| Literature DB >> 25961007 |
Adam Oleszko1, Sylwia Olsztyńska-Janus2, Tomasz Walski1, Karolina Grzeszczuk-Kuć1, Jolanta Bujok3, Katarzyna Gałecka1, Albert Czerski4, Wojciech Witkiewicz3, Małgorzata Komorowska1.
Abstract
During a haemodialysis (HD), because of the contact of blood with the surface of the dialyser, the immune system becomes activated and reactive oxygen species (ROS) are released into plasma. Particularly exposed to the ROS are lipids and proteins contained in plasma, which undergo peroxidation. The main breakdown product of oxidized lipids is the malondialdehyde (MDA). A common method for measuring the concentration of MDA is a thiobarbituric acid reactive substances (TBARS) method. Despite the formation of MDA in plasma during HD, its concentration decreases because it is removed from the blood in the dialyser. Therefore, this research proposes the Fourier Transform Infrared Attenuated Total Reflectance (FTIR-ATR) spectroscopy, which enables determination of primary peroxidation products. We examined the influence of the amount of hydrogen peroxide added to lipid suspension that was earlier extracted from plasma specimen on lipid peroxidation with use of TBARS and FTIR-ATR methods. Linear correlation between these methods was shown. The proposed method was effective during the evaluation of changes in the extent of lipid peroxidation in plasma during a haemodialysis in sheep. A measurement using the FTIR-ATR showed an increase in plasma lipid peroxidation after 15 and 240 minutes of treatment, while the TBARS concentration was respectively lower.Entities:
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Year: 2015 PMID: 25961007 PMCID: PMC4417580 DOI: 10.1155/2015/245607
Source DB: PubMed Journal: Biomed Res Int Impact factor: 3.411
Figure 1ATR-FTIR spectra of phospholipids dissolved in chloroform; a decrease in band absorbance derived from chloroform at 756 and 668 cm−1 during the formation of film.
Figure 2FTIR-ATR spectrum of extracted plasma lipids after evaporation of chloroform.
Assignment of organic compounds to bands on the FTIR-ATR spectrum of plasma lipids; ν-stretching vibration, δ-bending vibrations, s-symmetric, as-asymmetric, and sh-shoulder band.
| Wave number/cm−1 | Assignment | Literature | |
|---|---|---|---|
| On recorded spectra | According to literature | ||
| 3370 | 3280–3473 |
| [ |
| 2958 sh | 2952–2959 sh |
| [ |
| 2920 | 2919–2925 |
| [ |
| 2868 sh | 2871–2873 sh |
| [ |
| 2852 | 2850–2855 |
| [ |
| 1738 | 1732–1747 |
| [ |
| 1712 | 1712–1718 |
| [ |
| 1495 sh | 1490 sh |
| [ |
| 1465 | 1464–1468 |
| [ |
| 1377 | 1377–1381 |
| [ |
| 1184 | 1160–1179 |
| [ |
| 1082 | 1075–1090 |
| [ |
| 970 | 967–972 |
| [ |
Figure 3Dependence of change in the ratio of integral band absorbance ν(C=O) with respect to ν as(CH3); upon the concentration of H2O2 in the concentration range from 0 to 20 mM; mean value relative to control sample (N = 3).
Figure 4FTIR-ATR spectra of lipid film, corresponding to the band ν(C=O); increase in band absorbance due to H2O2.
Figure 5Dependence of changes in the ratio of integral band absorbance ν(C=O) with respect to ν as(CH3) upon the concentration of H2O2; mean value relative to control sample ± standard deviation (N = 7).
Figure 6Dependence of changes in TBARS concentration in a sample upon the concentration of H2O2; mean value relative to control sample ± standard deviation (N = 7).
Figure 8Dependence of the amount of peroxidation products relative to control sample (0 min HD) upon duration of the haemodialysis treatment determined by using FTIR-ATR spectroscopy and TBARS (N = 5).
Figure 7Correlation between change of the ratio of integral band absorbance ν(C=O) with respect to ν as(CH3) and change in the concentration of TBARS; mean value relative to control sample ± standard deviation (N = 7).