Red blood cell passage through deformable interendothelial slits in the spleen: Insights into splenic filtration and hemodynamics

IF 7 2区 医学 Q1 BIOLOGY Computers in biology and medicine Pub Date : 2024-09-27 DOI:10.1016/j.compbiomed.2024.109198
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Abstract

The spleen constantly clears altered red blood cells (RBCs) from the circulation, tuning the balance between RBC formation (erythropoiesis) and removal. The retention and elimination of RBCs occur predominantly in the open circulation of the spleen, where RBCs must cross submicron-wide inter-endothelial slits (IES). Several experimental and computational studies have illustrated the role of IES in filtrating the biomechanically and morphologically altered RBCs based on a rigid wall assumption. However, these studies also reported that when the size of IES is close to the lower end of clinically observed sizes (less than 0.5 μm), an unphysiologically large pressure difference across the IES is required to drive the passage of normal RBCs, sparking debates on the feasibility of the rigid wall assumption. In this work, We propose two deformable IES models, namely the passive model and the active model, aiming to explore the impact of the deformability of IES on the filtration function of the spleen. In the passive model, we implement the worm-like string model to depict the IES’s deformation as it interacts with blood plasma and allows RBC to traverse. In contrast, the active model involved regulating the IES deformation based on the local pressure surrounding the slit. To demonstrate the validity of the deformable model, we simulate the filtration of RBCs with varied size and stiffness by IES under three scenarios: (1) a single RBC traversing a single slit; (2) a suspension of RBCs traversing an array of slits, mimicking in vitro spleen-on-a-chip experiments; (3) RBC suspension passing through the 3D spleen filtration unit known as’the splenon’. Our simulation results of RBC passing through a single slit show that the deformable IES model offers more accurate predictions of the critical cell surface area to volume ratio that dictate the removal of aged RBCs from circulation compared to prior rigid-wall models. Our biophysical models of the spleen-on-a-chip indicate a hierarchy of filtration function stringency: rigid model > passive model > active model, providing a possible explanation of the filtration function of IES. We also illustrate that the biophysical model of ‘the splenon’ enables us to replicate the ex vivo experiments involving spleen filtration of malaria-infected RBCs. Taken together, our simulation findings indicate that the deformable IES model could serve as a mesoscopic representation of spleen filtration function closer to physiological reality, addressing questions beyond the scope of current experimental and computational models and enhancing our understanding of the fundamental flow dynamics and mechanical clearance processes within in the human spleen.
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红细胞通过脾脏中可变形的内皮间缝隙:对脾脏过滤和血液动力学的启示。
脾脏不断从血液循环中清除改变的红细胞(RBC),调节红细胞形成(红细胞生成)和清除之间的平衡。红细胞的滞留和清除主要发生在脾脏的开放循环中,红细胞必须穿过亚微米宽的内皮间缝隙(IES)。一些实验和计算研究基于刚性壁假设,说明了内皮间缝隙在过滤生物力学和形态改变的红细胞方面的作用。然而,这些研究也报告说,当 IES 的尺寸接近临床观察到的尺寸的下限(小于 0.5 μm)时,IES 上需要一个非生理的巨大压力差才能驱动正常红细胞通过,这引发了对刚性壁假设可行性的争论。在这项工作中,我们提出了两种可变形的 IES 模型,即被动模型和主动模型,旨在探索 IES 的可变形性对脾脏过滤功能的影响。在被动模型中,我们采用蚯蚓串模型来描述 IES 与血浆相互作用并允许 RBC 穿过时的变形。相比之下,主动模型则是根据缝隙周围的局部压力来调节 IES 的变形。为了证明可变形模型的有效性,我们模拟了 IES 在三种情况下过滤不同大小和硬度的 RBC:(1)单个 RBC 穿过单个狭缝;(2)RBC 悬浮液穿过狭缝阵列,模拟体外脾脏芯片实验;(3)RBC 悬浮液穿过被称为 "脾脏 "的三维脾脏过滤单元。我们对 RBC 通过单个狭缝的模拟结果表明,与之前的硬壁模型相比,可变形 IES 模型能更准确地预测细胞表面积与体积比的临界值,而这一临界值决定了循环中老化 RBC 的清除率。我们的片上脾脏生物物理模型显示了过滤功能严格程度的层次结构:刚性模型 > 被动模型 > 主动模型,为 IES 的过滤功能提供了可能的解释。我们还说明,"脾脏 "生物物理模型使我们能够复制涉及脾脏过滤疟疾感染红细胞的体内外实验。总之,我们的模拟结果表明,可变形的 IES 模型可以作为脾脏过滤功能的中观表征,更接近生理现实,解决超出当前实验和计算模型范围的问题,并增强我们对人类脾脏内基本流动动力学和机械清除过程的理解。
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来源期刊
Computers in biology and medicine
Computers in biology and medicine 工程技术-工程:生物医学
CiteScore
11.70
自引率
10.40%
发文量
1086
审稿时长
74 days
期刊介绍: Computers in Biology and Medicine is an international forum for sharing groundbreaking advancements in the use of computers in bioscience and medicine. This journal serves as a medium for communicating essential research, instruction, ideas, and information regarding the rapidly evolving field of computer applications in these domains. By encouraging the exchange of knowledge, we aim to facilitate progress and innovation in the utilization of computers in biology and medicine.
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