Related Experiment Video
Updated: Aug 26, 2026

Three-Dimensionally Printed Microfluidic Cross-flow System for Ultrafiltration/Nanofiltration Membrane Performance Testing
Published on: February 13, 2016
Pyrogen transfer across high- and low-flux hemodialysis membranes
Viktoria Weber1, Ingrid Linsberger, Eva Rossmanith
1Center for Biomedical Technology, Danube University Krems, Krems, Austria. viktoria.weber@donau-uni.ac.at
Abstract:
The extent to which bacterial products from contaminated dialysate enter a patient's blood depends upon the type and permeability of the hemodialysis membrane in use. This study was performed to assess the transfer of pyrogenic substances across both high- and low-flux membranes (DIAPES, Fresenius Polysulfone, Helixone, Polyamide S). All experiments were carried out in the saline-saline model. The dialysate pool was contaminated either with purified lipopolysaccharide (LPS) (250 and 500 EU/mL) or with sterile bacterial culture filtrates (20 EU/mL), and in vitro dialysis was performed under diffusive and convective conditions. A significant transfer of endotoxin was observed for both low- and high-flux DIAPES challenged with either LPS or with bacterial culture filtrates. Under identical conditions, no transfer of endotoxins was detectable across Fresenius Polysulfone and Helixone upon challenge with purified LPS. With bacterial culture filtrates, endotoxin concentrations for Polyamide S and Fresenius Polysulfone were about 10% and 1%, respectively, of those measured for DIAPES, whereas no transfer of endotoxin was detectable for Helixone. Using an alternative assay (induction of interleukin-1 receptor antagonist, IL-1Ra, in whole blood), only the DIAPES membrane showed the passage of cytokine-inducing substances. Thus, when saline is present in both the blood and dialysate compartments (i.e., the situation during predialysis priming procedures), dialysis membranes differ profoundly with respect to their permeability to endotoxins.
Insights
Dialysis membrane permeability to bacterial endotoxins varies significantly. The DIAPES membrane allowed significant endotoxin transfer, unlike Fresenius Polysulfone and Helixone, highlighting crucial differences in hemodialysis safety.
Area of Science:
- Nephrology
- Biomedical Engineering
- Microbiology
Background:
- Hemodialysis membranes vary in permeability, influencing bacterial product transfer from dialysate to blood.
- Pyrogenic substances, like endotoxins, pose a risk during hemodialysis if membranes are permeable.
Purpose of the Study:
- To assess the pyrogenic substance transfer across different hemodialysis membranes (DIAPES, Fresenius Polysulfone, Helixone, Polyamide S).
- To compare the permeability of low- and high-flux membranes to lipopolysaccharide (LPS) and bacterial culture filtrates.
Main Methods:
- In vitro dialysis experiments using a saline-saline model.
- Contamination of dialysate with purified LPS or bacterial culture filtrates.
- Measurement of endotoxin transfer and cytokine-inducing substance passage.
Main Results:
- Significant endotoxin transfer occurred across DIAPES membranes with both LPS and bacterial filtrates.
- No detectable endotoxin transfer across Fresenius Polysulfone and Helixone with LPS.
- Polyamide S and Fresenius Polysulfone showed minimal endotoxin transfer with bacterial filtrates, while Helixone showed none.
- Only DIAPES allowed passage of cytokine-inducing substances, confirmed by IL-1Ra induction.
Conclusions:
- Hemodialysis membranes exhibit profound differences in endotoxin permeability.
- Membrane selection is critical for preventing pyrogenic substance transfer during hemodialysis, especially during priming.
- DIAPES membranes present a higher risk for endotoxin transfer compared to Fresenius Polysulfone and Helixone.
Related Concept Videos
Dialysis
Protein Diffusion in the Membrane
Peritoneal Dialysis I: Introduction and Procedure
