仿生降阶致密肿瘤多相灌注模型的建立

IF 4.2 2区 工程技术 Q1 MECHANICS
Mohammad Mehedi Hasan Akash, Nilotpal Chakraborty, Jiyan Mohammad, Katie Reindl, Saikat Basu
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引用次数: 0

摘要

实体瘤的致密纤维胞外结构对扩散转运具有很高的抵抗力;此外,血液和淋巴流动的缺乏阻碍了对流。在这种肿瘤环境中流体传输机制的复杂性仍然提出了一些悬而未决的问题。例如,这种致密肿瘤的临床诊断和靶向给药平台可以从血浆摄取到肿瘤的定量框架中获益。在这项研究中,我们提出了一个物理参数的计算模型,这些物理参数可能影响血液渗透和渗透到简单的仿生实体肿瘤几何结构中。该模型实现了三相粘性-层流瞬态模拟,以模拟肿瘤粘附血管内的传输物理,并测量了三种不同流动时间的三种相(即血浆、红细胞(red blood cells,也称为“红细胞”)和白细胞(white blood cells,也称为“白细胞”)的组成体积分数,同时记录了肿瘤细胞外空间入口点的血浆压力和速度。随后,为了量化肿瘤区域内的血浆灌注,我们提出了肿瘤进入区及其细胞外空间的降阶二维运输模型,该模型适用于三种不同孔径的窗:0.1、0.3和0.5 μm;模拟为两相粘流-层流瞬态。这一发现支持了这样的假设:血浆渗入肿瘤与由窗开口大小调节的漏度成正比,渗透速率随扩散距离的增加而衰减。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of a multiphase perfusion model for biomimetic reduced-order dense tumors.

Dense fibrous extracellular constitution of solid tumors exerts high resistance to diffusive transport into it; additionally, the scarcity of blood and lymphatic flows hinders convection. The complexity of fluidic transport mechanisms in such tumor environments still presents open questions with translational end goals. For example, clinical diagnosis and targeted drug delivery platforms for such dense tumors can ideally benefit from a quantitative framework on plasma uptake into the tumor. In this study, we present a computational model for physical parameters that may influence blood percolation and penetration into simple biomimetic solid tumor geometry. The model implements three-phase viscous-laminar transient simulation to mimic the transport physics inside a tumor-adhering blood vessel and measures the constituent volume fractions of the three considered phases, viz. plasma, RBCs (red blood cells, also known as "erythrocytes"), and WBCs (white blood cells, also known as "leukocytes") at three different flow times, while simultaneously recording the plasma pressure and velocity at the entry point to the tumor's extracellular space. Subsequently, to quantify plasma perfusion within the tumor zone, we proposed a reduced-order two-dimensional transport model for the tumor entry zone and its extracellular space for three different fenestra diameters: 0.1, 0.3, and 0.5 μm; the simulations were two-phase viscous-laminar transient. The findings support the hypothesis that plasma percolation into the tumor is proportional to the leakiness modulated by the size of fenestra openings, and the rate of percolation decays with the diffusion distance.

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来源期刊
CiteScore
7.50
自引率
32.30%
发文量
0
期刊介绍: Experimental and Computational Multiphase Flow is a peer-reviewed international academic journal that publishes research papers and significant review articles on multiphase flows. Focuses on transport phenomena of mass, momentum, and heat from theoretical, experimental, and computational perspectives. Publishes scholarly research papers, invited review articles, brief communications, letters, and comments on previously published papers. Covers a broad scope including interface interaction, multiphase dynamics, heat transfers, phase changes, and more. Fields of application include nuclear, chemical, petroleum, environmental, mineral, pharmaceutical, bio-mechanical, and mechanical engineering.
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