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临床试验/NCT01800188
NCT01800188已完成不适用

Glucose Metabolism During Hemodialysis

Bo Feldt-Rasmussen1 个研究点 分布在 1 个国家目标入组 10 人开始时间: 2013年2月最近更新:
适应症

试验速览

阶段
不适用
状态
已完成
发起方
入组人数
10
试验地点
1
主要终点
Clearance of total GIP

研究概览

简要总结

Disturbed glucose metabolism is a common feature of patients with end-stage renal disease (ESRD). Several hormones responsible of a stable blood glucose including insulin, glucagon, and the gastrointestinal insulinotropic hormones Glucagon-like Peptide-1 (GLP-1) and Glucose-dependent Insulinotropic Peptide (GIP) are elevated in patients with ESRD. These hormones are all medium sized peptides which theoretically makes them removable during high efficient hemodialysis. A significant removal could have consequences for the treatment of patients with diabetes and ESRD.

The purpose of this study is to determine whether insulin, glucagon, GLP-1 and GIP are cleared during high efficient hemodialysis and hemodiafiltration. The investigators hypothesize that a significant amount of these hormones is removed during hemodialysis and to a larger extend during hemodiafiltration.

详细描述

BACKGROUND

Disturbed glucose metabolism is a common feature of patients with end-stage renal disease (ESRD). Furthermore, the prevalence of diabetes mellitus in the ESRD population is high resulting in a marked increased morbidity and mortality. Several hormones responsible of a stable blood glucose including insulin, glucagon, and the gastrointestinal insulinotropic hormones Glucagon-like Peptide-1 (GLP-1) and Glucose-dependent Insulinotropic Peptide (GIP) are elevated and dysregulated in patients with ESRD. Newly developed antidiabetic medications such as the dipeptidyl peptidase-4 inhibitors (DPP-4 inhibitors) increase the concentrations of these hormones making the effect of these treatments difficult to predict in patients with ESRD.

During the history of hemodialysis the treatment has been refined to increase the removal of the various substances that accumulate when the kidney function declines. The focus has primary been on the removal of smaller molecules such as creatinine and urea, but in recent decades the focus has moved to medium-sized molecules (molecular weight of 300 to 12,000 Da) which are suspected of causing various uremic complications such as amyloidosis and neuropathy. The dialysis technique has therefore been optimized such that relatively large molecules are removed, but the dialysis filter does not distinguish between wanted and unwanted substances. Thus, in contrast to the functioning kidney there is a risk of removing important molecules including hormones, which are essential for maintaining a normal glucose metabolism.

Insulin, glucagon and the incretin hormones, GLP-1 and GIP are all peptides with a molecular weight of 3300 to 5800 Da. This means that they theoretically have a size where they can be removed under hemodialysis with so-called high-flux filters and by hemodiafiltration, both of which are common standards of care for patients with ESRD. It has been shown that insulin is removed in significant quantities during a hemodialysis, but this is probably due to adsorption to the filter and not filtration. Whether glucagon and the incretin hormones are eliminated by high effective hemodialysis and hemodiafiltration is never investigated. Previous studies have primarily observed unchanged glucagon and GIP concentrations in the blood after conventional hemodialysis. One study showed a 30% decrease in GIP concentration after hemodialysis, but the detected change probably reflects altered metabolism due to the treatment as the dialysis technique at the time was too inefficient to remove peptides significantly. Assays for the analysis of incretin hormones have also become considerably more specific and now differentiate between the active hormones and their inactive intermediate metabolites.

In recent years there has been a growing development of drugs that increase the endogenous produced incretin hormones. Linagliptin, launched in 2011, is the only one that is approved for patients with ESRD since it is not cleared renally and therefore does not require a change in dosage. However, the elimination of incretin hormones in dialysis patients is sparingly studied both during and between dialysis treatments.

研究设计

研究类型
Observational
观察模型
Case Only
时间视角
Prospective

入排标准

年龄范围
18 Years 至 90 Years(Adult, Older Adult)
性别
All
接受健康志愿者

入选标准

  • Aged 18-90 years
  • Dialysis-dependent ESRD for more than 3 months
  • Regular treatment with either hemodialysis or hemodiafiltration
  • A well functioning arteriovenous fistula
  • Fistula flow ≥ 400 ml/min

排除标准

  • Diabetes mellitus
  • Impaired fasting glucose (fasting plasma glucose ≥ 6.1 mmol/l)
  • Current illness requiring admission to the hospital
  • Significant acidosis before dialysis (standardized bicarbonate < 20 mmol/l)
  • Anemia (B-Hemoglobin < 6,0 mmol/l)
  • Known allergy to Paracetamol
  • Medical treatment with compounds of known diabetogenic and / or insulin secretion inhibitory effect, including steroids and calcineurin inhibitors.
  • Bowel resection or other major surgery of the gastrointestinal tract
  • Current malignancy not including basal cell carcinoma

结局指标

主要结局

Clearance of total GIP

时间窗: 2 hours into dialysis

Clearance,K, is defined as K=Qb\*(Ca-Cv)/Ca+Qf\*Cv/Ca where Qb is the effective blood flow, Ca is the concentration before the filter, Cv is the concentration after the filter and Qf is the ultrafiltration flow.

Clearance of total GLP-1

时间窗: 2 hours into dialysis

Clearance,K, is defined as K=Qb\*(Ca-Cv)/Ca+Qf\*Cv/Ca where Qb is the effective blood flow, Ca is the concentration before the filter, Cv is the concentration after the filter and Qf is the ultrafiltration flow.

Clearance of glucagon

时间窗: One hour into dialysis

Clearance,K, is defined as K=Qb\*(Ca-Cv)/Ca+Qf\*Cv/Ca where Qb is the effective blood flow, Ca is the concentration before the filter, Cv is the concentration after the filter and Qf is the ultrafiltration flow.

次要结局

  • Change of insulin clearance at 2 hours into dialysis(Baseline and 2 hours into dialysis)
  • Change of insulin clearance at 3 hours into dialysis(Baseline and 3 hours into dialysis)
  • The percentage of cleared hormone present in the dialysate(One or two hours into the dialysis)
  • Change of insulin clearance at 4 hours into dialysis(Baseline and 4 hours into dialysis)
  • Change of hormone concentrations(Baseline and 1 hour into dialysis)

研究者

发起方
Bo Feldt-Rasmussen
申办方类型
Other
责任方
Sponsor Investigator
主要研究者

Bo Feldt-Rasmussen

MD DMSc

Rigshospitalet, Denmark

研究点 (1)

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