Adhesive Force Between Biconcave Red Blood Cell Membrane and Bulk Substrate

被引:0
作者
Mu, Weihua [1 ]
机构
[1] Univ Chinese Acad Sci, Wenzhou Inst, Wenzhou Key Lab Biomat & Engn, Wenzhou 325000, Peoples R China
关键词
Ouyang-Helfrich equation; biconcave shape; red blood cells; van der Waals energy; Hamaker constant; adhesive forces;
D O I
10.3390/membranes15030089
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
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 proportional to D-2.5 relationship for biconcave RBCs versus F proportional to 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.
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页数:12
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共 27 条
[1]   Study of the rheological behaviour of human blood using a controlled stress rheometer [J].
Alves, Maria M. ;
Rocha, Cristina ;
Goncalves, Maria P. .
CLINICAL HEMORHEOLOGY AND MICROCIRCULATION, 2013, 53 (04) :369-386
[2]   Red Blood Cell Stiffness and Adhesion Are Species-Specific Properties Strongly Affected by Temperature and Medium Changes in Single Cell Force Spectroscopy [J].
Baier, Dina ;
Mueller, Torsten ;
Mohr, Thomas ;
Windberger, Ursula .
MOLECULES, 2021, 26 (09)
[3]   A new in vitro model to evaluate differential responses of endothelial cells to simulated arterial shear stress waveforms [J].
Blackman, BR ;
García-Cardeña, G ;
Gimbrone, MA .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2002, 124 (04) :397-407
[4]   In vitro cell shearing device to investigate the dynamic response of cells in a controlled hydrodynamic environment [J].
Blackman, BR ;
Barbee, KA ;
Thibault, LE .
ANNALS OF BIOMEDICAL ENGINEERING, 2000, 28 (04) :363-372
[5]   Matrix elasticity directs stem cell lineage specification [J].
Engler, Adam J. ;
Sen, Shamik ;
Sweeney, H. Lee ;
Discher, Dennis E. .
CELL, 2006, 126 (04) :677-689
[6]   Nanorheology of living cells measured by AFM-based force-distance curves [J].
Garcia, Pablo D. ;
Guerrero, Carlos R. ;
Garcia, Ricardo .
NANOSCALE, 2020, 12 (16) :9133-9143
[7]   ELASTIC PROPERTIES OF LIPID BILAYERS - THEORY AND POSSIBLE EXPERIMENTS [J].
HELFRICH, W .
ZEITSCHRIFT FUR NATURFORSCHUNG C-A JOURNAL OF BIOSCIENCES, 1973, C 28 (11-1) :693-703
[8]  
Israelachvili JN, 2011, INTERMOLECULAR AND SURFACE FORCES, 3RD EDITION, P1
[9]   DER WAALS DISPERSION FORCE CONTRIBUTION TO WORKS OF ADHESION AND CONTACT ANGLES ON BASIS OF MACROSCOPIC THEORY [J].
ISRAELACHVILI, JN .
JOURNAL OF THE CHEMICAL SOCIETY-FARADAY TRANSACTIONS II, 1973, 69 (12) :1729-1738
[10]   Dielectrophoretic force measurement of red blood cells exposed to oxidative stress using optical tweezers and a microfluidic chip [J].
Jeon H.-J. ;
Lee H. ;
Yoon D.S. ;
Kim B.-M. .
Biomedical Engineering Letters, 2017, 7 (04) :317-323