利用新型 TPMS 晶格结构在更高渗透性条件下改善活性细胞增殖面积

IF 1.7 4区 医学 Q4 BIOPHYSICS
Gajendra Kumar Nhaichaniya, Manish Kumar, Ram Dayal
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引用次数: 0

摘要

与骨组织工程中的传统生物植入物相比,基于晶格的支架是一种新兴的先进技术。本研究共考虑了六种晶格结构,用于渗透性和壁剪应力(WSS)研究。即基于 TPMS 的 Gyroid、Schwarz-P、Schwarz-D 和两种基于梁的结构?在孔隙度为 80%、75% 和 70% 的情况下,将立方体和萤石结构与所提出的新晶格结构进行了比较。所提出的新晶格结合了 Gyroid 和 Schwarz-D TPMS 晶格的特点。渗透率是通过达西定律确定的,在流速为 0.2 至 10 毫升/分钟的情况下,通过计算流体动力学(CFD)工具计算了穿过晶格结构的压降。立方晶格结构和 Schwarz-P 晶格结构的渗透性最高,但其代价是 WSS 的活性表面积较低,低于 155 平方毫米,这意味着细胞增殖最少。而新晶格结构的渗透率值处于理想范围内,对 WSS 的活性表面积(514 平方毫米)也有所提高。新晶格结构复杂的内部曲率促进了细胞增殖,而通孔则使细胞能够有效播种。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improvement in Active Cell Proliferation Area at Higher Permeability With Novel TPMS Lattice Structure.

The utilization of lattice-based scaffolds emerging as an advance technique over conventional bio-implants in Bone Tissue Engineering. In this study, totally six lattice structures are considered for permeability and wall shear stress (WSS) investigation. Namely triply periodic minimal surfaces (TPMS)-based Gyroid, Schwarz-P, Schwarz-D, and two beam-based structure-Cubic and Fluorite are compared with the proposed new lattice structure at porosity level of 80%, 75%, and 70%. The proposed new lattice has combine characteristic of Gyroid and Schwarz-D TPMS lattice. The permeability is determined through Darcy's law, where the pressure drop across the lattice structure is calculated using a computational fluid dynamics (CFD) tool at flowrate between 0.2 and 10 ml/min. The Cubic and Schwarz-P lattice structures exhibited the highest permeability but at the cost of a lower active surface area for WSS, measuring below 155 mm2, means least cell proliferation occurs while the permeability value in New Lattice structure is in the ideal range with the enhanced active surface area for WSS (514 mm2). The complex internal curvatures of New Lattice promote the cell proliferation while the through-pore holes allow the efficient cell seeding.

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来源期刊
CiteScore
3.40
自引率
5.90%
发文量
169
审稿时长
4-8 weeks
期刊介绍: Artificial Organs and Prostheses; Bioinstrumentation and Measurements; Bioheat Transfer; Biomaterials; Biomechanics; Bioprocess Engineering; Cellular Mechanics; Design and Control of Biological Systems; Physiological Systems.
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