内皮糖萼:屏障功能与红细胞血流动力学:一个稳态超滤模型,通过由多孔外层和更具选择性的膜相关内层形成的双层。

IF 1 4区 医学 Q4 BIOPHYSICS
Biorheology Pub Date : 2019-01-01 DOI:10.3233/BIR-180198
FitzRoy E Curry, C Charles Michel
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引用次数: 11

摘要

背景:内皮细胞糖萼的超微结构研究显示,细胞表面有一层与血管壁一级超滤膜结构一致的层。理论预测这一层的厚度不可能超过200-300纳米,这一结果与观察结果相一致,即红细胞和大分子被排除在细胞膜1微米或更大的区域之外。目的:确定这种明显的不一致是否可以用一个稳态的糖萼双层运输模型来解释,糖萼双层是由多孔的外层和更有选择性的内层串联而成的。方法:采用水和白蛋白通过两层的耦合通量表达式,通过双层模型描述稳态超滤。结果:白蛋白在多孔层与选择性内层交界面聚集。积累的白蛋白的渗透压通过有效的非搅拌层效应显著地改变了微血管壁的渗透性。结论:该模型对外层渗透性有明显的限制。唯一与测量的稳态滤过率和红细胞通过微血管通量模型相一致的外层特性是白蛋白渗透系数和水力传导性比内层的大一个数量级以上。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The endothelial glycocalyx: Barrier functions versus red cell hemodynamics: A model of steady state ultrafiltration through a bi-layer formed by a porous outer layer and more selective membrane-associated inner layer.

Background: Ultrastructural investigations of the endothelial glycocalyx reveal a layer adjacent to the cell surface with a structure consistent with the primary  ultrafilter of vascular walls. Theory predicts this layer can be no greater than 200-300 nm thick, a result  to be reconciled with observations that red cells and large macromolecules are excluded  from a region 1 micrometer or more from the cell membrane.

Objective: To determine whether this apparent inconsistency might be accounted for by a model of steady state water and protein transport through a glycocalyx bi-layer formed by a porous outer layer in series with a more selective inner layer.

Methods: Expressions for coupled water and albumin fluxes through the two layers were used to describe steady state ultra-filtration though the bi-layer model.

Results: Albumin accumulates at the interface between the porous layer and the selective inner layer. The osmotic pressure of accumulated albumin significantly modifies the observed permeability properties of the microvessel wall by an effective unstirred layer effect.

Conclusions: The model places significant constraints on the outer layer permeability properties . The only outer layer properties that are consistent with measured steady state filtration rates and models of red cell flux through microvessels are an albumin permeability coefficient and hydraulic conductivity more than an order of magnitude larger than the those of the inner layer.

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来源期刊
Biorheology
Biorheology 医学-工程:生物医学
CiteScore
2.00
自引率
0.00%
发文量
5
审稿时长
>12 weeks
期刊介绍: Biorheology is an international interdisciplinary journal that publishes research on the deformation and flow properties of biological systems or materials. It is the aim of the editors and publishers of Biorheology to bring together contributions from those working in various fields of biorheological research from all over the world. A diverse editorial board with broad international representation provides guidance and expertise in wide-ranging applications of rheological methods to biological systems and materials. The scope of papers solicited by Biorheology extends to systems at different levels of organization that have never been studied before, or, if studied previously, have either never been analyzed in terms of their rheological properties or have not been studied from the point of view of the rheological matching between their structural and functional properties. This biorheological approach applies in particular to molecular studies where changes of physical properties and conformation are investigated without reference to how the process actually takes place, how the forces generated are matched to the properties of the structures and environment concerned, proper time scales, or what structures or strength of structures are required.
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