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A Bifunctional Adsorber Particle for the Removal of Hydrophobic Uremic Toxins from Whole Blood of Renal Failure Patients

机译:双功能吸附剂颗粒从肾衰竭患者全血中去除疏水性尿毒症毒素

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摘要

Hydrophobic uremic toxins accumulate in patients with chronic kidney disease, contributing to a highly increased cardiovascular risk. The clearance of these uremic toxins using current hemodialysis techniques is limited due to their hydrophobicity and their high binding affinity to plasma proteins. Adsorber techniques may be an appropriate alternative to increase hydrophobic uremic toxin removal. We developed an extracorporeal, whole-blood bifunctional adsorber particle consisting of a porous, activated charcoal core with a hydrophilic polyvinylpyrrolidone surface coating. The adsorption capacity was quantified using analytical chromatography after perfusion of the particles with an albumin solution or blood, each containing mixtures of hydrophobic uremic toxins. A time-dependent increase in hydrophobic uremic toxin adsorption was depicted and all toxins showed a high binding affinity to the adsorber particles. Further, the particle showed a sufficient hemocompatibility without significant effects on complement component 5a, thrombin-antithrombin III complex, or thrombocyte concentration in blood in vitro, although leukocyte counts were slightly reduced. In conclusion, the bifunctional adsorber particle with cross-linked polyvinylpyrrolidone coating showed a high adsorption capacity without adverse effects on hemocompatibility in vitro. Thus, it may be an interesting candidate for further in vivo studies with the aim to increase the efficiency of conventional dialysis techniques.
机译:慢性肾脏疾病患者体内会积聚疏水性尿毒症毒素,导致心血管风险大大增加。由于它们的疏水性和它们与血浆蛋白的高结合亲和力,使用当前的血液透析技术清除这些尿毒症毒素受到限制。吸附剂技术可能是增加疏水性尿毒症毒素去除的合适替代方法。我们开发了一种体外全血双功能吸附剂颗粒,该颗粒由多孔的活性炭芯和亲水的聚乙烯吡咯烷酮表面涂层组成。在用白蛋白溶液或血液灌注颗粒后,使用分析色谱法定量吸附能力,每种蛋白或溶液均包含疏水性尿毒症毒素的混合物。描绘了疏水性尿毒症毒素吸附随时间的增加,并且所有毒素均显示出对吸附剂颗粒的高结合亲和力。此外,尽管白细胞计数略有降低,但该颗粒显示出足够的血液相容性,对补体成分5a,凝血酶-抗凝血酶III复合物或体外血液中的血小板浓度没有明显影响。总之,具有交联聚乙烯吡咯烷酮涂层的双功能吸附剂颗粒显示出高吸附能力,而对体外血液相容性没有不利影响。因此,为提高常规透析技术的效率,它可能是用于进一步体内研究的有趣候选物。

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