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Sevelamer prevents uremia-enhanced atherosclerosis progression in apolipoprotein E-deficient mice.

BACKGROUND: The novel phosphate binder sevelamer has been shown to prevent the progression of aortic and coronary calcification in uremic patients. Whether it also decreases the progression of atheromatous plaques is unknown. The aim of our study was to examine the effect of sevelamer administration on the development of atherosclerosis and aortic calcification in the uremic apolipoprotein E-deficient mouse as an established model of accelerated atherosclerosis. METHODS AND RESULTS: Female mice were randomly assigned to 4 groups: 2 groups of nonuremic mice (sevelamer versus control) and 2 groups of uremic mice (sevelamer versus control). Sevelamer was given at 3% with chow. The increases in serum phosphorus concentration and calcium-phosphorus product observed in uremic control mice were prevented by sevelamer. Serum total cholesterol was increased in the 2 uremic mouse groups and remained unchanged in response to sevelamer. After 8 weeks of sevelamer treatment, uremic mice exhibited a significantly lower degree of atherosclerosis (P<0.001) and vascular calcification than uremic control mice. Of interest, sevelamer exerted an effect on both intima and media calcification (P=0.005) in uremic mice. Among possible mechanisms involved, we found no evidence for the modulation by sevelamer of inflammation or selected uremic toxins. In contrast, nitrotyrosine staining as a measure of oxidative damage was significantly decreased in response to sevelamer treatment in control and uremic mice (P<0.005). CONCLUSIONS: Sevelamer delays not only vascular calcification but also atherosclerotic lesion progression in uremic apolipoprotein E-deficient mice. It opens the possibility of a cholesterol-independent action of sevelamer on atheroma formation via effects on mineral metabolism, oxidative stress, or both.

Animals↗

Renal mineral handling in normal rats treated with sevelamer hydrochloride (Renagel), a noncalcemic phosphate binder.

The effects of sevelamer hydrochloride (Renagel); hereafter referred to as sevelamer), a noncalcemic phosphate binder, on renal mineral handling were examined in rats. Normal rats were fed a diet containing 0.3, 1, 3, and 5% sevelamer for 8 days, and serum, urine, and the immunohistochemical localization of the type II Na/Pi cotransporter protein in the kidney were analyzed. Rats treated with 3 or 5% sevelamer showed significant decreases in serum phosphorus (P) and parathyroid hormone (PTH) levels, with no changes in serum calcium (Ca), magnesium (Mg), or 1,25(OH)2D3 levels. Increases were observed in urinary excretions of Ca and Mg associated with a reduction in the PTH level in rats treated with 3 or 5% sevelamer. Rats treated with 1% or higher concentrations of sevelamer showed significant dose-dependent and marked reductions of the urinary P excretion, and the tubular reabsorption of P was maximized to almost 100% in the 5% sevelamer group. The hypophosphaturia in rats treated with 3 or 5% sevelamer was accounted for by the reductions in serum PTH and P per se, and immunohistochemical analysis showed that the expression of type II Na/Pi cotransporter protein was markedly increased at the brush border membranes of the deep and superficial nephrons in rats treated with 5% sevelamer as compared with rats given a normal diet. In conclusion, sevelamer rapidly lowered serum P and PTH levels in normal rats. Sevelamer treatment also produced a marked hypophosphaturia associated with translocation of type II Na/Pi cotransporter protein and increased urinary Ca and Mg excretions by the reduction of PTH.

Administration, Oral↗

Effects of sevelamer and calcium-based phosphate binders on uric acid concentrations in patients undergoing hemodialysis: a randomized clinical trial.

OBJECTIVE: Gout affects a large fraction of persons with advanced chronic kidney disease, and hyperuricemia may increase the risk of cardiovascular disease. Several hypouricemic agents are contraindicated in patients with end-stage renal disease. Sevelamer is a nonabsorbed hydrogel that binds phosphorus and bile acids in the intestinal tract. Results of short-term and open-label studies suggest that sevelamer might lower the concentration of uric acid, another organic anion. We undertook this study to test our hypothesis that the reduction in serum uric acid concentration induced by sevelamer would be confirmed in a long-term, randomized, clinical trial comparing sevelamer with calcium-based phosphate binders. METHODS: Two hundred subjects undergoing maintenance hemodialysis were randomly assigned to receive either sevelamer or calcium-based phosphorus binders in an international, multicenter, clinical trial. Data on baseline and end-of-study uric acid concentrations were available in 169 subjects (85%); the change in uric acid concentration from baseline to the end of the study was the outcome of interest. RESULTS: Baseline clinical characteristics, including mean uric acid concentrations, were similar in subjects randomly assigned to receive sevelamer and calcium-based phosphate binders. The mean change in uric acid concentration (from baseline to the end of the study) was significantly larger in sevelamer-treated subjects (-0.64 mg/dl versus -0.26 mg/dl; P = 0.03). The adjusted mean change in uric acid concentration was more pronounced when the effects of age, sex, diabetes, vintage (time since initiation of dialysis), dialysis dose, and changes in blood urea nitrogen and bicarbonate concentrations were considered (-0.72 mg/dl versus -0.15 mg/dl; P = 0.001). Twenty-three percent of sevelamer-treated subjects experienced a study-related reduction in the concentration of uric acid equal to -1.5 mg/dl or more, compared with 10% of calcium-treated subjects (P = 0.02). CONCLUSION: In a randomized clinical trial comparing sevelamer and calcium-based phosphate binders, treatment with sevelamer was associated with a significant reduction in serum uric acid concentrations.

Aged↗

Sevelamer with and without calcium and vitamin D: observations from a long-term open-label clinical trial.

OBJECTIVE: To determine the effects of sevelamer hydrochloride on serum phosphorus, calcium, calcium x phosphate product, and parathyroid hormone (PTH) in patients treated with and without vitamin D metabolites and calcium supplementation. DESIGN: Long-term, open-label clinical trial. SETTING: Hemodialysis units. PATIENTS: One hundred ninety-two adult patients with end-stage renal disease on hemodialysis. INTERVENTION: An extended treatment period of sevelamer hydrochloride, preceded and followed by phosphate binder washout periods. MAIN OUTCOME MEASURES: Treatment-related changes in serum phosphorus, calcium, calcium x phosphate product, and PTH. RESULTS: Subjects treated with sevelamer alone, sevelamer with vitamin D metabolites (with or without calcium), and sevelamer with calcium without vitamin D experienced significant reductions in mean serum phosphorus (range, 2.1 to -2.9 mg/dL) and the calcium x phosphate product (range, -16.3 to -23.4 mg2/dL2). The mean serum calcium concentration increased in all subgroups except those treated with sevelamer alone (range, +0.3 to +0.5 mg/dL). In contrast, only subjects treated concurrently with vitamin D metabolites experienced a reduction in PTH. Subjects treated with sevelamer alone or sevelamer with calcium without vitamin D experienced an increase in PTH with treatment. CONCLUSION: Sevelamer hydrochloride is a safe and effective phosphate binder in hemodialysis patients. Sevelamer should be used in combination with vitamin D metabolites to jointly control hyperphosphatemia and hyperparathyroidism. Randomized clinical trials will be required to determine the optimal management strategies for metabolic bone disease in end-stage renal disease, as well as less advanced stages of chronic renal insufficiency.

Adult↗

Sevelamer worsens metabolic acidosis in hemodialysis patients.

BACKGROUND: Sevelamer hydrochloride, a major phosphate binder for patients on maintenance hemodialysis (MHD) is associated with reduced serum bicarbonate concentration due to hydrochloric acid release in the gut and to the binding of short chain fatty acids in the large intestine. Since metabolic acidosis can be deleterious, a study was devised to compare the time course of serum bicarbonate concentration during treatment with sevelamer hydrochloride or calcium carbonate. METHODS: Sixteen well nourished patients on MHD who were in excellent clinical conditions and achieving target levels for blood pressure (BP) and hemoglobin (Hb), while on a protein intake of 1.1g/kg body weight (bw), were enrolled in the study. After a 2-week washout period, the patients were divided into two groups, each consisting of eight patients, and randomized either to 24 weeks of sevelamer followed by 24 weeks of calcium carbonate (group A) or to 24 weeks of calcium carbonate followed by 24 weeks of sevelamer (group B). Protein intake, n-protein catabolic rate (nPCR), serum concentrations of calcium, phosphate, calcium x phosphate (Ca x P) product, bicarbonate, intact parathyroid hormone (iPTH) and albumin were monitored. Time course changes in serum bicarbonate concentrations in relation to short and long dialytic intervals (48 vs. 72 hr) were also investigated. RESULTS: Both sevelamer and calcium carbonate effectively controlled serum phosphate and the Ca x P product. During calcium carbonate treatment plasma phosphate concentrations were significantly below those of patients on sevelamer. Plasma bicarbonate concentration fell within target DOQI values during calcium carbonate administration both in group A and in group B, a goal which was not achieved under sevelamer administration. After a long dialytic interval in patients on sevelamer, serum bicarbonate concentration averaged 17.3 +/- 1.1 mEq/L, whereas it averaged 21.1 +/- 0.7 mEq/L in patients on calcium carbonate (p<0.01). Finally, a 24-week sevelamer administration caused a statistically significant (p<0.05) reduction (0.8 g/dL) in serum albumin concentration, without affecting iPTH. Taken together, these results indicate that sevelamer worsens metabolic acidosis, which needs to be corrected.

Acidosis↗

Increase in serum magnesium level in haemodialysis patients receiving sevelamer hydrochloride.

BACKGROUND: Clinical studies have shown that sevelamer hydrochloride improves lipid profiles and attenuates the progression of the cardiovascular calcifications in haemodialysis patients. It is known that both of these properties are associated with increased magnesium levels. The effect of sevelamer on serum magnesium level is not well documented. The aim of this study was to determine the effects of sevelamer treatment on serum magnesium in haemodialysis patients and to assess the association of magnesium levels with lipid profiles and intact parathyroid hormone (iPTH). METHODS: Phosphate binders were discontinued during a two week washout period. Forty-seven patients, whose serum phosphate was greater than 6.0 mg/dl at the end of washout, received sevelamer hydrochloride for eight weeks. The patients were then washed off sevelamer for another two weeks. RESULTS: Mean serum phosphorus concentration declined from 7.5 +/- 1.3 to 6.4 +/- 1.2 mg/dl (P < 0.001), mean serum magnesium levels increased from 2.75 +/- 0.35 to 2.90 +/- 0.41 mg/dl (P < 0.001) and median serum iPTH levels decreased from 297 to 213 pg/ml (P=0.001) during the eight weeks of sevelamer treatment. After the two week post-treatment washout phosphorus levels increased to 7.3 +/- 1.3 mg/dl (P < 0.001), magnesium levels were reduced to 2.77 +/- 0.39 mg/dl (P < 0.001) and iPTH levels increased to 240 pg/ml (P=0.012). No change was observed in serum calcium levels during the sevelamer treatment period and the subsequent washout period. The mean decline in total and low density lipoprotein (LDL) cholesterol during sevelamer treatment was 16.3 and 28.3 (P < 0.001), respectively. The mean increase in high density lipoprotein (HDL) cholesterol and in apolipoprotein A1 was 2.9 +/- 5.8 mg/dl (P=0.004) and 6.8 +/- 11.1 mg/dl (P=0.001), respectively. Multivariate analysis showed that the rise in serum magnesium concentration significantly correlated with reductions in iPTH levels (r=-0.40, P=0.016), but did not have any significant correlation with the changes in lipid profiles. CONCLUSIONS: Our findings indicate that patients on haemodialysis receiving sevelamer have a significant increase in serum magnesium concentrations. This increase in serum magnesium is associated with reduction in iPTH levels. The changes in lipid profiles of these patients however are not related to changes in serum magnesium levels.

Female↗

A prospective study of combination therapy for hyperphosphataemia with calcium-containing phosphate binders and sevelamer in hypercalcaemic haemodialysis patients.

INTRODUCTION: Hyperphosphataemia is predictive of death, in haemodialysis (HD) patients. Sevelamer is a mineral-free phosphate binder not limited by the hypercalcaemia often encountered when utilizing calcium-containing phosphate binders. Highly positive calcium balance is associated with ectopic calcification and potentially accelerated vascular disease. Unfortunately, exclusive use of sevelamer entails a large cost differential, limiting its use in many centres. We report on a strategy of partial replacement of calcium with sevelamer for the management of hyperphosphataemia in hypercalcaemic chronic HD patients. METHODS: We identified 23 HD patients with serum calcium >2.6 mmol/l. Dietary phosphate and calcium intake were assessed and baseline serum calcium, phosphate and 1alpha calcidol and elemental calcium dose recorded. Fifty per cent of this initial calcium dose was exchanged for sevelamer. Vitamin D doses were left unchanged. If serum calcium was still >2.6 mmol/l after 4 weeks a further 50% of calcium was exchanged. If serum phosphate was >2 mmol/l the sevelamer dose was increased by 25%. The patients were followed up for a further 4 weeks. RESULTS: Seven patients complained of gastrointestinal intolerance of sevelamer. Serum calcium fell from a mean value of 2.8+/-0.04 (2.64-3.54) mmol/l to 2.56+/-0.03 (2.4-2.9) mmol/l, P<0.0005. The hypercalcaemic percentage of patients fell from 100 to 26%. Mean serum phosphate was not significantly changed, 1.59+/-0.1 (0.57-2.6) mmol/l to 1.63+/-0.11 (0.55-2.68) mmol/l, 17-22% of patients having serum phosphate >2 mmol/l. Serum intact parathyroid hormone increased from 166+/-47 (12-933) ng/l to 276+/-104 (20-1013) ng/l, P=0.02. Mean sevelamer dose was 2.77+/-0.36 (0-5.6) g per day. Elemental calcium dose fell from 2.05+/-0.23 (0.5-4.5) g to 1.03+/-0.1 (0.5-2.5) g, P<0.0001. CONCLUSION: A regimen based on the combination of sevelamer and calcium is capable of effectively managing hyperphosphataemia, without hypercalcaemia, in the majority of hypercalcaemic HD patients. Such a minimally calcaemic approach might reduce the financial burden of sevelamer therapy, and enable a wider range of patients to be treated.

Calcium↗

Sevelamer, a phosphate-binding polymer, is a non-absorbed compound.

OBJECTIVE: To examine the absorption, distribution and excretion of sevelamer hydrochloride in rats and humans. PARTICIPANTS: Twelve male Sprague-Dawley rats were used in the animal study, and twenty human volunteers participated in the clinical trial. METHODS: In the animal study, six rats received a single oral dose of [(3)H]sevelamer and six rats were pretreated with unlabelled sevelamer in the diet for 28 days followed by a single dose of [(3)H]sevelamer on day 29. Total urine and faeces were collected at intervals up to 72 hours post dose, and tissues were obtained at the time of sacrifice. In the clinical trial, subjects received a single oral dose of [(14)C]sevelamer following 28 days of pretreatment with unlabelled sevelamer. Blood, urine and faeces samples were collected at intervals up to 96 hours. RESULTS: In the rat study, no significant urinary excretion of radioactivity was observed. The average recovery of radioactivity in the faeces was 98% in the single-dose group and greater than 100% in the group pretreated with unlabelled sevelamer for 28 days. A total of less than 0.1% of the dose was found in the tissues. In the human study, no detectable amount of (14)C was found in the blood of any subject at any time. The majority of subjects had no detectable amounts of (14)C recovered in the urine. In subjects where (14)C was recovered in the urine, less than 0.02% was detected, a level equivalent to the free (14)C detected in the [(14)C]sevelamer preparation. On average, greater than 99% of the administered dose was recovered in the faeces of the subjects. CONCLUSION: These studies demonstrate that sevelamer is a non-absorbed compound.

Absorption↗

Sevelamer reduces calcium load and maintains a low calcium-phosphorus ion product in dialysis patients.

BACKGROUND: Sevelamer HCl, a non-aluminum, non-calcium containing hydrogel, has proved an effective phosphate binder in North American hemodialysis patients. This single-center, open-label, dose titration study assessed the efficacy of sevelamer in a cohort of European hemodialysis patients with different dietary habits, in particular with lower phosphate intake. The aim of the study was to obtain a calcium x phosphate product lower than 60 mg2/dL2 in all patients. METHODS: Administration of calcium- or aluminum-based phosphate binders was discontinued during a two-week washout period. Nineteen patients whose serum phosphate level at the end of washout was greater than 5.5 mg/dL (1.78 mmol/L) qualified to receive sevelamer for six weeks. Based on the degree of hyperphosphatemia during washout, patients were started on 403 mg sevelamer capsules with a dose schedule different from previous studies. Only one capsule was administered at breakfast, and the rest of the phosphate binder was divided equally at the two main meals. Sevelamer could be increased by two capsules per day every two weeks, if necessary. A second two-week washout period followed. RESULTS: Mean serum phosphorus rose from a baseline of 5.3 +/- 1.0 to 7.4 +/- 1.4 mg/dL at the end of washout, then declined to 5.4 +/- 0.8 mg/dL (p < 0.001) by the end of the six-week treatment period and rebounded significantly to 7.1 +/- 1.1 mg/dL after the second two-week washout. Calcium x phosphate product showed a similar pattern, decreasing significantly from 64.1 +/- 14.1 to 46.9 +/- 7.4 mg2/dL2 (p < 0.001) after six weeks of sevelamer. A level of less than 50 mg2/dL2 was reached by 68% of patients, and 95% had less than 60 mg2/dL2. The mean dose of sevelamer at the end of treatment was 3.1 +/- 0.6 g per day. As expected, calcium declined from 9.2 +/- 0.5 to 8.7 mg/dL (p < 0.01) during the initial washout after stopping calcium-based phosphate binders, but remained stable thereafter. Ionized calcium did not change significantly throughout the washout and sevelamer treatment. However, interruption of calcium salts led to a 81% reduction of total calcium intake. CONCLUSIONS: We confirmed in an European sample of hemodialysis patients that sevelamer can reduce phosphate levels without inducing hypercalcemia. The drug can also be successfully used to reduce mean calcium x phosphate levels below 50 mg2/dL2, closer to normal values. Although similar results can be obtained with other phosphate binders, a concomitant accumulation of aluminum, calcium or magnesium could be detrimental to patients.

Aged↗

Efficacy and safety of sevelamer. Comparison with calcium carbonate in the treatment of hyperphosphatemia in hemodialysis patients.

OBJECTIVE: Current phosphate binders used in hemodialysis patients include calcium-based binders that result in frequent hypercalcemia. The use of a calcium- and aluminum-free phosphate-binding polymer in hemodialysis (sevelamer) disclosed efficacy in the short and long-term studies. However, due to race differences we performed a short-term study on the Saudi hemodialysis patients and compared sevelamer with a standard calcium-based phosphate binder. METHODS: An open-label, randomized, cross-over study was performed to evaluate the safety and effectiveness of sevelamer hydrochloride in controlling hyperphosphatemia in hemodialysis patients. After a 2-week phosphate binder washout period, stable hemodialysis patients were given either sevelamer or calcium carbonate, and the dosages were titrated to achieve phosphate control over an 8-week period. After a 2-week washout period, patients crossed over to the alternate agent for 8 weeks. Twenty patients from the Dialysis Unit of King Fahd Hospital, Jeddah, Kingdom of Saudi Arabia, were recruited for the study between March 2003 and June 2003. RESULTS: There was a similar decrease in serum phosphate values over the course of the study with both sevelamer (-3.3 +/-2.2 mg/dL) and calcium carbonate (-3.9 +/-2.8 mg/dL). Fifty-two percent of patients developed serum calcium greater than 2.75 mmol/L (11.0 mg/dL) while receiving calcium carbonate versus 26% of patients receiving sevelamer (p<0.05). The incidence of hypercalcemia for sevelamer was not different from the incidence of hypercalcemia during the washout period. Patients treated with sevelamer also sustained a 13% mean decrease in serum cholesterol levels. CONCLUSION: Sevelamer was effective in controlling hyperphosphatemia without resulting in an increase in the incidence of hypercalcemia seen with calcium carbonate. This agent appears quite effective in the treatment of hyperphosphatemia in hemodialysis patients, and its usage may be advantageous in the treatment of dialysis patients.

Adult↗

Bile acid binding to sevelamer HCl.

BACKGROUND: Clinical studies have shown sevelamer HCl (Renagel) to be effective for the reduction of serum phosphate in hemodialysis patients. These studies also consistently have demonstrated a significant reduction of low-density lipoprotein (LDL) cholesterol following treatment with sevelamer. METHODS: Equilibrium binding of bile acids and oleic acid was determined by incubating sevelamer with ligand containing buffer. Aliquots of the solution were filtered and the free ligand concentrations quantitated by high-pressure liquid chromatography (HPLC). Flow kinetics were determined using a cylindrical flow cell containing trapped sevelamer. Bile acid and oleic acid were pumped through the stirred cell in a manner designed to mimic the in vivo situation. Binding was monitored by HPLC. RESULTS: Sevelamer binds bile acids cooperatively and with high capacity. At low binding densities, the presence of the more hydrophobic bile acids enhances the binding of the less hydrophobic bile acids, and the presence of oleic acid enhances the binding of all bile acids. At saturating oleic acid concentrations, the bile acid binding capacity of sevelamer is reduced by only a factor of two. Moreover, the presence of oleic acid dramatically diminishes the release rate of bile acids from sevelamer. CONCLUSIONS: The favorable bile acid binding characteristics of sevelamer provide a compelling explanation for its ability to lower LDL cholesterol in hemodialysis patients and in healthy volunteers.

Bile Acids and Salts↗

Sevelamer hydrochloride attenuates kidney and cardiovascular calcifications in long-term experimental uremia.

BACKGROUND: In chronic renal failure (CRF), hyperphosphatemia and an elevated calcium-phosphate product are associated with vascular calcification and increased cardiovascular morbidity and mortality. Previous data have demonstrated that 3-month treatment of uremic rats with sevelamer was associated with less nephrocalcinosis compared to calcium carbonate (CaCO3), despite similar control of serum phosphorus, calcium-phosphorus product (Ca x P product), and secondary hyperparathyroidism. There was no evidence of aortic calcification after 3 months of uremia (J Am Soc Nephrol 13:2299-2308, 2002). The present studies explore the influence of sevelamer and CaCO3 on cardiovascular and kidney calcifications in long-term experimental uremia over 6 months. METHODS: Normal and 5/6 nephrectomized rats (U) were fed a high phosphorus (HP) diet for 6 months. Two phosphate binders, CaCO3 and sevelamer, were administered and their influence on hyperphosphatemia, secondary hyperparathyroidism, kidney/myocardial/aortic calcification, and renal function was compared. RESULTS: All uremic rats began the study with the same degree of renal failure. Sevelamer was as effective as CaCO3 in reducing serum phosphorus, Ca x P product, and attenuating secondary hyperparathyroidism. Despite similar serum cholesterol levels, rats in the U-HP + sevelamer group had markedly lower calcium deposition in the myocardium and aorta (myocardium, 72 +/- 4 microg/g wet tissue; aorta, 736 +/- 156 microg/g wet tissue) compared to rats in either the U-HP + CaCO3 group (myocardium, 179 +/- 48, P < 0.05; aorta, 1308 +/- 343, P < 0.05) or the U-HP group (myocardium, 98 +/- 10, NS; aorta, 2150 +/- 447, P < 0.05). Dual immunohistochemical analysis for calcium and endothelial cell markers demonstrated that myocardial calcium deposition was intravascular within capillaries. Furthermore, calcium deposition in the kidney of uremic rats treated with sevelamer (582 +/- 111 microg/g wet tissue) was lower than that found in uremic rats treated with CaCO3 (1196 +/- 180 microg/g wet tissue). Sevelamer-treated rats had less deterioration in renal function with an associated lower serum creatinine, higher creatinine clearance, and less proteinuria. There was no difference in overall mortality between the three experimental groups. CONCLUSION: In long-term experimental CRF, in addition to controlling serum phosphorus and secondary hyperparathyroidism as efficiently as CaCO3, treatment with the phosphate-binder sevelamer attenuates vascular and kidney calcification.

Animals↗

A comparison of sevelamer hydrochloride with calcium acetate on biomarkers of bone turnover in hemodialysis patients.

OBJECTIVE: To evaluate the influence of sevelamer hydrochloride and calcium acetate on biomarkers of bone turnover in patients with hyperphosphatemia receiving hemodialysis. METHODS: In this prospective, open-label, randomized, active-controlled study, 70 patients (38 men and 32 women) with hyperphosphatemia (serum phosphorus level >6.0 mg/dL) underwent a two-week washout period and were randomly selected to receive sevelamer hydrochloride (n = 37) or calcium acetate (n = 33) for eight weeks. Changes in serum levels of intact parathyroid hormone (iPTH), alkaline phosphatase (Alk-P), phosphorus, and calcium were measured and compared. RESULTS: After eight weeks of treatment, calcium acetate lowered iPTH levels significantly more than sevelamer hydrochloride did (-178.0 vs. -69.0 pg/mL, p = 0.0019). Levels of Alk-P were significantly elevated in patients given sevelamer hydrochloride compared with levels in those given calcium acetate treatment (24.09 vs. 7.45 U/L, p = 0.0014). Changes in serum phosphorus levels did not differ between sevelamer hydrochloride (-1.93 mg/dL) and calcium acetate (-2.5 mg/dL) at the end of the study (p = 0.0514). Changes in the calcium and phosphorous product did not significantly differ between the sevelamer-hydrochloride group (-18.06 mg2/dL2) and the calcium-acetate group (-19.05 mg2/dL2, p = 0.6764). Fifteen patients (45.5%) treated with calcium acetate had hypercalcemia (serum-adjusted calcium level >10.5 mg/dL); the rate was significantly higher than that of patients treated with sevelamer (five [13.5%] of 37, p = 0.0039). CONCLUSION: Treatment with sevelamer hydrochloride had the advantage of maintaining stable iPTH levels and elevating Alk-P levels while lowering serum phosphorus levels and calcium-phosphorous product.

Acetates↗

The effects of sevelamer hydrochloride and calcium carbonate on kidney calcification in uremic rats.

The control of serum phosphorus (P) and calcium-phosphate (Ca x P) product is critical to the prevention of ectopic calcification in chronic renal failure (CRF). Whereas calcium (Ca) salts, the most commonly used phosphate binders, markedly increase serum Ca and positive Ca balance, the new calcium- and aluminum-free phosphate binder, sevelamer hydrochloride (RenaGel), reduces serum P without altering serum Ca in hemodialysis patients. Using an experimental model of CRF, these studies compare sevelamer and calcium carbonate (CaCO(3)) in the control of serum P, secondary hyperparathyroidism (SH), and ectopic calcifications. 5/6 nephrectomized rats underwent one of the following treatments for 3 mo: uremic + high-P diet (U-HP); UHP + 3% CaCO(3) (U-HP+C); UHP + 3% sevelamer (U-HP+S). Sevelamer treatment controlled serum P independent of increases in serum Ca, thus reducing serum Ca x P product and further deterioration of renal function, as indicated by the highest creatinine clearances. Sevelamer was as effective as CaCO(3) in the control of high-P-induced SH, as shown by similar serum PTH levels, parathyroid (PT) gland weight, and markers of PT hyperplasia. Also, both P binders elicited similar efficacy in reducing the myocardial and hepatic calcifications induced by uremia. However, sevelamer caused a dramatic reduction of renal Ca deposition (29.8 +/- 8.6 micro g/g wet tissue) compared with both U-HP (175.5 +/- 45.7 micro g/g wet tissue, P < 0.01) and the U-HP+C (58.9 +/- 13.7 micro g/g wet tissue, P < 0.04). Histochemical analyses using Von Kossa and Alizarin red S staining of kidney sections confirmed these findings. The high number of foci of calcification in the kidney of uremic controls (108 +/- 25) was reduced to 33.0 +/- 11.3 by CaCO(3) and decreased even further with sevelamer (16.4 +/- 8.9, P < 0.02 versus CaCO(3)). Importantly, the degree of tubulointerstitial fibrosis was also markedly lower in U-HP+S (5%) compared with either U-HP+C (30%) or U-HP (50%). It is concluded that in experimental CRF in rats, despite a similar control of serum P and SH, sevelamer is more effective than CaCO(3) in preventing renal Ca deposition and tubulointerstitial fibrosis, including better preservation of renal function. These findings cannot be extrapolated to human disease, and further studies in patients are necessary to determine the benefits of either P binder.

Animals↗

Prospective randomized multicenter trial of sevelamer hydrochloride and calcium carbonate for the treatment of hyperphosphatemia in hemodialysis patients in Japan.

A prospective, randomized open-label trial of sevelamer hydrochloride with or without calcium carbonate (CC) involved 86 hemodialysis patients in Japan. The dosage of CC was fixed at 3.0 g/day for the 12-week study. After the first 4 weeks all subjects were changed from CC to sevelamer 3.0 g/day for another 4 weeks, then allocated randomly to three groups for the final 4 weeks: group A, sevelamer 6.0 g/day; group B, sevelamer 3.0 g/day and CC 3.0 g/day; group C, CC 3.0 g/day. The target serum phosphorous concentration (P)=5.5 mg/dL and the corrected calcium concentration (Ca) was 9.0-10.0 mg/dL. Of the 86 patients, 62 finished the study without a change of dosage and their data were analyzed (group A, N=16; group B, N=26; group C, N=20). At week 8 compared with week 4, the concentration of P increased from 5.7+/-1.4 to 6.4+/-1.7 mg/dL in group A, and decreased significantly in groups B and C, and in group B compared with groups A and C; groups A and C had similar concentrations at week 8. The Ca concentration decreased significantly from 9.7+/-1.0 to 9.1+/-0.7 mg/dL after the change to sevelamer. At week 8 Ca was not significantly changed in group A, whereas a significant increase occurred in groups B and C. Side-effects with sevelamer administration occurred in 34 of the 86 patients and 24 dropped out of the study, with a high frequency in group A (13/29; 44.8%). In conclusion, there was an additive effect of sevelamer for the treatment of hyperphosphatemia with CC. The combination therapy was better tolerated and showed higher patient compliance than CC or sevelamer monotherapy.

Analysis of Variance↗

Combination therapy with sevelamer hydrochloride and calcium carbonate in Japanese patients with long-term hemodialysis: alternative approach for optimal mineral management.

Calcium (Ca) overload by Ca-containing phosphorus (P) binder has been suggested to be implicated in the pathogenesis of soft tissue and vascular calcification, which contribute to increased morbidity and mortality of cardiovascular disease in patients undergoing dialysis. Recently, a noncalcium P binder, sevelamer hydrochloride (sevelamer), has become available in Japan. However, Japanese patients undergoing dialysis might be less tolerant of sevelamer treatment, and it is likely to cause hypocalcemia because their dietary Ca intake is less than that in European and American patients. We evaluated the effects of combination therapy with sevelamer and calcium carbonate (CC) on mineral metabolism in Japanese hemodialysis patients, as an alternative form of P management. A total of 210 hemodialysis patients were enrolled, and were given a small dose of sevelamer (0.75-1.5 g/day) on CC treatment. Sevelamer dose was gradually increased, while CC decreased during 24 weeks. Five patients discontinued sevelamer treatment because of severe constipation, anorexia, and parathyroidectomy for severe secondary hyperparathyroidism. After 24 weeks, the dose of sevelamer was significantly increased to 3.29 g/day (initial dose: 1.47 g/day), while CC was decreased by 54%. Adjusted serum Ca significantly decreased (9.63 +/- 0.57-9.45 +/- 0.67 mg/dL; P = 0.0012), although serum P increased (5.89 +/- 1.32-6.25 +/- 1.32 mg/dL; P = 0.017). Serum intact PTH (iPTH) significantly increased in patients with a low or normal iPTH level (< or =300 pg/mL), while it did not change in patients with secondary hyperparathyroidism (>300 pg/mL). The results suggest that the therapeutic regimen is more tolerant and reduces Ca load in Japanese hemodialysis patients while avoiding hypocalcemia. In addition, the mitigated Ca overload could improve PTH hyposecretion in patients with adynamic bone disease, which is associated with soft tissue calcification and higher mortality in uremia.

Antacids↗

[Pharmacological and clinical trial data on a novel phosphate-binding polymer (sevelamer hydrochloride), a medicine for hyperphosphatemia in hemodialysis patients].

Hyperphosphatemia is one of the major complications of hemodialysis patients and plays a key role in the pathogenesis of cardiovascular calcification and secondary hyperparathyroidism. Dietary phosphate restriction and removal of phosphate by dialysis are insufficient to control hyperphosphatemia. Therefore, almost all patients undergoing hemodialysis should take oral phosphate binders. Sevelamer hydrochloride (sevelamer) is a novel phosphate-binding polymer that contains neither aluminum nor calcium, and it is not absorbed from the gastrointestinal tract. In rat models with progressive chronic renal insufficiency, in addition to lowering effects on serum levels of phosphorus, calcium x phosphorus product, and parathyroid hormone, dietary treatment of sevelamer can prevent parathyroid hyperplasia, vascular calcification, high turnover bone lesion, and renal functional deterioration. In clinical studies with hemodialysis patients, sevelamer lowers serum phosphorus and calcium x phosphorus product without any incidence of hypercalcemia. Switching calcium-containing phosphate binders to sevelamer can decrease the percentage of hypoparathyroidism and hyperparathyroidism by negative calcium balance and increased dosage of vitamin D, respectively. Sevelamer also decreases serum low-density lipoprotein cholesterol levels by its bile acid-binding capacity. A long-term clinical study has demonstrated that the progression of coronary and aortic calcification in hemodialysis patients is attenuated by sevelamer. Thus, sevelamer offers the promise of impacting cardiac calcification and thereby reducing morbidity and mortality of hemodialysis patients.

Animals↗

Sevelamer therapy for pediatric end-stage renal disease.

Sevelamer, a non-calcium-containing, non-aluminum-containing phosphate binder, is frequently prescribed for treatment in adults with hyperphosphatemia secondary to end-stage renal disease (ESRD). However, published information regarding sevelamer use in children younger than 11 years is lacking. We report the use of sevelamer as a phosphate binder in a 19-month-old girl with ESRD who was receiving calcium carbonate 1250 mg 3 times/day for hyperphosphatemia. The patient's initial serum phosphorus concentration was 8.6 mg/dl, and the calcium-phosphorus product was 75 mg(2)/dl(2). This was well above the level that places patients at risk for complications such as joint, vessel, and soft-tissue calcification. An aluminum-containing phosphate binder was not an option given the patient's renal disease and the concern for neurotoxicity. Sevelamer was considered, but a MEDLINE search revealed no pediatric dosing information. An initial dosage of 100 mg/kg/day divided every 8 hours was administered, as extrapolated from adult data, and then titrated to 130 mg/kg/day divided every 8 hours based on the patient's response. The child's dietary phosphorus intake remained constant throughout her hospital stay. During sevelamer therapy, her serum phosphorus concentration dropped as low as 5.2 mg/dl; at discharge it was 6.5 mg/dl, with a corresponding calcium-phosphorus product in the upper 50s. No adverse effects associated with sevelamer were observed. In the dosages we used, sevelamer resulted in an acceptable calcium-phosphorus product and returned the patient's serum phosphorus concentration to near normal. Sevelamer appears to be a viable option as a phosphate binder in children with ESRD.

Calcium↗