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Peritoneal ultrafiltration and serum icodextrin concentration during dialysis with 7.5% icodextrin solution in Japanese patients.

OBJECTIVES: To assess the efficacy and safety of icodextrin in Japanese patients and to investigate the relationship between net ultrafiltration (UF) during the long dwell and plasma oligosaccharides. DESIGN: Open-labeled clinical trial involving patients on continuous ambulatory peritoneal dialysis (CAPD) receiving icodextrin during the 12-hour long dwell for 6 weeks, preceded by and followed by a 2-week baseline period and a follow-up period during which 1.36% glucose was used for the 8-hour long dwell. SETTING: A prospective, randomized multicenter study done in tertiary medical centers. PATIENTS: 18 stable patients on CAPD for 3 months or longer. MAIN OUTCOMES MEASURES: Net UF (in milliliters), UF rate (in milliliters per hour), plasma oligosaccharides, serum osmolarity (in milliosmoles per liter), peritoneal absorption of icodextrin, and peritoneal clearances of icodextrin, creatinine, and urea were assessed. Adverse events, laboratory findings, and vital signs were also monitored. RESULTS: Long-dwell net UF (544.4 +/- 96.7 mL at day 3, p < 0.001; 309.4 +/- 60.7 mL at week 4, p < 0.001; and 391.7 +/- 61.1 mL at week 6, p < 0.001) and UF rate (48.2 +/- 38.8 mL/ hour at day 3, p < 0.001; 26.9 +/- 22.1 mL/hr at week 4, p < 0.002; and 35.3 +/- 22.9 mL/hr at week 6, p = 0.0002) were significantly greater during the icodextrin period than at baseline (-25.9 +/- 46.0 mL and -2.2 +/- 22.1 mL/hr, respectively). Plasma oligosaccharides reached steady state within 2 weeks, remained stable during the treatment period, and returned to baseline level 2 weeks after discontinuation of icodextrin. Serum osmolarity increased during the use of icodextrin by approximately 5 mOsm/L. No statistically significant relationship was found between plasma oligosaccharides and net UF. Peritoneal absorption of icodextrin (36.3% +/- 5.1% at day 3, 42.2% +/- 5.9% at week 4, and 38.0% +/- 6.3% at week 6) and peritoneal clearance of icodextrin (10.1 mL/minute at day 3, 10.1 mL/min at week 4, and 10.3 mL/min at week 6) showed no major change over time. Serum sodium and serum chloride both decreased by 5 mEq/L with icodextrin but remained within the normal range during the treatment period and returned to baseline levels immediately after discontinuation. No serious adverse events were observed during the study. CONCLUSION: The results of this study do not support the hypothesis that an increased blood oligosaccharide level and the concomitant elevation in serum osmolarity have a negative impact on peritoneal UF. Therefore, the increase in plasma oligosaccharides appears to be too small to be of clinical significance.

Dialysis Solutions↗

Peritonitis occurrence in a multicenter study of icodextrin and glucose in CAPD. MIDAS Study Group. Multicenter Investigation of Icodextrin in Ambulatory Dialysis.

OBJECTIVE: To compare peritonitis occurrence and outcome in a large U.K. study Multicentre Investigation of Icodextrin in Ambulatory Dialysis (MIDAS). DESIGN: Prospective, randomized, controlled 6-month comparison of icodextrin with glucose for the long dwell in continuous ambulatory peritoneal dialysis (CAPD) patients. SETTING: Eleven CAPD units in U.K. teaching hospital. PATIENTS: A total of 209 patients established on CAPD for at least 3 months (103 control, 106 icodextrin). Twenty-three control (C) and 22 icodextrin (I) patients experienced peritonitis during the study. INTERVENTION: Patients who had peritonitis remained on treatment (unless CAPD was withdrawn, temporarily or permanently). MAIN OUTCOME MEASURES: The main outcome measures were the rate of peritonitis and duration of CAPD treatment prestudy; the rate of peritonitis episodes and their outcome during study; the effect of peritonitis on laboratory variables, serum icodextrin metabolites, and ultrafiltration efficacy. RESULTS: Prestudy: Nine (39%) of C but 14 (64%) of I patients had suffered previous peritonitis episode(s), with overall rates of 0.58 and 0.78 episodes per patient-year, respectively. DURING STUDY: There were 31 C episodes and 35 I episodes, with overall rates of 0.76 and 0.93 per patient-year, respectively. The increase in the C and I groups was 31% and 19%, respectively. Serum osmolality and sodium levels were unaffected by peritonitis, and there was no increase in serum icodextrin metabolites during peritonitis. Overnight ultrafiltration volume during peritonitis (mean +/- SD) declined slightly from 218 +/- 354 mL to 185 +/- 299 mL (NS) in the control group, but increased in the icodextrin group from 570 +/- 146 mL to 723 +/- 218 mL (p < 0.01). CONCLUSIONS: Using icodextrin for the long dwell in CAPD does not increase the rate of peritonitis, nor does it alter the outcome of peritonitis. Peritonitis does not affect uptake of icodextrin from the peritoneum.

Chlorides↗

A randomized multicenter clinical trial comparing isosmolar icodextrin with hyperosmolar glucose solutions in CAPD. MIDAS Study Group. Multicenter Investigation of Icodextrin in Ambulatory Peritoneal Dialysis.

The osmotic effectiveness of a large molecular weight glucose polymer fraction (Icodextrin) as a novel "colloid" osmotic agent in peritoneal dialysis was established, but the long-term safety remained undetermined. A randomized, controlled multicenter investigation of Icodextrin in ambulatory peritoneal dialysis (MIDAS) was undertaken to evaluate the long-term safety and efficacy by comparing daily overnight (8 to 12 hr dwell) use of isosmolar Icodextrin (282 mOsm/kg) with conventional 1.36% (346 mOsm/kg) and 3.86% (484 mOsm/kg) glucose exchanges over six months. Two hundred and nine patients were randomized from 11 centers, with 106 allocated to receive Icodextrin (D) and 103 to remain on glucose (control group; C); 138 patients completed the six month study (71 C, 67 D). All patients were divided into weak (1.36%) or strong (3.86%) subgroups based on their use of glucose solutions overnight during the pretreatment baseline period. The mean (+/- SEM) overnight ultrafiltration (UF) with D was 3.5 times greater than 1.36% glucose at eight hours [527 +/- 36 vs. 150 +/- 47 ml; 95% confidence interval (CI) for the difference +257 to +497 ml; P < 0.0001] and 5.5 times greater at 12 hours (561 +/- 44 vs. 101 +/- 48 ml, 95% CI for the difference +329 to +590; P < 0.0001) and no different from that of 3.86% glucose at eight hours (510 +/- 48 vs. 448 +/- 60 ml, 95% CI for the difference -102 to +226 ml; P = 0.44) and at 12 hours (552 +/- 44 vs. 414 +/- 78 ml, 95% CI for the difference -47 to +325 ml; P = 0.06).(ABSTRACT TRUNCATED AT 250 WORDS)

Adolescent↗

Pharmacokinetics of icodextrin in peritoneal dialysis patients.

UNLABELLED: Pharmacokinetics of icodextrin in peritoneal dialysis patients. BACKGROUND: Icodextrin is a glucose polymer osmotic agent used to provide sustained ultrafiltration during long peritoneal dialysis (PD) dwells. A number of studies have evaluated the steady-state blood concentrations of icodextrin during repeated use; however, to date the pharmacokinetics of icodextrin have not been well studied. The current study was conducted to determine the absorption, plasma kinetics and elimination of icodextrin and metabolites following a single icodextrin exchange. METHODS: Thirteen PD patients were administered 2.0 L of solution containing 7.5% icodextrin for a 12-hour dwell. Icodextrin (total of all glucose polymers) and specific polymers with degrees of polymerization ranging from two to seven (DP2 to DP7) were measured in blood, urine and dialysate during the dwell and after draining the solution from the peritoneal cavity. RESULTS: A median of 40.1% (60.24 g) of the total administered dose (150 g) was absorbed during the 12-hour dwell. Plasma levels of icodextrin and metabolites rose during the dwell and declined after drain, closely corresponding to the one-compartment pharmacokinetic model assuming zero-order absorption and first-order elimination. Peak plasma concentrations (median C peak = 2.23 g/L) were observed at the end of the dwell (median Tmax = 12.7 h) and were significantly correlated with patients' body weight (R2 = 0.805, P < 0.001). Plasma levels of icodextrin and metabolites returned to baseline within 3 to 7 days. Icodextrin had a plasma half-life of 14.73 hours and a median clearance of 1.09 L/h. Urinary excretion of icodextrin and metabolites was directly related to residual renal function (R2 = 0.679 vs. creatinine clearance, P < 0.01). In the nine patients with residual renal function, the average daily urinary excretion of icodextrin was 473 +/- 77 mg per mL of endogenous renal creatinine clearance. Icodextrin metabolites DP2 to DP4 were found in the dialysate of subsequent dextrose exchanges, contributing to their elimination from blood. Changes in intraperitoneal concentrations of icodextrin metabolites during the dwell revealed a dual pattern, with a progressive rise in the dialysate concentration of smaller polymers (DP2 to DP4) and a progressive decline in the dialysate concentrations of the larger polymers (DP5 to DP7), suggesting some intraperitoneal metabolism of the glucose polymers. This increase in dialysate metabolite levels, however, did not contribute significantly to dialysate osmolality. In addition, some diffusion of maltose (DP2) from blood to dialysate may have occurred. There were no changes in serum insulin or glucose levels during icodextrin administration, indicating that icodextrin does not result in hyperglycemia or hyperinsulinemia as occurs during dextrose-based dialysis. Serum sodium and chloride declined in parallel with the rise in plasma levels of icodextrin, supporting the hypothesis that these electrolyte changes are the result of the increased plasma osmolality due to the presence of icodextrin metabolites. CONCLUSIONS: The pharmacokinetics of icodextrin in blood following intraperitoneal administration conforms to a simple, single-compartment model that can be approximated by zero-order absorption and first-order elimination. A small amount of intraperitoneal metabolism of icodextrin occurs but does not contribute significantly to dialysate osmolality. The metabolism of absorbed icodextrin and the resultant rise in plasma levels of small glucose polymers (DP2 to DP4) do not result in hyperglycemia or hyperinsulinemia, but may result in a small decrease in serum sodium and chloride.

Absorption↗

Serum disaccharides and osmolality in CCPD patients using icodextrin or glucose as daytime dwell.

OBJECTIVE: To evaluate the safety, efficacy, and biocompatibility of icodextrin- and glucose-containing dialysis fluid during continuous cycling peritoneal dialysis (CCPD), patients were treated for 2 years with either icodextrin- or glucose-containing dialysis fluid for their daytime dwell (14-15 hours). Prior to entry into the study, all patients used a standard glucose solution (Dianeal 1.36%, 2.27%, or 3.86%, Baxter, Utrecht, The Netherlands). DESIGN: Open, randomized, prospective, two-center study. SETTING: University hospital and teaching hospital. PATIENTS: Both established and patients new to CCPD were included. A life expectancy of more than 2 years, a stable clinical condition, and written informed consent were necessary before entry. Patients aged under 18, those with peritonitis in the previous month, and women of childbearing potential, unless taking adequate contraceptive precautions, were excluded. Thirty-eight patients entered the study, and 25 (13 glucose, 12 icodextrin) had a follow-up period of 12 months or longer in December 1996. MAIN OUTCOME MEASURES: Serum icodextrin metabolites: one to five glucose units (G1-G5), a high molecular weight fraction (G > 10), and total carbohydrate level, as well as a biochemical profile were determined every 3 months in combination with all other study variables. RESULTS: In icodextrin-treated patients, serum disaccharide (maltose) concentrations increased from 0.05 +/- 0.01 (mean +/- SEM) at baseline, to an average concentration in the follow-up visits of 1.14 +/- 0.13 mg/mL (p < 0.001). All icodextrin metabolites increased significantly from baseline, as illustrated by the serum total carbohydrate minus glucose levels: from 0.42 +/- 0.05 mg/mL to an average concentration in the follow-up visits of 5.04 +/- 0.49 mg/mL (p < 0.001). At the same time, serum sodium levels decreased from 138.1 +/- 0.7 mmol/L to an average concentration in the follow-up visits of 135.4 +/- 0.8 mmol/L (p < 0.05). However, after 12 months the serum sodium concentration increased nonsignificantly (NS) from baseline to 136.6 +/- 0.9 mmol/L, after an initial decrease. Serum osmolality increased significantly from baseline in icodextrin users at 9 and 12 months, but did not differ significantly from glucose users in any visit. In icodextrin-treated patients, the calculated serum osmolal gap increased significantly from 4.1 +/- 1.4 mOsm/kg to an average of 11.8 +/- 1.7 mOsm/kg (p < 0.01). The sum of the serum icodextrin metabolites in millimoles/liter equaled the increase in osmolal gap. Body weight increased in icodextrin users (71.9 +/- 2.8 kg to 77.8 +/- 3.0 kg; NS). Clinical adverse effects did not accompany these findings. Residual renal function remained stable during follow-up. CONCLUSIONS: The serum icodextrin metabolite levels in the present study increased markedly and were the same as those found previously in continuous ambulatory peritoneal dialysis patients treated with icodextrin, despite the longer dwell time for CCPD patients (14-16 hr versus 8-12 hr). The initial decrease in serum sodium concentration was followed by an increase to a concentration not different from baseline at 12 months. The pathophysiology of this finding is speculated. Calculated osmolal gap in icodextrin patients increased significantly (p < 0.01) at every follow-up visit, and could be explained by the serum icodextrin metabolite increase. We encountered no clinical side effects of the observed levels of icodextrin metabolites.

Adolescent↗

Relapsing culture-negative peritonitis in peritoneal dialysis patients exposed to icodextrin solution.

BACKGROUND: Icodextrin is a new peritoneal dialysis fluid, with maltose polymers providing the osmotic drive, that may extend time on peritoneal dialysis in situations in which use of conventional glucose-based peritoneal dialysis fluid (Dianeal) has led to loss of ultrafiltration. Although cutaneous reactions have been reported, we report a new phenomenon of aseptic peritonitis that has arisen in our unit associated with icodextrin use. METHODS: Icodextrin was first introduced in our unit in 1997 and was used extensively beginning in late 1999. From a combination of an observational study of 141 patients in our unit in whom icodextrin was used over 3.5 years and our unit 2000 and 2001 peritonitis audits, we identified an increase in the incidence of culture-negative peritonitis (CNP). RESULTS: The rate in 2000 of 12.3% rose to 17% in 2001, but this increase was seen only in patients on icodextrin (Percentage changes 2000 audit > 2001 audit: icodextrin patients, 14%--31% increase; Dianeal alone, 12%--10% increase; P < 0.05). Six patients were affected in the period 2000 to 2001 out of a total of 141 patients exposed to icodextrin (4.3%). Two index cases of relapsing CNP responded after withdrawal of the icodextrin. We then adopted a protocol of cessation and rechallenge with icodextrin when dealing with CNP, which successfully confirmed the phenomenon and led to resolution of relapsing CNP after icodextrin withdrawal. All these patients had been on icodextrin for some time, and none had had an immediate reaction or any skin reaction. Eosinophils were reported in the peritoneal effluent from two patients. All patients continued Dianeal without further CNP episodes. CONCLUSION: Icodextrin use carries the risk of CNP, and we suggest a cessation and rechallenge protocol in all patients on icodextrin who have CNP.

Adult↗

Comparison of icodextrin and glucose solutions for the daytime dwell in automated peritoneal dialysis.

BACKGROUND: The sustained ultrafiltration achieved by icodextrin is more suited for the daytime dwell in automated peritoneal dialysis (APD) than glucose solutions. METHODS: Seventeen patients receiving APD underwent assessment using three different solutions for the daytime dwell: 2.27% glucose, 3.86% glucose and 7.5% icodextrin. Patients were then observed on icodextrin for a 6 month period. RESULTS: Daytime ultrafiltration was greater for 3.86% glucose (median 0.10, IQR 0.01 to 0.321) P<0.01 and icodextrin (median 0.26, IQR 0.14 to 0.361) P<0.001 than 2.27% glucose (median -0.19, IQR -0.54 to -0.081), with 3.86% glucose and icodextrin not being significantly different. Positive ultrafiltration occurred in 3/17 patients with 2.27% glucose, 13/17 patients with 3.86% glucose and 16/17 patients with icodextrin (chi2 P<0.0001). The difference in ultrafiltration of icodextrin and 3.86% glucose correlated with the 4 h dialysate/plasma creatinine ratio in a PET test (r = 0.51, P<0.05). Daytime Kt/V urea was greater for 3.86% glucose (median 0.27, IQR 0.20 to 0.48 per week, P<0.01) and icodextrin (median 0.31, IQR 0.27 to 0.49 per week, P<0.0001) than for 2.27% glucose (median 0.22, IQR 0.15 to 0.38 per week), with the difference between 3.86% glucose and icodextrin not reaching statistical significance (P = 0.06). Daytime creatinine clearance was greater for 3.86% glucose (median 10.2, IQR 6.9 to 13.61/week/1.73 m2, P<0.02) and icodextrin (median 12.1, IQR 9.3 to 15.71/week/1.73 m2, P<0.005) than for 2.27% glucose (median 8.8, IQR 4.9 to 11.91/week/1.73 m2). Daytime creatinine clearance was greater for icodextrin than for 3.86% glucose (P<0.005). The effects of icodextrin were sustained for the 6 month observation period. CONCLUSIONS: Icodextrin produced enhanced ultrafiltration and clearances compared with 2.27% glucose, without the exposure of the peritoneum to hypertonic glucose solutions.

Adult↗

Dialysis with icodextrin interferes with measurement of serum alpha-amylase activity.

BACKGROUND: The glucose polymer icodextrin has gained a widespread use in peritoneal dialysis especially in patients with low ultrafiltration and high peritoneal transport properties. In patients using a once-daily exchange with icodextrin, a decreased serum amylase activity has been reported. We explored the potential underlying mechanisms of this effect. METHODS: Using standard chromolytic methods, serum amylase activity was measured in blood samples from 11 patients on icodextrin treatment and from 11 patients on conventional glucose treatment. Samples were additionally supplemented with alpha-amylase and unused icodextrin dialysis fluid. Potential complex formation between icodextrin and alpha-amylase was studied by SDS-gel electrophoresis with protein silver staining and fluorophore-assisted carbohydrate staining with the AMAC (FACE) method, which provides oligosaccharide labelling. Lipase activity was measured in parallel in all samples by two standard methods. RESULTS: Amylase activity was reduced by 90% in serum from patients using icodextrin for the long dwell (15.9+/-10.9 U/l) vs patients using standard glucose (157.1+/-23.7 U/l; P<0.001). Addition of icodextrin to serum samples from patients using conventional glucose solutions induced a dose-dependent decrease in amylase activity. The assay results indicated a substrate competition between ET7-G7PNP and icodextrin. AMAC fluorophore staining of icodextrin and subsequent gel electrophoresis failed to demonstrate complex formation between icodextrin and alpha-amylase. Unlike the amylase findings, icodextrin did not affect lipase activity. CONCLUSIONS: The present findings indicate that icodextrin competitively interacts as a substrate in the amylase assay. In support of this, fluorophore-assisted oligosaccharide electrophoresis on SDS gel failed to reveal the formation of an 'amylase/icodextrin complex'. Lipase measurement should provide an alternative and unconfounded method for diagnosing pancreatitis in icodextrin patients.

Adult↗

Kinetic analysis of icodextrin interference with serum amylase assays.

Patients treated with Extraneal peritoneal dialysis solution (Baxter Healthcare Corporation, Deerfield, IL, U.S.A.) have a significant decrease in serum amylase activity. The decline is reported to be due to interference of icodextrin in a routinely used laboratory assay. The present study was designed to investigate the kinetics of icodextrin interference in the amylase activity assay and to determine whether assay interference can account for the total decline in amylase activity. Plasma obtained from healthy volunteers was spiked with 0, 0.21, 0.71, and 3.6 mg/mL icodextrin. Amylase activity was determined using Sigma kit 577-10 (Sigma Diagnostics, St. Louis, MO, U.S.A.). Amylase activity in plasma samples spiked with 3.6 mg/mL icodextrin was also monitored while varying the concentration of the substrate (ET-G7-PNP) from the assay kit. Amylase activity decreased with increasing amounts of icodextrin and decreasing amounts of assay substrate. A 72.6% decrease in amylase activity was observed in samples spiked with 3.6 mg/mL icodextrin as compared with samples without icodextrin at a substrate level similar to that in the assay kit (0.71 mmol/L). Double reciprocal and Dixon plots indicate competitive inhibition of amylase activity by icodextrin. Icodextrin functions as a competitive inhibitor in the assay for amylase activity, as predicted by the structural similarities between icodextrin and the amylase assay substrate. The degree of icodextrin interference suggests that the entire decline in amylase activity observed in patients using Extraneal can be accounted for qualitatively by icodextrin interference. The amylase activity decline in patients treated with Extraneal is an artifact attributable to assay interference.

Amylases↗

[Sterile peritonitis after administration of icodextrin].

INTRODUCTION: Icodextrin is an 7.5% isoosmotic solution of the glucose polymer maltodextrin, recently frequently used in continuous ambulatory peritoneal dialysis (CAPD). It improves ultrafiltration and decreases glucose absorption. Among side effects of icodextrin, skin reactions and sterile peritonitis have been described. The authors present two cases of sterile peritonitis after icodextrin. CLINICAL PRESENTATION: In these two patients, the adverse events included peritoneal reaction to icodextrin solution. The reaction did not occur immediately after the initial administration of icodextrin, but after 70 (case 1) and 412 days (case 2) of regular use. This reaction to icodextrin solution resembled chemical peritonitis, however, the clinical picture was not absolutely typical of bacterial peritonitis either. Both patients had cloudy dialysate, elevated WBC in dialysate, no microorganisms were isolated, and no signs of allergic reaction could be detected. The clinical course was characterized by rapid remission upon isodextrin withdrawal. One patient received empiric antibiotic therapy, the other did not. Upon switching from icodextrin to glucose-based dialysate, the two patients were not challenged to icodextrin, and were doing well, without any symptoms of peritonitis. DISCUSSION AND CONCLUSION: The icodextrin solution contains an isoosmolar glucose polymer which allows longterm stable ultrafiltration. Among side effects, cutaneous reactions have been described (exfoliative, in the form of vesicles, psoriatic plaque or generalized exanthema in the form of pustules), which may occur in as many as 15% of patients. These symptoms and signs disappear upon discontinuation of icodextrin. Icodextrin side effects also include mild abdominal pain, allergic and hypersensitivity reactions, and recently sterile peritonitis. The patients described developed a clinical picture suggestive of chemical peritonitis. From the effluent no microorganisms were isolated, and the clinical picture was not absolutely typical of bacterial peritonitis either. Discontinuation of icodextrin was followed by immediate clearing of the effluents and normalization of WBC count.

Adult↗

Efficacy and safety of a 7.5% icodextrin peritoneal dialysis solution in patients treated with automated peritoneal dialysis.

In a randomized, prospective, multicenter study, we compared the safety, efficacy, and metabolic effects of a 7.5% icodextrin solution (Extraneal) with a 2.27% glucose solution for long dwell exchanges in patients undergoing automated peritoneal dialysis. Thirty-nine stable patients on automated peritoneal dialysis were randomized to receive either icodextrin (n = 20) or glucose 2.27% solution (n = 19). The study included a 2-week baseline period followed by a 12-week icodextrin treatment phase and a 2-week follow-up period when switching back to glucose. The average net ultrafiltration during the long dwell period was 278 +/- 43 mL/d for the icodextrin group and -138 +/- 81 mL/d for the control group (P < 0.001). The higher ultrafiltration volume with icodextrin was associated with higher creatinine (2.59 +/- 0.09 mL/min versus 2.16 +/- 0.11 mL/min) and urea (2.67 +/- 0.09 mL/min versus 2.28 +/- 0.12 mL/min) peritoneal clearances for the long dwell (both P < 0.001). Ultrafiltration rate per mass of carbohydrate absorbed was +5.2 +/- 1.2 microL/min/g in the icodextrin group and -5.5 +/- 2.8 microL/min/g in the glucose group (P < 0.001). In the icodextrin group, there was a decrease in serum sodium and chloride compared with baseline (P < 0.01). Total dialysate sodium removal increased in the icodextrin group from 226.7 mEq to 269.6 mEq (week 12, P < 0.001). Serum alpha-amylase activity decreased from 103 U/L to 16 U/L (P < 0.001). The total icodextrin plasma levels reached a steady-state concentration of 6,187 +/- 399 mg/L after 1 week of treatment. Urine volume and residual renal function were not specifically affected by icodextrin compared with glucose. None of the laboratory changes resulted in any reported clinically meaningful side effect. Icodextrin produced increased, sustained ultrafiltration during the long dwell period, increasing (convective) peritoneal clearance and sodium removal in automated peritoneal dialysis patients.

Absorption↗

Clinical experience with icodextrin in children: ultrafiltration profiles and metabolism.

Icodextrin use in adults provides sustained ultrafiltration (UF) in long-term dwells. No information is available on UF and metabolism in children. In 11 children, a volume of 1,049+/-138 ml/m2 of the study fluid (1.36% glucose, 7.5% icodextrin, 3.86% glucose) was administered for 12 h. Net UF with icodextrin (339+/-147 ml/1.73 m2) did not differ from UF with 3.86% glucose (450+/-306 ml/1.73 m2, P=0.53) and was higher than UF with 1.36% glucose (-87+/-239 ml/1.73 m2, P=0.003). Icodextrin added 0.52+/-0.07 to the weekly Kt/V. Over 6 weeks, icodextrin was used for 12-h daytime dwell. Total icodextrin reached a steady-state level of 2.91+/-1.22 g/l at 2 weeks. The main icodextrin metabolites were maltose, maltotriose, and maltotetraose. After 2 weeks, steady state levels were 2.02+/-0.66 mmol/l, 1.46+/-0.35 mmol/l, and 0.45+/-0.12 mmol/l. No icodextrin or metabolites were detectable 4 weeks after the study. We conclude that 7.5% icodextrin is capable of maintaining UF during 12-h dwell in children and is comparable to UF obtained with 3.86% glucose. Steady-state levels of icodextrin and metabolites were reached at 2 weeks and disappeared after the study.

Adolescent↗

Prevention of chemotherapy-induced intraperitoneal adhesion formation in rats by icodextrin at a range of concentrations.

OBJECTIVE: Two controlled in vivo studies in rats have investigated the effect of icodextrin solution on intraperitoneal chemotherapy-induced adhesion formation. The first study evaluated the effect of three concentrations of icodextrin (4, 15, 20% w/v) in comparison to a phosphate-buffered saline (PBS) control in response to intraperitoneal doxorubicin (n = 40). The second study compared the effect of 4% icodextrin to Ringers' lactate solution (RLS) control in response to intraperitoneal bleomycin (n = 30). METHODS: Doxorubicin and bleomycin were administered via a continuous pump and as a single bolus (bleomycin only). Doxorubicin 2 ml (23.2 microg/ml) was delivered via pump in conjunction with 20 ml of 4, 15, or 20% icodextrin or PBS (n = 10 per group). In the bleomycin experiments rats received either 2 ml (0.77 U/ml) bleomycin delivered via pump in conjunction with 15 ml 4% icodextrin or RLS, or 0.77 or 0.077 U bleomycin delivered in 15 ml 4% icodextrin or RLS administered as a bolus injection (n = 5 per group). Seven days after the initiation of doxorubicin treatment and 9 days after initiation of bleomycin treatment, the rats were euthanized by CO(2) and the extent of peritoneal adhesion formation was evaluated using an 8-point scoring system. RESULTS: When icodextrin was administered in conjunction with doxorubicin there was a reduction in the formation of adhesions compared to PBS. Efficacy increased with the concentration of icodextrin used. The lowest dose of bleomycin (0.077 U) caused very few adhesions. Results with bleomycin 0.77 U/ml (pump) and 0.77 U (bolus) showed that 4% icodextrin was significantly more effective than RLS at preventing adhesion formation, irrespective of the dosing regimen. CONCLUSIONS: These studies suggest that 4% icodextrin may reduce adhesion formation caused by intraperitoneal chemotherapy.

Animals↗

Effect of icodextrin on volume status, blood pressure and echocardiographic parameters: a randomized study.

Overhydration is a risk factor for hypertension and left ventricular hypertrophy in peritoneal dialysis patients. Recently, a high prevalence of subclinical overhydration was observed in peritoneal dialysis patients. Aim of the present open-label randomized study was to assess the effect of a icodextrin 7.5% solution on fluid status [extracellular water (ECW) bromide dilution], blood pressure regulation (24-hour ambulatory measurements) and echocardiographic parameters during a study period of 4 months, and to relate the effect to peritoneal membrane characteristics (dialysate/plasma creatinine ratio). Forty peritoneal dialysis patients (22 treated with icodextrin, 18 controls) were randomized to either treatment with icodextrin during the long dwell or standard glucose solutions. Thirty-two patients (19 treated with icodextrin, 13 controls] completed the study. The use of icodextrin resulted in a significant increase in daily ultrafiltration volume (744 +/- 767 mL vs. 1670 +/- 1038 mL; P = 0.012) and a decrease in ECW (17.5 +/- 5.2 L vs. 15.8 +/- 3.8 L; P = 0.035). Also the change in ECW between controls and patients treated with icodextrin was significant (-1.7 +/- 3.3 L vs. +0.9 +/- 2.2 L; P = 0.013). The effect of icodextrin on ECW was not related to peritoneal membrane characteristics, but significantly related to the fluid state of the patients (ECW:height) (r = -0.72; P < 0.0001). Left ventricular mass (LVM) decreased significantly in the icodextrin-treated group (241 +/- 53 grams vs. 228 +/- 42 grams; P = 0.03), but not in the control group. In this randomized open-label study, the use of icodextrin resulted in a significant reduction in ECW and LVM. The effect of icodextrin on ECW was not related to peritoneal membrane characteristics, but was related to the initial fluid state of the patient.

Adult↗

Peritoneal transport after long-term exposure to Icodextrin in rats.

BACKGROUND: Icodextrin, an effective osmotic substance that has been proposed as an alternative agent for peritoneal dialysis induces ultrafiltration over long dwells. This study examines the peritoneal transport after exposure to Icodextrin in rats. METHODS: Animals were divided in 4 groups and injected daily for 30 days with Icodextrin 7.5 % (n = 14), Glucose 4.25 % (n = 19) or glucose 4.25% plus Icodextrin 7.5 % (n = 13). Rats of the control group (n = 15) were not exposed. A 4-hour permeability study was performed using glucose at days 1, 30 and 60. At days 2, 31 and 61 the same animals were injected with Icodextrin. RESULTS: Slopes of effluent sodium at day 30 were significantly higher (p < 0.001) in the glucose (0.006 +/- 0.016), Icodextrin (0.013 +/- 0.014) and mixed groups (0.012 +/- 0.017) than in the control group (-0.041 +/- 0.021). Urea D/P ratio was not significantly different in the 4 groups. After 30 days, glucose effluent levels were significantly lower (p < 0.001) in the glucose (701 +/- 278 mg/dl), Icodextrin (552 +/- 209 mg/dl) and mixed groups (587 +/- 344 mg/dl) than in control rats (1519 +/- 413 mg/dl). Effluent protein (mg/l) in the mixed group (1,555 +/- 357) was significantly higher (p < 0.001) than control (376 +/- 33), glucose (1,015 +/- 232) and Icodextrin (765 +/- 75) groups at day 30. CONCLUSION: The long-term use of Icodextrin does not affect small molecule transport, but induces changes in the peritoneal protein excretion, especially when Icodextrin and glucose are injected together.

Albumins↗

Icodextrin: a review of its use in peritoneal dialysis.

UNLABELLED: Icodextrin (Extraneal) is a high molecular weight glucose polymer developed specifically for use as an alternative osmotic agent to dextrose during the once-daily long-dwell exchange in peritoneal dialysis (PD). Isosmotic 7.5% icodextrin solution induces transcapillary ultrafiltration (UF) by a mechanism resembling 'colloid' osmosis (unlike hyper-osmolar dextrose-based solutions, which induce UF by crystalline osmosis). In addition, absorption of icodextrin from the peritoneal cavity is relatively slow compared with that of dextrose; this results not only in UF of longer duration, but also a lower carbohydrate load compared with medium (2.5%) and strong (4.25%) dextrose exchanges. In randomised clinical trials of up to 2 years in duration, administration of icodextrin for the long (8- to 16-hour) overnight exchange in continuous ambulatory peritoneal dialysis (CAPD) or daytime exchange in automated peritoneal dialysis (APD) produced net UF which exceeded that with 1.5% and 2.5% dextrose solutions (thereby improving fluid balance), and was equivalent to that with 4.25% dextrose solution. Icodextrin also increased peritoneal clearances of creatinine and urea nitrogen compared with 2.5% dextrose solution. The increase in UF volume with icodextrin was enhanced in CAPD patients with high peritoneal membrane permeability (i.e. high and high-average transporters), maintained in the small number of patients followed-up for 2 years and sustained during episodes of peritonitis. Icodextrin reduced the percentage of patients with net negative UF in contrast to 1.5% and 2.5% dextrose and, in noncomparative studies, extended PD technique survival in patients who had failed dextrose-based dialysis. The use of icodextrin was also associated with some symptomatic improvements and health-related quality of life advantages, and no adverse effect on patient survival, compared with dextrose, although confirmation of these findings is ideally required in appropriately designed studies. The tolerability of icodextrin was generally similar to that of dextrose-based solutions in controlled clinical trials, although there was an approximate three-fold increase in the risk of new skin rash (5.5% vs 1.7%). However, reports of severe cutaneous hypersensitivity reactions remain rare; this possibility should not preclude the use of the polymer. CONCLUSION: 7.5% icodextrin solution offers the first feasible alternative to conventional dextrose solutions for the once-daily long-dwell exchange in PD. It is effective, generally well tolerated and appears to be most useful in situations of reduced or inadequate UF with dextrose, including in high and high-average transporters, during episodes of peritonitis and patients who have failed dextrose-based dialysis.

Clinical Trials as Topic↗

Icodextrin degradation products in spent dialysate of CAPD patients and the rat, and its relation with dialysate osmolality.

OBJECTIVE: Peritoneal dialysis (PD) with a 7.5% icodextrin-containing dialysis solution provides prolonged ultrafiltration compared with glucose-based dialysis solutions. Colloid osmosis is the most likely mechanism, but studies in rats suggest it is caused by an increase in osmolality due to degradation of icodextrin. Therefore, human spent dialysate was analyzed with high-performance liquid chromatography (HPLC) using gel permeation size-exclusion chromatography. An increasing peak (with a low molecular weight, < 1000 Da) was observed during the dwell. The aim of this study was to quantitate breakdown products of icodextrin (which could explain this peak) and investigate whether there was a relationship with dialysate amylase concentration and dialysate osmolality. DESIGN: Long-dwell effluents (dwell time 9.15- 14.30 hours) obtained from 12 PD patients using a 7.5% icodextrin solution during the night were analyzed. The following icodextrin breakdown products were measured: maltotetraose (G4), maltotriose (G3), maltose (G2), and glucose (G1). In 6 of these patients, the sugars maltoheptaose (G7), maltohexaose (G6), and maltopentaose (G5) were also determined in both effluent and plasma. In addition, G4, G3, G2, and G1 were measured in four Wistar rats during a 6-hour dwell study. RESULTS: In the human studies, the median distribution of the sugars in the effluent was G4,6.7%; G3,16.5%; G2, 23.1%; and G1, 53.5%. The osmolality in spent dialysate ranged between 288 and 326 mOsm/kg H2O. The median contribution of the sugars G2 - G4 was 5.4 mOsm/kg H2O. No correlation was present between dialysate osmolality and duration of the dwell (r= -0.04, p= 0.91); nor was there a relation between the concentration of G2 and duration of the dwell (r = 0.50, p = 0.10). No relationship was found between the amount of amylase and the concentration of G2 in the effluent (r = 0.49, p = 0.10), nor between the total concentration of the sugars G2 - G4 in the spent dialysate and dialysate osmolality (r = -0.31, p = 0.33). However, a strong correlation was seen between urea concentration and osmolality (r= 0.85, p < 0.001), and also between sodium concentration and dialysate osmolality in the spent dialysate (r = 0.92, p < 0.0001). The levels of the sugars G2, G3, and G4 in effluent were higher than in unused dialysate, but lower than or similar to plasma levels. Concentrations of the sugars G5, G6, and G7 were lower in spent dialysate than in unused dialysate, and higher than in plasma. In the rat study, dialysate osmolality increased with the duration of the dwell. A clear relationship was present between osmolality and concentration of the sugars G2 - G4 in the effluent. The median amount of amylase in the effluent was 1252 U/L. CONCLUSION: A 7.5% icodextrin-based dialysis solution used during the long exchange caused only a slight increase in dialysate osmolality in humans. The osmolality at the end of the dwell in the human situation was dependent mainly on concentrations of the small solutes urea and sodium in the effluent. The contribution of icodextrin degradation products was marginal. In the rat, however, a clear relationship was present between osmolality and icodextrin degradation products in spent dialysate, explaining the increased dialysate osmolality at the end of the dwell. The difference between the two species can be explained by the very high amylase concentrations in the rat, leading to a rapid degradation of icodextrin. The rat is therefore not suitable to study peritoneal fluid kinetics using icodextrin as an osmotic agent.

Animals↗

[Effect of a dialysis solution with icodextrin on ultrafiltration and selected metabolic parameters in patients treated with peritoneal dialysis].

BACKGROUND: To date, peritoneal dialysis has been performed almost exclusively using dialysis solutions containing glucose as the osmotic agent. Use of these solutions is fraught with problems regarding adequate fluid removal from the body and is also associated with undesirable metabolic effects; hence the search for alternative osmotic agents. A dialysis solution with the glucose polymer icodextrin generates ultrafiltration on the principle of colloidal osmosis. The aim of the study was to establish the effect of icodextrin-base dialysis solution on the magnitude of ultrafiltration and evaluate selected metabolic parameters of patients treated by ambulatory peritoneal dialysis. METHODS AND RESULTS: A total of 9 patients whose glucose-based solution was replaced by an icodextrin-based solution during the night-time exchange were evaluated. A control group of 9 patients used glucose-solution during all exchanges. Night-time bag ultrafiltration, blood pressure, and the serum levels of lipids, insulin, leptin, maltose, and amylase were determined before icodextrin administration (time 0), at one-month intervals (time 1, 2, 3), and one month after study completion (time 4). In icodextrin-treated patients, ultrafiltration rose from 246.5 +/- 60.5 ml (mean +/- SEM) at time 0 to 593.1 +/- 87.4 ml; p < 0.01, at time 1, to 547 +/- 67 ml; p < 0.05, at time 2, and to 586.7 +/- 58.8 ml; p < 0.01, at time 3, the icodextrin administration led to a rise in maltose from 0.02 +/- 0.01 g/l at time 0 to 0.1 +/- 0.1 g/l; p < 0.01, at time 1, to 1.0 +/- 0.09 g/l; p < 0.01, at time 2, and to 1.1 +/- 0.09 g/l; p < 0.01, at time 3, with a fall to zero values at time 4 (NS). Icodextrin administration was followed by a decrease in leptinemia from 34.6 +/- 17.2 ng/ml at time 0 to 21.7 +/- 8.9 ng/ml; p < 0.05, at time 1, to 21.4 +/- 9.5 ng/ml; p < 0.05, at time 2, and to 15.9 +/- 24.1 ng/ml; p < 0.05 at time 4. Insulin and lipid levels were not affected. There was no change in the above parameters in the control group. Icodextrin-treated patients reduced their antihypertensive medication, but not statistically significantly. CONCLUSION: Icodextrin administration significantly increase ultrafiltration thus providing for effective control of hydration status without the need for high-level glucose-based dialysis solutions. The use of a glucose polymer-based dialysis solution is associated with a significant yet reversible rise in serum maltose. The decrease in leptin may signal a reduction in body weight after replacing glucose in dialysis solutions with icodextrin, or enhanced rates of leptin elimination as a result of ultrafiltration-induced convective transport.

Adult↗