 in sham and 272 +/- 41 pmol/mg protein in TPTX rats. During Pi restriction the initial difference in max. TRPi/ml GF remained constant throughout the time course study. At 8 days max. TRPi/ml GF was in intact 3.08 +/- 0.09 and in TPTX 5.04 +/- 0.18 mumol/ml GF. In sharp contrast, in BBMV the initial difference between intact and TPTX became completely abolished 8 days after starting the Pi restriction (SHAM = 425 +/- 69; TPTX = 434 +/- pmol/mg protein). In conclusion, the overall tubular Pi transport capacity and the Na+-dependent Pi transport system located in the luminal membrane of the proximal tubule appear to be quite differently affected by changes in the PTH status during Pi restriction.

Animals↗

Adaptation of phosphate transport in phosphate-deprived LLC-PK1 cells.

Sodium-dependent transport of phosphate was studied in LLC-PK1 cells that had been deprived of phosphate (Pi). Compared with control cells (fed with 2 mM Pi) a twofold increase in the rate of Na-Pi cotransport was observed in cells incubated for 15 h in a phosphate-free medium, whereas transport of L-alanine and the specific activity of alkaline phosphatase were not changed. The same adaptive response was observed with apical membrane vesicles isolated from Pi-deprived cells. In both experimental systems Pi deprivation caused a change in the Vmax but not in the apparent Km (for Pi) of the cotransport system. Adaptation of the Na-Pi cotransport was triggered by free phosphate concentrations between 0 and 100 microM. Over the first 20 h the adaptive response was found to be a linear process that could be prevented by 70 microM cycloheximide. Adapted cells that were re-treated with phosphate showed a rapid (less than 3 h) decrease in the Na-Pi transport. The data suggest that LLC-PK1 cells adapt to low Pi conditions by increasing the rate of the Na-Pi cotransport, which is located in the apical membrane. Two mechanisms may be involved in the adaptive response: a long-term process involving new protein synthesis, and a short-term response involving activation-inactivation of transport systems already existing.

Adaptation, Physiological↗

Inhibition of parathyroid hormone secretion and parathyroid hormone-independent diminution of tubular calcium reabsorption by WR-2721, a unique hypocalcemic agent.

Hypocalcemia has been observed in patients receiving WR-2721 [S-,2-(3-aminopropylamino)-, ethylphosphorothioic acid]. WR-2721 is a compound that, after being dephosphorylated, provides protection of normal tissues against radio- and chemotherapy. The hypocalcemic response was accompanied by a decrease in the plasma level of parathyroid hormone (PTH) and by hypomagnesemia. Our present studies in rats on the mechanism of the hypocalcemic effect of WR-2721 indicate that: (a) The phosphorylated and dephosphorylated form of WR-2721 induced an equal dose-dependent decrement in plasma calcium. (b) In intact rats a maximal hypocalcemic dose of WR-2721 reduced urinary cyclic AMP excretion from 70.5 +/- 6.3 to 38.2 +/- 3.1 pmol/ml glomerular filtration rate (GFR), a level comparable to that observed (35.9 +/- 5.2 pmol/ml GFR) in thyroparathyroidectomized (TPTX) rats. (c) WR-2721 given to TPTX rats did not significantly interfere with the calcemic effect of bovine PTH 1-34 infused at 2.5 IU/h. Likewise, the drug did not impair the PTH actions on the renal Ca and inorganic phosphate (Pi) handling, and on the urine cyclic AMP excretion. (d) In TPTX rats made normocalcemic by low Pi diet, the hypocalcemic effect of WR-2721 was only about 25% of that observed in intact animals. However, it was associated with increased urine Ca per milliliter GFR, indicating a PTH-independent inhibitory effect on tubular Ca reabsorption. (e) In WR-2721-treated intact rats, prevention of hypomagnesemia by infusing magnesium chloride did not reduce hypocalcemia. In conclusion, the hypocalcemic effect of WR-2721 is not dependent upon the presence of a phosphate group in the molecule and is not causally related to hypomagnesemia. WR-2721 appears to be a unique hypocalcemic pharmacologic agent with strong inhibitory activity on PTH secretion and additional PTH-independent action on renal Ca reabsorption.

Amifostine↗

Calcium restriction and parathyroid hormone enhance renal compensatory growth.

Calcium has been shown to control the proliferation of various cells in vitro and in vivo. Despite this information it is not known whether the Ca status or Ca-regulating hormones could modulate the degree of compensatory growth of the remaining kidney after renal mass reduction. In the present work the influence of dietary Ca, parathyroid hormone (PTH), and calcitonin (CT) on renal compensatory growth ( RCG ) was studied in unilaterally nephrectomized (UNI-NX) rats. UNI-NX rats were pair-fed diets with high (1.1%, HCa) or low (0.1% LCa) Ca content for 3, 8, and 15 days. After UNI-NX the wet weight of the remaining kidney increased much more in rats fed LCa than HCa. Values of dry weight, total protein, and DNA content were also significantly higher in the remaining kidney removed from rats fed LCa than from those fed HCa. LCa did not display such effects in sham-operated rats with intact renal mass. The amount of dietary Ca did not influence the progressive rise in glomerular filtration rate (clearance of inulin) of the remaining kidney as assessed 3, 8, and 15 days after UNI-NX. In UNI-NX rats fed LCa chronic administration of CT in doses that induced hypocalcemia did not inhibit the enhanced RCG induced by LCa. In UNI-NX rats fed HCa chronic administration of PTH mimicked the effect of LCa. In conclusion, dietary Ca restriction can markedly enhance the compensatory but not the normal growth of the kidney.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Unilateral nephrectomy and 1,25-dihydroxyvitamin D3.

Several renal functions respond to nephron loss by a compensatory adaptation. Whether the production of 1,25(OH)2D3 also adapts to a renal mass reduction is still a matter of controversy. In the present study we have investigated in rats the influence of unilateral nephrectomy, in both the acute (48 hr) and chronic (2 to 6 weeks) state, on plasma 1,25(OH)2D3 level measured by competitive protein binding assay. In the acute state no difference in plasma 1,25(OH)2D3 level between sham-operated (SHAM) and unilateral-nephrectomized (UNI-NX) rats was found. The presence of the thyroparathyroid glands was not required for maintaining plasma 1,25(OH)2D3 at a normal level 48 hr after UNI-NX. In the chronic state in rats fed at 1.1% Ca diet, plasma 1,25(OH)2D3 (means +/- SEM) was 94 +/- 4 in SHAM and 98 +/- 8 pM in UNI-NX. In rats fed a 0.1% Ca diet it was 252 +/- 16 in SHAM and 239 +/- 20 pM in UNI-NX. Analysis of 3H-1,25(OH)2D3 plasma decay curve indicated that in UNI-NX under a high calcium diet the normalization of plasma 1,25(OH)2D3 appears to be entirely due to an increase in production, whereas under a low calcium diet part of it may also result from a moderate decrease in the elimination rate. In conclusion, this study indicates that unilateral nephrectomy does not affect the level of plasma 1,25(OH)2D3 even under a calcium restriction challenge. This compensatory adaptation appears to be independent of parathyroid hormone.

Animals↗

Phosphate transport in brush border membrane vesicles isolated from renal cortex of young growing and adult rats. Comparison with whole kidney data.

Recent clearance studies have demonstrated that the maximal tubular reabsorption of inorganic phosphate (Pi) per ml of glomerular filtrate (max. TRPi/ml GF) of the whole kidney is markedly lower in adult than in young growing rats fed either normal (0.8 g %) or low (0.2 g %) phosphorus diet. In addition, in adult rats clearance studies indicate that enhancement of max. TRPi/ml GF is observed 21 days but not 8 days after starting the low (0.2%) phosphorus diet. In the present work we have studied in the same experimental condition the Na+-dependent Pi uptake in brush border membrane vesicles (BBMV) isolated from renal cortex of either young growing or adult rats. The results of this study indicate that under the low (0.2%) but not under the normal (0.8%) phosphorus diet the Na+-dependent Pi uptake by BBMV was significantly depressed in adult as compared to young growing rats. In adult rats the Pi transport response to Pi restriction monitored at the brush border membrane level was different from that observed by clearance studies in the whole kidney. Indeed, the Pi uptake by BBMV was already enhanced after 8 days of Pi restriction and it did not increase further when studied 21 days after starting the low (0.2%) phosphorus diet. These results suggest that the regulation of the overall transfer of Pi across the renal epithelium may involve other additional modulating factors than the Na+-dependent Pi transport system present in the luminal membrane of the proximal tubule.

Age Factors↗

Parathyroid hormone-independent adaptation of the renal handling of phosphate in response to renal mass reduction.

In man as well as in experimental animals progressive renal failure is associated with a decrease in the fractional reabsorption (FR) of inorganic phosphate (Pi). This response has been considered as an adaptation phenomenon and generally attributed to an increase in parathyroid hormone (PTH) secretion. One report indicates that in chronic thyroparathyroidectomized (TPTX) dogs treated with large doses of vitamin D progressive renal failure can also be associated with a fall in FRPi. However, in this latter study the concomittant administration of vitamin D could have accounted for the observed decrease in FRPi. In our study we investigated whether or not chronic reduction in renal mass leads to a similar decrease in maximal net tubular Pi reabsorption per volume of glomerular filtrate (maximal TRPi/ml GF) in the presence and absence of PTH and without pharmacological supplementation in vitamin D. Male rats were either TPTX or sham-operated (intact). One and two weeks later the animals of both groups were either subtotally nephrectomized (NX) in two stages or sham-operated (control). Four weeks after the second renal operation, the glomerular filtration rate (GFR) and the reabsorption of Pi were determined by clearance methodology under acute sodium chloride and Pi infusion, that is, at endogenous and increased plasma Pi concentrations ([Pi]Pl.). Thus maximal TRPi/ml GFR could be determined. In rats with intact parathyroid glands GFR was 1.56 +/- 0.10 (mean +/- SEM) and 0.54 +/- 0.10 ml/min in control and NX respectively, whereas maximal TRPi/ml GF was 2.24 +/- 0.07 in control and 1.57 +/- 0.18 mumol/ml (P less than 0.005) in NX. In TPTX rats GFR was 1.66 +/- 0.27 and 0.62 +/- 0.06 ml/min in control and NX respectively, whereas maximal TRPi/ml GF was 3.80 +/- 0.20 in control and 2.95 +/- 0.13 mumol/ml (P less than 0.005) in NX. The marked decrease in maximal TRPi/ml GF observed in TPTX after subtotal NX could not be ascribed to any consistent change in plasma calcium. Our study provides conclusive evidence that the decrease in maximal TRPi/ml GF in response to renal mass reduction can occur to the same degree in the presence or absence of PTH.

Adaptation, Physiological↗

Tubular handling of Pi in young growing and adult rats.

The tubular transport of inorganic phosphate (Pi) is controlled by a parathyroid hormone-independent mechanism that responds to variations in the Pi intake. This adaptation mechanism could also respond to growth-mediated variation in the utilization of Pi by the organism. In the present work we have determined the maximal net Pi reabsorption per volume of glomerular filtrate (max TRPi/ml GF) in the young growing (2-mo) and adult 8- to 9-mo) rats. Max TRP[i/ml GF was significantly lower in intact adult (1.44 +/- 0.06 mumol/ml) compared with intact young growing animals (2.22 +/- 0.12 mumol/ml GF). This difference was maintained after removal of the thyroparathyroid glands; adult, 2.89 +/- 0.25, young, 4.56 +/- 0.25 mumol/ml. It was not associated with a difference in the urinary excretion of cAMP, GFR, renal handling of sodium, plasma calcium, or acid-base status. Administration of growth hormone preparations to adult rats did not raise max TRPi/ml GF to the level observed in young intact animals. With regard to the tubular Pi adaptation to Pi restriction, lowering the phosphorus content in the diet from 0.8 to 0.2 g/100 g resulted in an attenuated and delayed enhancement in max TRPi/ml in adult as compared with the response observed in young growing rats. These results show that the decrease in tubular reabsorption of Pi that occurs when rats become adult in a parathyroid hormone-independent phenomenon. It is suggested that this change is an adaptation of the tubular Pi transport to a reduction in the utilization of Pi in relation to the diminished growth rate of the animals.

Absorption↗

Tubular adaptation to Pi restriction in hypophysectomized rats.

The renal tubule adapts its tubular transport capacity for inorganic phosphate (Pi) in response to a reduction in the Pi supply. In order to assess whether growth hormone plays a critical role in this adaptive response we have studied the change in the tubular handling of Pi which follows Pi restriction in hypophysectomized (HPX) rats and compared it to that occurring in intact counterparts. HPX and intact rats were maintained either on a 1.2 g/100 g phosphorus diet or fed a 0.2 g/100 g phosphorus diet for 3, 6 or 12 days. HPX rats received ACTH and thyroxine in doses which normalize their low glomerular filtration rate (GFR). Then the maximal net Pi reabsorption per volume of glomerular filtrate (max. TRPi/ml GFR) were determined during acute Pi infusion by clearance technique. The results indicate that HPX rats responded to Pi restriction by raising their tubular capacity to reabsorb Pi. However, the rapidity and the magnitude of the adaptive response was significantly less in HPX than in intact rats. The adaptation to Pi restriction was also observed in HPX rats after thyroparathyroidectomy. It is concluded that growth hormone and other pituitary hormones do not play a key role in the adaptive response to Pi restriction. The reduced adaptive response observed in HPX rats with intact thyroparathyroid glands could be due to the decreased Pi demand consecutive to impaired growth.

Adrenocorticotropic Hormone↗

Pressure natriuresis in isolated kidneys from hypertension-prone and hypertension-resistant rats (Dahl rats).

Dahl described a strain of rats with genetically controlled propensities for hypertension. Chronic excess salt feeding increased blood pressure in sensitive (s) rats, whereas resistant rats (R) remain normotensive. We tested the pressure natriuretic function (urinary sodium excretion versus perfusion pressure) in isolated kidneys perfused with a cellular medium: in sodium-restricted normotensive sensitive (S0) and resistant (R0) animals; in sensitive rats receiving a high-salt diet for 3 weeks (S3): and in both S and R animals exposed to excess sodium for 7 weeks (R7 and S7). The aim of these studies was to determine if a preset alteration of the pressure natriuretic function might be present in S animals prior to the development of hypertension. Systolic blood pressure in S0, S3, and S7 animals were 123 +/- 4, 136 +/- 2, and 162 +/- 4 mm Hg, respectively, whereas that of R0 and R7 were 121 +/- 5 and 126 +/- 5 mm Hg. An increase of the perfusion pressure of isolated kidneys from 105 to 185 mm Hg in stepwise fashion resulted in a pressure natriuresis whose slope was similar in R0 and S0 animals. Of interest was that the pressure natriuretic function slope of kidneys from R0 (low sodium) and R7 (high sodium) rats was as predicted by the Guyton system analysis of normal blood pressure control Micropuncture of the proximal nephrons demonstrated that the origin of the natriuresis resulted from a site beyond the accessible proximal tubule. Results from S7 kidneys contrasted with all others in that the natriuretic response was depressed (P less than 0.01), which resulted from significantly lower filtration rates at higher perfusion pressures. We concluded (1) in normal R rats, the pressure natriuretic function is that predicted by the Guyton hypothesis, (2) Dahl S animals have no preset abnormality of this function until hypertension is present for some time, and (3) a depression of the pressure natriuretic function may aggravate hypertension in S rats once high blood pressure has persisted.

Animals↗