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V Schettler

Publications and source records attributed to V Schettler.

18 recordsLinked to original sources

No acute impact of lipid apheresis treatment on free radical scavenging enzyme gene expression in white blood cells.

BACKGROUND: Lipid apheresis (LA) treatment has been suggested to cause oxidative stress. Defense against oxygen-radical-mediated damage is provided by nonenzymatic and enzymatic antioxidants. In the present investigation we have investigated whether gene expression of free radical scavenging enzymes (FRSE) is affected in leukocytes of patients undergoing LDL-apheresis. MATERIALS AND METHODS: For this purpose cellular glutathione peroxidase (GPx-1), phospholipid glutathione peroxidase (GPx-4), glutathione reductase (GSSG-R), glutathione synthetase (GSH-S), Cu/Zn-superoxide dismutase (SOD-1) and catalase (CAT) mRNA expression were followed at the start (SA) and immediately after (EA) LA treatment (n = 25). Gene expression was determined by quantitative RT-PCR with the LightCycler(R) instrument (Roche Diagnostics, Mannheim, Germany) and transcription elongation factor-2 as reference gene. RESULTS: The expression of GPx-1, GPx-4, GSSG-R, GSH-S, SOD-1, CAT mRNA was not affected by a single LA treatment. Free radical scavenging enzymes mRNAs were significantly (P < 0.05) increased in the LA patients (GPx-1: 2.00 +/- 1.37; GPx-4: 0.52 +/- 0.46; GSSG-R: 0.07 +/- 0.03; GSH-S: 0.04 +/- 0.03; SOD-1: 1.12 +/- 0.74; CAT: 0.15 +/- 0.07) when compared with 26 healthy blood donors (GPx-1: 1.1 +/- 0.6; GPx-4: 0.35 +/- 0.19; GSSG-R: 0.02 +/- 0.01; GSH-S: 0.03 +/- 0.01; SOD-1: 0.16 +/- 0.08; CAT: 0.09 +/- 0.05; mean +/- SD). CONCLUSIONS: These results show that the LA procedure does not acutely affect the antioxidant defense system on the gene level but suggests that the chronic stress resulting from hyperlipidaemia and/or LA may cause FRSE gene induction.

Adult↗

No acute impact of haemodialysis treatment on free radical scavenging enzyme gene expression in white blood cells.

OBJECTIVE: Oxidative stress has been implicated in the side-effects caused by haemodialysis (HD) treatment. DESIGN: In the present study we have investigated whether gene expression of the enzymatic defence system provided by cellular glutathione peroxidase (GPx-1), phospholipid glutathione peroxidase (GPx-4), glutathione reductase (GSSG-R), glutathione synthethase (GSH-S), Cu/Zn-superoxide dismutase (SOD-1) and catalase (CAT) is affected by HD. The GPx-1, GPx-4, GSSG-R, GSH-S, SOD-1 and CAT mRNA were determined in white blood cells by quantitative reverse transcriptase-polymerase chain reaction with the LightCycler instrument and transcription elongation factor-2 as reference gene at the start (SD) and immediately after (ED) dialysis treatment (n = 36). In a subgroup (n = 10), messenger RNA (mRNA) expression was determined hourly during a 5 h HD. RESULTS: The expression of GPx-1, GPx-4, GSSG-R, GSH-S, SOD-1 and CAT mRNA was not affected by a single HD treatment. All mRNAs were significantly (P < 0.05) increased in HD patients [median (16. percentiles (perc.); 84. perc.)]: GPx-1: 2.18 (0.89; 3.23); GPx-4: 0.41 (0.26; 0.74); GSSG-R: 0.04 (0.02; 0.10); GSH-S: 0.04 (0.02; 0.08); SOD-1: 0.32 (0.20; 0.62); CAT: 0.12 (0.06; 0.18) when compared with healthy blood donors (GPx-1: 0.91 (0.60; 1.44); GPx-4: 0.27 (0.16; 0.43); GSSG-R: 0.02 (0.01; 0.02); GSH-S: 0.02 (0.02; 0.04); SOD-1: 0.15 (0.10; 0.18); CAT: 0.07 (0.04; 0.16). CONCLUSIONS: These results show that the HD procedure does not acutely affect the antioxidant defence system on the gene level but suggest that the chronic stress caused by uraemia and/or HD may cause gene induction of the enzymatic defence system.

Aged↗

First steps toward the establishment of a German low-density lipoprotein-apheresis registry: recommendations for the indication and for quality management.

New recommendations for the indication of treatment with selective extracorporeal plasma therapy low-density lipoprotein apheresis (LDL-apheresis) in the prevention of coronary heart disease are urgently needed. The following points are the first results of the ongoing discussion process for indications for LDL-apheresis in Germany: all patients with homozygous familial hypercholesterolemia with functional or genetically determined lack or dysfunction of LDL receptors and plasma LDL cholesterol levels >13.0 mmol/L (>500 mg/dL); patients with coronary heart disease (CHD) documented by clinical symptoms and imaging procedures in which over a period of at least 3 months the plasma LDL cholesterol levels cannot be lowered below 3.3 mmol/L (130 mg/dL) by a generally accepted, maximal drug-induced and documented therapy in combination with a cholesterol-lowering diet; and patients with progression of their CHD documented by clinical symptoms and imaging procedures and repeated plasma Lp(a) levels >60 mg/dL, even if the plasma LDL cholesterol levels are lower than 3.3 mmol/L (130 mg/dL). Respective goals for LDL cholesterol concentrations for high-risk patients have been recently defined by various international societies. To safely put into practice the recommendations for LDL-apheresis previously mentioned, standardized treatment guidelines for LDL-apheresis need to be established in Germany that should be supervised by an appropriate registry.

Cholesterol, LDL↗

Reduction of hepatitis C virus load by H.E.L.P.-LDL apheresis.

The association of HCV with apolipoprotein B containing lipoproteins has been observed and this led to the assumption that the LDL receptor may also serve as a candidate receptor for HCV. H.E.L.P.-LDL apheresis is suggested to be an effective and rapid tool to safely eliminate apolipoprotein B containing lipoproteins. In this pilot study, we have investigated whether H.E.L.P. treatment would reduce HCV load in five patients, all infected for more than 4 years with HCV and resistant against established anti-HCV therapy (interferon, ribaverin). HCV-RNA was determined by RT-PCR in plasma immediately before the start of apheresis (SA) and after treatment of 2500 mL plasma (AA). H.E.L.P. apheresis led to a mean decrease of 77.3% (16th percentile 36.5%, 84th percentile 89.6%) of HCV-RNA when AA values were compared to SA values. This decline was reproducible during nine treatment procedures, but was not correlated to the decrease in LDL cholesterol. This investigation shows for the first time that HCV load can be reduced by H.E.L.P. apheresis, which is an established and approved therapy for hypercholesterolemia. Even though the efficiency of viral load reduction varied between single procedures and did not correlate to LDL removal, this extracorporeal therapy opens the possibility to treat patients with established immune modulatory and antiviral therapy in the interval between two apheresis procedures.

Blood Component Removal↗

Polarized function of thick ascending limbs of Henle cells in osmoregulation.

BACKGROUND: Organic osmolytes are necessary for osmoregulation in mammalian kidney. Since renal epithelial cells in many cases possess specific mechanisms both for uptake and osmotically regulated release, we investigated their localization in polarized cells. METHODS: An immortalized epithelial cell line derived from the thick ascending limb of Henle's loop (TALH) was used to examine the transport characteristics of the apical and basolateral plasma membranes for osmotic regulation of organic osmolytes. Cells were cultured on filters in a two-compartment chamber. RESULTS: In culture under hypertonic conditions the TALH cells accumulated in the following balance: sorbitoverline> betaine = myo-inositoverline> glycerophosphoryl choline (GPC). When extracellular osmolarity was decreased, then sorbitol was released on the apical side, whereas betaine and myo-inositol efflux occurred on the basolateral side. GPC release showed no preference of either side. Taurine did not seem to be necessary for osmoregulation under these conditions. Osmotically regulated myo-inositol and betaine uptake was located on the apical side, and choline uptake took place on both sides equally. CONCLUSION: These results show that in renal epithelial cells, both osmotically induced release and the uptake of organic osmolytes are divided between the apical and the basolateral sides. This might be important for volume regulation.

Animals↗

Effect of heparin-induced extracorporeal low-density lipoprotein precipitation (HELP) apheresis on hepatitis C plasma virus load.

Association of the hepatitis C virus (HCV) with apolipoprotein B containing lipoproteins has been suggested, and this led to the concept that the low-density lipoprotein (LDL) receptor may also serve as a candidate receptor for HCV uptake into the liver. We have investigated whether heparin-induced extracorporeal LDL precipitation (HELP) LDL apheresis treatment reduces HCV plasma load in 6 patients, all infected for more than 4 years with HCV and resistant against established anti-HCV therapy. HELP apheresis treatment caused an HCV-RNA decrease of 77.3% in mean. This decline was not correlated with LDL-cholesterol reduction. HCV-RNA was retained on the HELP filter as shown for 1 patient. The effect of RNA lowering was only transient due to the high turnover of HCV. However, HELP apheresis may open a window of opportunity for an immune-modulating and antiviral therapy in the interval between two apheresis procedures in patients with high virus load.

Anticoagulants↗

Acute effect of H.E.L.P. treatment on radical scavenging enzyme activities, total glutathione concentrations in granulocytes, and selenium in plasma.

BACKGROUND: It has been suggested that granulocytes are activated on artificial surfaces such as dialyzer membranes or by plasma separation procedures resulting in the generation of free radicals. We reported recently that free radical scavenging enzyme (FRSE) activities of red blood cells obtained from patients undergoing hemodialysis and LDL-apheresis (LA) do not reflect an acute oxidative stress. However, because mature red cells are free of DNA and RNA, enzymes cannot be regulated on the gene level. In contrast, granulocytes are nucleated cells in which genes can be regulated, e. g. by redox sensitive transcription factors activated by extracellular oxidative stress. Therefore, granulocyte FRSE may better reflect acute oxidative stress caused by extracorporeal treatment. MATERIALS AND METHODS: Hyperlipidemic patients (n = 18) with coronary heart disease (CHD) were treated with the Heparin-induced-Extracorporeal-LDL-Precipitation (H.E.L.P.) system. Glutathione peroxidase (GSH-Px), glutathione reductase (GSSG-R), superoxide dismutase (SOD) activities, and total glutathione were determined in granulocytes before and immediately after a single LA treatment. Selenium (Se) concentrations were assessed in plasma. RESULTS: As a result of the H.E.L.P. treatment GSSG-R activity was significantly induced (+ 20%) and the GSH concentration increased (+ 41%) in granulocytes. GSH-Px activity in granulocytes (- 19%) and Se in plasma (- 27%) were significantly reduced whereas SOD activity in granulocytes was not affected by the H.E.L.P. procedure. CONCLUSION: These results show that the defence against oxygen radicals in granulocytes is affected but not severely compromised in patients undergoing regular H.E.L.P-LDL-apheresis treatment, which points to the safety of this system with respect to oxidative stress.

Adult↗

[Plaque stabilization by LDL apheresis?].

Vulnerable lipid-rich plaques are often the cause of atherothrombotic events leading to unstable angina and/or to acute myocardial infarction. Consequent long-term LDL-lowering by drugs as shown by the most important intervention studies lead to plaque stabilization as shown by the significant reduction of myocardial reinfarction. First studies in patients undergoing regular extracorporeal LDL-elimination indicate, that clinical events might be reduced much earlier as by drug therapy alone: A more than 60% reduction of LDL at weekly intervals is obviously associated with an early regression of lipid-rich vascular lesions. LDL-apheresis, mainly by HELP and by double filtration reduces the shear-stress of the flowing blood on vulnerable plaques either by its effect on plasmaviscosity and/or on the vasomotoric reserve thus leading to a lower peripheral arterial resistance. Furthermore oxidized LDL, which might counteract plaque stabilisation by its inflammatory effects are effectively eliminated by LDL-apheresis. The affinity of different LDL-apheresis procedures to coagulation factors normalizes hypercoagulatory states thus avoiding atherothrombotic events at the site of vulnerable or erosive plaques.

Blood Coagulation Factors↗

Review: the oxidant/antioxidant balance during regular low density lipoprotein apheresis.

Low density lipoprotein (LDL) apheresis is a safe procedure to treat severe hypercholesterolemia in patients with chronic heart disease (CHD). However, both hypercholesterolemia and extracorporeal treatment have been associated with oxidative stress. Even though LDL lowering has been proven to reduce CHD, the oxidative modification of LDL has been suggested to render these lipoproteins more atherogenic. It is therefore important to know whether LDL apheresis is safe with respect to oxidative stress including LDL oxidation. The contact of living cells such as leukocytes with artificial surfaces during extracorporeal treatment induces the liberation of various chemokines and cytokines as well as oxygen-derived radicals also known as respiratory burst. These effects justify the consideration of leukocyte activation resulting from extracorporeal treatment as an inflammatory reaction. In extracorporeal circuits such as those used for hemodialysis, the release of oxygen radicals has been shown and depends on the fiber material used in the dialyzer membranes. Reactive oxygen radicals can interact with different cell components such as carbohydrates, DNA, proteins, and lipids. Antioxidants in the form of low molecular weight molecules such as glutathione or radical scavenging enzymes such as superoxide dismutase offer protection against the damaging effects of prooxidants. The disturbed balance between prooxidants and antioxidants is considered as oxidative stress. Therefore, either an increase in oxygen radical formation or a decrease of antioxidants will lead to oxidative stress. During LDL apheresis, a decrease of low molecular weight antioxidants has been reported. In contrast, we have observed an increase in plasma glutathione concentrations but no severe reduction in the activity of antioxidant enzymes in plasma, red cells, or granulocytes, which may explain the lack of plasma lipid peroxidation shown during this kind of extracorporeal treatment. In addition, LDL isolated at the end of apheresis procedures are more resistant to oxidation. These findings suggest that LDL apheresis is safe with respect to radical mediated injury.

Antioxidants↗

Activity of free radical scavenging enzymes in red cells and plasma of patients undergoing extracorporeal low-density lipoprotein apheresis.

There is evidence that reactive oxygen species (ROSs) are generated in extracorporeal circuits. Free radical scavenging enzymes (FRSEs) such as glutathione reductase (GSSG-R), glutathione peroxidase (GSH-Px), and superoxide dismutase (SOD) protect against the damaging effect of ROSs. The influence of extracorporeal treatment on FRSE activity was investigated in the plasma and red blood cells (RBCs) of 21 patients undergoing regular low-density lipoprotein (LDL) apheresis. The FRSEs GSSG-R, GSH-Px, and SOD were measured. Determinations were made before and after a single treatment. Because all apheresis patients suffered from coronary heart disease (CHD), 201 CHD patients and 90 individuals without CHD, neither group undergoing apheresis, served as controls. In apheresis patients, GSH-Px (33.9+/-8.2 U/g Hb) and GSSG-R (7.6+/-0.9 U/g Hb) activities were increased whereas SOD activity (5.4+/-1.5 U/g Hb) was decreased in RBCs before a single treatment compared to controls. Plasma FRSEs of apheresis patients were not different from those of controls. There was no effect of a single treatment on FRSEs in RBCs. However, a significant decrease in plasma GSH-Px activity (209.9+/-24.9 U/ml) due to the extracorporeal treatment was observed. These data show that long-term extracorporeal therapy with LDL apheresis modulates the activity of antioxidant enzymes in RBCs whereas a single treatment was without major effect on FRSE activity in RBCs and plasma, except for plasma GSH-Px.

Adult↗

Oxidative stress during dialysis: effect on free radical scavenging enzyme (FRSE) activities and glutathione (GSH) concentration in granulocytes.

BACKGROUND: Living cells are protected by free radical scavenging enzymes against oxygen radical-mediated damage. It has been suggested that granulocytes are activated on the surface of dialyser membranes, resulting in the generation of free radicals. We have recently reported a lack of plasma lipid peroxidation and unchanged glutathione peroxidase (GSH-Px) as well as glutathione reductase (GSSG-R) activities in red blood cells of haemodialysis patients. However, because mature red cells are free of DNA and RNA, free radical scavenging enzymes (FRSE) cannot be regulated on the gene level in response to an acute oxidative stress. In contrast to erythrocytes, granulocytes are nucleated cells and FRSE protein concentrations can therefore be modulated. METHODS: GSH-Px, GSSG-R, superoxide dismutase (SOD) activities and total glutathione (GSH) were determined spectrophotometrically using a Cobas Fara semi-automatic analyser in granulocytes of 31 healthy blood donors and in 28 patients with chronic renal failure (CRF) for more than 6 months before as well as immediately after a single dialysis treatment. Patients were treated either by haemodialysis (n = 17) using low-flux polysulphone membranes or by haemofiltration (n= 1l) usings high-flux polysulphone membranes. RESULTS: Compared to healthy controls, SOD and GSSG-R activities were increased in granulocytes of HD and HF patients, GSH and GSH-Px were decreased before a single treatment. After dialysis SOD and GSH-PX activities were significantly induced by both HD and HF whereas GSSG-R activities and GSH were decreased. CONCLUSIONS: These results show that the enzymatic defence against oxygen radicals can be induced in granulocytes of patients undergoing regular dialysis treatment, whereas the non-enzymatic defence is compromised as shown by decreased GSH concentrations, both suggesting increased oxidative stress.

Adult↗

Lack of plasma lipid peroxidation during LDL-apheresis by heparin-induced extracorporeal LDL-precipitation.

The heparin-induced extracorporeal precipitation of low density lipoproteins (HELP) is a well established clinical apheresis procedure to markedly reduce cholesterol levels. The biocompatibility of this filter system was investigated by the determination of lipid peroxidation products. Both lipid hydroperoxides and thiobarbituric acid reactive substances (TBARS) were determined before, during and after 38 aphereses in 21 patients undergoing regular HELP treatment. Although HELP patients had significantly elevated TBARS compared to 93 healthy controls (3.13 +/- 0.64 vs. 1.66 +/- 0.50 mumol L-1; P < 0.01), no significant differences were observed compared to either 104 patients suffering from angiographically confirmed coronary heart disease (3.42 +/- 0.81 mumol L-1; P > 0.05 vs. HELP patients) or 38 aged-matched hyperlipidaemic patients (3.30 +/- 0.75 mumol L-1; P > 0.05 vs. HELP patients), neither of which were included in the HELP programme. No lipid hydroperoxides were detected in the plasma of HELP patients either before or after the extracorporeal treatment. After the LDL-apheresis TBARS were significantly decreased (2.60 +/- 0.52 mumol L-1) compared to the values before the treatment (P < 0.01). There was no evidence for the formation of lipid hydroperoxides within the HELP circuit. It is suggested, therefore, that plasma lipids are not oxidized by the HELP procedure.

Adult↗

Plasma lipids are not oxidized during hemodialysis.

Lipid peroxidation products, both lipid hydroperoxides and thiobarbituric acid reactive substances (TBARS) were determined in the plasma of 31 uremic patients treated with maintenance hemodialysis. Whereas patients had significantly elevated TBARS compared to 93 healthy controls (4.25 +/- 1.53 vs. 1.66 +/- 0.50 mumol/l; p < 0.01) lipid hydroperoxides were not detected in the plasma of patients before dialysis. After hemodialysis, a slight increase in TBARS was observed (4.50 +/- 1.97 mumol/l, p > 0.01). However, when the TBARS were corrected for hemoconcentration by relating TBARS to the plasma cholesterol concentrations a statistically significant decrease of TBARS was observed (1.02 +/- 0.63 mumol TBARS/mmol cholesterol vs. 0.84 +/- 0.60 mumol TBARS/mmol cholesterol; p < 0.01) after 240 min of hemodialysis. There was no evidence for the formation of plasma lipid hydroperoxides in the extracorporeal circulation. It is therefore suggested that elevated TBARS in chronic renal failure are not caused by the dialysis therapy.

Adult↗

Determination of lipid hydroperoxides in serum iodometry and high performance liquid chromatography compared.

It is postulated that lipid peroxidation plays a role in the pathogenesis of a variety of diseases. Efforts have therefore been made to develop reliable and practicable procedures for quantifying lipid peroxidation products such as lipid hydroperoxides in biological specimens. An iodometric cholesterol colour reagent (Merck, Darmstadt, Germany) can be used to measure lipid hydroperoxides in isolated low density lipoproteins without lipid extraction. This method has been validated with respect to its analytical performance and suitability for serum samples by comparing it with a high performance liquid chromatography technique. The method was found to have acceptable performance characteristics with aqueous fatty acid hydroperoxide solutions (linoleic acid) and isolated low density lipoproteins, but it cannot be applied to native serum samples without extraction of lipids.

Chromatography, High Pressure Liquid↗