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双凹红细胞膜与块状底物之间的粘附力。

Adhesive Force Between Biconcave Red Blood Cell Membrane and Bulk Substrate.

作者信息

Mu Weihua

机构信息

Wenzhou Key Laboratory of Biomaterials and Engineering, Wenzhou Institute, University of Chinese Academy of Sciences, Wenzhou 325000, China.

出版信息

Membranes (Basel). 2025 Mar 10;15(3):89. doi: 10.3390/membranes15030089.

Abstract

Adhesion between a red blood cell and substrates is essential to many biophysical processes and has significant implications for medical applications. This study derived a theoretical formula for the adhesive force between a red blood cell and a bulk substrate, incorporating the Hamaker constant to account for van der Waals interactions. The derivation is based on a biconcave shape of an RBC, described by the well-known Ouyang-Helfrich equation and its analytical solution developed by Ouyang. The theoretical predictions align with experimental observations and the empirical spherical model, revealing a F∝D-2.5 relationship for biconcave RBCs versus F∝D-2 for spheres. While the current study focuses on idealized geometries and static conditions, future work will extend these findings to more complex environmental conditions, such as dynamic flow and interactions with plasma proteins, thereby broadening the applicability of the model. This work bridges foundational research in cell membrane mechanics with practical applications in hemostatic materials, platelet adhesion, and biomaterials engineering. The findings provide insights for designing advanced biological sensors, surgical tools, and innovative medical materials with enhanced biocompatibility and performance.

摘要

红细胞与底物之间的粘附对于许多生物物理过程至关重要,并且对医学应用具有重要意义。本研究推导了红细胞与块状底物之间粘附力的理论公式,纳入了哈梅克常数以考虑范德华相互作用。该推导基于红细胞的双凹形状,由著名的欧阳-赫尔弗里希方程及其欧阳开发的解析解描述。理论预测与实验观察结果和经验球形模型一致,揭示了双凹红细胞的F∝D -2.5关系,而球体的F∝D -2关系。虽然当前研究集中在理想化的几何形状和静态条件上,但未来的工作将把这些发现扩展到更复杂的环境条件,如动态流动以及与血浆蛋白的相互作用,从而拓宽模型的适用性。这项工作将细胞膜力学的基础研究与止血材料、血小板粘附和生物材料工程的实际应用联系起来。这些发现为设计具有增强生物相容性和性能的先进生物传感器、手术工具和创新医疗材料提供了见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b37e/11944040/c37b38a4f7b8/membranes-15-00089-g001.jpg

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