Low-Flow Polysulfone Hemodialysis Alters Lipoprotein Parameters, Paraoxonase Activity and <i>in Vitro</i> Incorporation of Phospholipids — Oak Academic Publishing
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Low-Flow Polysulfone Hemodialysis Alters Lipoprotein Parameters, Paraoxonase Activity and <i>in Vitro</i> Incorporation of Phospholipids
PGBSMI/Goncalo Moniz Research Center (CPqGM), FIOCRUZ Foundation Center, Salvador, Brazil
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Clinical Biochemistry Laboratory, Department of Clinical and Toxicological Analysis, Faculty of Pharmacy, Federal University of Bahia/UFBA, Salvador, Brazil
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Ana Neri Hospital, SESAB and Federal University of Bahia/UFBA, Salvador, Brazil
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Ana Neri Hospital, SESAB and Federal University of Bahia/UFBA, Salvador, Brazil
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Naval Hospital of Salvador, Brazilian Marine Forces, Salvador, Brazil
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Clinical Biochemistry Laboratory, Department of Clinical and Toxicological Analysis, Faculty of Pharmacy, Federal University of Bahia/UFBA, Salvador, Brazil
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Laboratory of Molecular Biology and Genetics at Center of Agricultural, Environmental and Biological Sciences (CCAAB-UFRB), Cruz das Almas, Brazil
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PGBSMI/Goncalo Moniz Research Center (CPqGM), FIOCRUZ Foundation Center, Salvador, Brazil
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Department of Biofunction, Health Institute of Science, Federal University of Bahia/UFBA, Salvador, Brazil
1 PGBSMI/Goncalo Moniz Research Center (CPqGM), FIOCRUZ Foundation Center, Salvador, Brazil
2 Clinical Biochemistry Laboratory, Department of Clinical and Toxicological Analysis, Faculty of Pharmacy, Federal University of Bahia/UFBA, Salvador, Brazil
3 Ana Neri Hospital, SESAB and Federal University of Bahia/UFBA, Salvador, Brazil
4 Ana Neri Hospital, SESAB and Federal University of Bahia/UFBA, Salvador, Brazil
5 Naval Hospital of Salvador, Brazilian Marine Forces, Salvador, Brazil
6 Clinical Biochemistry Laboratory, Department of Clinical and Toxicological Analysis, Faculty of Pharmacy, Federal University of Bahia/UFBA, Salvador, Brazil
7 Laboratory of Molecular Biology and Genetics at Center of Agricultural, Environmental and Biological Sciences (CCAAB-UFRB), Cruz das Almas, Brazil
8 PGBSMI/Goncalo Moniz Research Center (CPqGM), FIOCRUZ Foundation Center, Salvador, Brazil
9 Department of Biofunction, Health Institute of Science, Federal University of Bahia/UFBA, Salvador, Brazil
End stage-renal-disease (ESRD) is associated with dyslipidemia and premature atherosclerosis. The study evaluates the effect of hemodialysis (HD) on HDL-remodeling between pre- and post-HD. Was conducted a cross-sectional study with 50 ESRD male patients, undergoing HD at Ana Neri Hospital, Salvador, Brazil. All individuals were on HD for at least 3 months, into a three sessions protocol for 3 - 4 hours per week, with a polysulfone low-flow basic-dialyzing-membrane and unfractionated-heparin. HDL Phospholipid-incorporation was measured by 14 C-PL-scintillation-counting, expressed as % 14 C-PL/mL/hour. Paraoxonase (PON-1) activity was measured by spectrophotometry using paraoxon as substrate. Cardiovascular risk ratios and atherogenic index of plasma were calculated. Total cholesterol, HDL-C and non-HDL-C increased at post-HD on all age groups, but without triglycerides (TG) changes. TG/HDL-C decreased in 30 - 39 and 40 - 49 year (y) at post-HD (p < 0.05). LDL-C/apoB increased in >60 y, after HD (p < 0.05). HDL-C/apo-AI increased in 40 - 49 y (p < 0.05) and >60 (p < 0.01). On the other hand, non-HDL-C/HDL-C reduced in 40 - 49 and >60 y, at post-HD (p < 0.05). The linear-correlation between % 14 C-PL-incorporation and non-HDL-C/HDL-C was negative in 30 - 39 y, both at pre-HD (r = -0.90; p = 0.002) and post-HD (r = -0.78; p = 0.022). Linear-correlation between PON-1 and % 14 C-PL- incorporation was positive in >60 y, both at pre- (r = 0.63; p = 0.029) and post-HD (r = 0.65; p = 0.022). PON-1 activity increased at pre- (59 ± 30) and post-HD (73 ± 38) in 50 - 59 y (p < 0.05). The % 14 C-PL-incorporation was reduced in >60 y (p < 0.05), when compared to pre- and post-HD. ESRD patients undergoing HD shows important changes on lipid-profile, PON-1-activity, cardiac risk ratios and HDL-remodeling. These results demonstrate the influence of HD with a polysulfone low-flow basic-dialyzing-membrane and unfractionated-heparin on lipoprotein metabolism.
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