Nalecz Institute of Biocybernetics and Biomedical Engineering, Polish Academy of Sciences, Ks. Trojdena 4, 02-109, Warsaw, Poland.
Division of Renal Medicine and Baxter Novum, Department of Clinical Science, Intervention and Technology, Karolinska Institute, Stockholm, Sweden.
Sci Rep. 2020 Oct 30;10(1):18736. doi: 10.1038/s41598-020-75687-1.
The semipermeable capillary walls not only enable the removal of excess body water and solutes during hemodialysis (HD) but also provide an essential mechanism for maintaining cardiovascular homeostasis. Here, we investigated transcapillary transport processes on the whole-body level using the three-pore model of the capillary endothelium with large, small and ultrasmall pores. The transcapillary transport and cardiovascular response to a 4-h hemodialysis (HD) with 2 L ultrafiltration were analyzed by simulations in a virtual patient using the three-pore model of the capillary wall integrated in the whole-body compartmental model of the cardiovascular system with baroreflex mechanisms. The three-pore model revealed substantial changes during HD in the magnitude and direction of transcapillary water flows through small and ultrasmall pores and associated changes in the transcapillary convective transport of proteins and small solutes. The fraction of total capillary hydraulic conductivity attributed to ultrasmall pores was found to play an important role in the transcapillary water transport during HD thus influencing the cardiovascular response to HD. The presented model provides a novel computational framework for a detailed analysis of microvascular exchange during HD and as such may contribute to a better understanding of dialysis-induced changes in blood volume and blood pressure.
半透性毛细血管壁不仅在血液透析(HD)期间能够去除多余的体水和溶质,而且还为维持心血管内稳态提供了一个重要的机制。在这里,我们使用具有大、小和超小孔的毛细血管内皮的三孔模型,在全身水平上研究了跨毛细血管转运过程。使用整合了心血管系统全身室模型中的毛细血管壁三孔模型和压力反射机制的虚拟患者,通过模拟分析了在 4 小时 HD 期间(使用 2 L 超滤液)的跨毛细血管转运和心血管反应。三孔模型揭示了在 HD 期间,通过小孔和超小孔的跨毛细血管水流的大小和方向发生了实质性变化,以及与蛋白质和小溶质的跨毛细血管对流转运相关的变化。发现总毛细血管水力传导率归因于超小孔的分数在 HD 期间的跨毛细血管水转运中起着重要作用,从而影响 HD 期间的心血管反应。所提出的模型为 HD 期间微血管交换的详细分析提供了一个新的计算框架,从而可能有助于更好地理解透析引起的血容量和血压变化。