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K-H Han

Publications and source records attributed to K-H Han.

4 recordsLinked to original sources

Oxidative stress during peritoneal dialysis: implications in functional and structural changes in the membrane.

Progressive peritoneal fibrosis, membrane hyperpermeability, and ultrafiltration failure have been observed in patients on long-term peritoneal dialysis (PD). The present study tested the hypothesis that reactive oxygen species (ROS) generated by conventional PD solution (PDS) mediate functional and structural alterations of peritoneal membrane in vivo. Sprague-Dawley rats were randomized to control, PDS, PDS with an antioxidant, and PDS with an angiotensin II (Ang II) receptor blocker. Commercial PDS containing 3.86% glucose (20-30 ml) with or without N-acetylcystein (NAC) 10 mM or losartan 5 mg/kg was administered intraperitoneally twice a day for 12 weeks. Control rats received sham injection. Rats treated with PDS had significantly lower drain volume and D(4)/D(0) glucose, but higher D(4)/P(4) creatinine and increased membrane thickness and endothelial NOS (eNOS) expression compared to control rats. Omental transforming growth factor (TGF)-beta1, vascular endothelial growth factor (VEGF), collagen I, and heat-shock protein (hsp) 47 expression and lipid peroxide levels and dialysate VEGF and Ang II concentrations were significantly increased in rats treated with PDS compared to control. All of these changes were prevented by both NAC and losartan. In conclusion, the present study demonstrates that ROS generated by conventional PDS are, in large part, responsible for peritoneal fibrosis and membrane hyperpermeability. We suggest that antioxidants or Ang II receptor blockers may allow better preservation of the structural and functional integrity of the peritoneal membrane during long-term PD.

Angiotensin II Type 1 Receptor Blockers↗

Paramagnetic capture mode magnetophoretic microseparator for blood cells.

The paper presents the characterisation of a continuous paramagnetic capture (PMC) mode magnetophoretic microseparator for separating red and white blood cells from whole blood based on their native magnetic properties. The PMC microseparator separates the blood cells using a high-gradient magnetic separation method without the use of additives such as magnetic tagging. The microseparator is fabricated using microfabrication technology, enabling the integration of micro-scale magnetic flux concentrators in an aqueous micro-environment. Experimental results show that the PMC microseparator can continuously separate out 91.1% of red blood cells from whole blood within 5 min, using an external magnetic flux of 0.2 T from a permanent magnet. Monitoring of white blood cells dyed with a fluorescent probe shows that 87.7% of white blood cells are separated out by the 0.2 T external magnetic flux applied to the PMC microseparator.

Animals↗

Induced magnetic ordering by proton irradiation in graphite.

We provide evidence that proton irradiation of energy 2.25 MeV on highly oriented pyrolytic graphite samples triggers ferro- or ferrimagnetism. Measurements performed with a superconducting quantum interferometer device and magnetic force microscopy reveal that the magnetic ordering is stable at room temperature.

Journal Article↗