Cross talk between endothelial and red blood cell glycocalyces via near-field flow

被引:15
作者
Jiang, Xi Zhuo [1 ]
Goligorsky, Michael S. [2 ,3 ,4 ]
Luo, Kai H. [5 ]
机构
[1] Northeastern Univ, Sch Mech Engn & Automat, Shenyang, Liaoning, Peoples R China
[2] New York Med Coll, Dept Med, Valhalla, NY 10595 USA
[3] New York Med Coll, Dept Pharmacol, Valhalla, NY 10595 USA
[4] New York Med Coll, Dept Physiol, Valhalla, NY 10595 USA
[5] UCL, Dept Mech Engn, London, England
基金
英国工程与自然科学研究理事会; 美国国家卫生研究院;
关键词
SHEAR-STRESS; SURFACE; LAYER; MECHANOTRANSDUCTION; DEGRADATION; BARRIER;
D O I
10.1016/j.bpj.2021.06.002
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Vascular endothelial cells and circulating red blood cell (RBC) surfaces are both covered by a layer of bushy glycocalyx. The interplay between these glycocalyx layers is hardly measurable and insufficiently understood. This study aims to investigate and qualify the possible interactions between the glycocalyces of RBCs and endothelial cells using mathematical modeling and numerical simulation. Dissipative particle dynamics (DPD) simulations are conducted to investigate the response of the endothelial glycocalyx (EG) to varying ambient conditions. A two-compartment model including EG and flow and a threecompartment model comprising EG, RBC glycocalyx, and flow are established. The two-compartment analysis shows that a relatively fast flow is associated with a predominantly bending motion of the EG, whereas oscillatory motions are predominant in a relatively slow flow. Results show that circulating RBCs cause the contactless deformation of EG. Its deformation is dependent on the chain layout, chain length, bending stiffness, RBC-to-EG distance, and RBC velocities. Specifically, shorter EG chains or RBC-to-EG distance leads to greater relative deflections of EG. Deformation of EG is enhanced when the EG chains are rarefied or RBCs move faster. The bending stiffness maintains stretching conformation of EG. Moreover, a compact EG chain layout and shedding EG chains disturb the neighboring flow field, causing disordered flow velocity distributions. In contrast, the movement of EG chains on RBC surfaces exerts a marginal driving force on RBCs. The DPD method is used for the first time, to our knowledge, in the three-compartment system to explore the cross talk between EG and RBC glycocalyx. This study suggests that RBCs drive the EG deformation via the near-field flow, whereas marginal propulsion of RBCs by the EG is observed. These new, to our knowledge, findings provide a new angle to understand the roles of glycocalyx in mechanotransduction and microvascular permeability and their perturbations under idealized pathophysiologic conditions associated with EG degradation.
引用
收藏
页码:3180 / 3191
页数:12
相关论文
共 54 条
[41]   Electro-poroelastohydrodynamics of the endothelial glycocalyx layer [J].
Sumets, P. P. ;
Cater, J. E. ;
Long, D. S. ;
Clarke, R. J. .
JOURNAL OF FLUID MECHANICS, 2018, 838 :284-319
[42]   Oscillatory Shear Stress Induces Mitochondrial Superoxide Production: Implication of NADPH Oxidase and c-Jun NH2-Terminal Kinase Signaling [J].
Takabe, Wakako ;
Jen, Nelson ;
Ai, Lisong ;
Hamilton, Ryan ;
Wang, Sky ;
Holmes, Kristin ;
Dharbandi, Farhad ;
Khalsa, Bhavraj ;
Bressler, Steven ;
Barr, Mark L. ;
Li, Rongsong ;
Hsiai, Tzung K. .
ANTIOXIDANTS & REDOX SIGNALING, 2011, 15 (05) :1379-1388
[43]   Mechanosensing at the Vascular Interface [J].
Tarbell, John M. ;
Simon, Scott I. ;
Curry, Fitz-Roy E. .
ANNUAL REVIEW OF BIOMEDICAL ENGINEERING, VOL 16, 2014, 16 :505-532
[44]   Effect of the glycocalyx layer on transmission of interstitial flow shear stress to embedded cells [J].
Tarbell, John M. ;
Shi, Zhong-Dong .
BIOMECHANICS AND MODELING IN MECHANOBIOLOGY, 2013, 12 (01) :111-121
[45]   The role of the glycocalyx in reorganization of the actin cytoskeleton under fluid shear stress: A "bumper-car" model [J].
Thi, MM ;
Tarbell, JM ;
Weinbaum, S ;
Spray, DC .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2004, 101 (47) :16483-16488
[46]   Mechanistic overview of reactive species-induced degradation of the endothelial glycocalyx during hepatic ischemia/reperfusion injury [J].
van Golen, Rowan F. ;
van Gulik, Thomas M. ;
Heger, Michal .
FREE RADICAL BIOLOGY AND MEDICINE, 2012, 52 (08) :1382-1402
[47]   SciPy 1.0: fundamental algorithms for scientific computing in Python']Python [J].
Virtanen, Pauli ;
Gommers, Ralf ;
Oliphant, Travis E. ;
Haberland, Matt ;
Reddy, Tyler ;
Cournapeau, David ;
Burovski, Evgeni ;
Peterson, Pearu ;
Weckesser, Warren ;
Bright, Jonathan ;
van der Walt, Stefan J. ;
Brett, Matthew ;
Wilson, Joshua ;
Millman, K. Jarrod ;
Mayorov, Nikolay ;
Nelson, Andrew R. J. ;
Jones, Eric ;
Kern, Robert ;
Larson, Eric ;
Carey, C. J. ;
Polat, Ilhan ;
Feng, Yu ;
Moore, Eric W. ;
VanderPlas, Jake ;
Laxalde, Denis ;
Perktold, Josef ;
Cimrman, Robert ;
Henriksen, Ian ;
Quintero, E. A. ;
Harris, Charles R. ;
Archibald, Anne M. ;
Ribeiro, Antonio H. ;
Pedregosa, Fabian ;
van Mulbregt, Paul .
NATURE METHODS, 2020, 17 (03) :261-272
[48]   Heparanase: From basic research to therapeutic applications in cancer and inflammation [J].
Vlodaysky, Israel ;
Singh, Preeti ;
Boyango, Ilanit ;
Gutter-Kapon, Lilach ;
Elkin, Michael ;
Sanderson, Ralph D. ;
Lian, Neta .
DRUG RESISTANCE UPDATES, 2016, 29 :54-75
[49]   The structure and function of the endothelial glycocalyx layer [J].
Weinbaum, Sheldon ;
Tarbell, John M. ;
Damiano, Edward R. .
ANNUAL REVIEW OF BIOMEDICAL ENGINEERING, 2007, 9 :121-167
[50]   Demystifying Heparan Sulfate-Protein Interactions [J].
Xu, Ding ;
Esko, Jeffrey D. .
ANNUAL REVIEW OF BIOCHEMISTRY, VOL 83, 2014, 83 :129-157