Literature DB >> 8571232

Mechanics of blood flow in the microcirculation.

T W Secomb1.   

Abstract

The microcirculation in most tissues consists of an intricate network of very narrow tubes. In analyses of blood flow through the microcirculation, inertial effects can be neglected, but continuum models for blood cannot be assumed, since blood is a concentrated suspension of cells with dimensions comparable to vessel diameters. These cells strongly influence blood flow. About 45% of blood volume consists of red blood cells, whose key mechanical properties are known. A red cell has a fluid interior, surrounded by a flexible membrane, which strongly resists area changes, but bends and shears easily. White blood cells are comparable in size but much less numerous. They are less flexible than red cells and capable of active locomotion. Other suspended elements are much smaller than red cells: This review focuses on the mechanics of red cell motion in the microcirculation. Experimental and theoretical studies of blood flow in uniform tubes, bifurcations and networks are discussed. Comparisons between predicted and observed flows in networks imply that resistance to blood flow in living microvessels is higher than that in uniform tubes with corresponding diameters. Living microvessels have non-uniform geometries, and red cells must deform continually to traverse them. Theoretical results are presented implying that these transient deformations contribute to increased flow resistance in the microcirculation.

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Year:  1995        PMID: 8571232

Source DB:  PubMed          Journal:  Symp Soc Exp Biol        ISSN: 0081-1386


  14 in total

1.  A mechano-electrochemical model of radial deformation of the capillary glycocalyx.

Authors:  Edward R Damiano; Thomas M Stace
Journal:  Biophys J       Date:  2002-03       Impact factor: 4.033

Review 2.  Theoretical models for coronary vascular biomechanics: progress & challenges.

Authors:  Sarah L Waters; Jordi Alastruey; Daniel A Beard; Peter H M Bovendeerd; Peter F Davies; Girija Jayaraman; Oliver E Jensen; Jack Lee; Kim H Parker; Aleksander S Popel; Timothy W Secomb; Maria Siebes; Spencer J Sherwin; Rebecca J Shipley; Nicolas P Smith; Frans N van de Vosse
Journal:  Prog Biophys Mol Biol       Date:  2010-10-30       Impact factor: 3.667

Review 3.  Anaerobic storage of red blood cells.

Authors:  Tatsuro Yoshida; Sergey S Shevkoplyas
Journal:  Blood Transfus       Date:  2010-10       Impact factor: 3.443

Review 4.  Mechanics and computational simulation of blood flow in microvessels.

Authors:  Timothy W Secomb
Journal:  Med Eng Phys       Date:  2010-10-29       Impact factor: 2.242

5.  Noninvasive measurements and analysis of blood velocity profiles in human retinal vessels.

Authors:  Zhangyi Zhong; Hongxin Song; Toco Yuen Ping Chui; Benno L Petrig; Stephen A Burns
Journal:  Invest Ophthalmol Vis Sci       Date:  2011-06-13       Impact factor: 4.799

6.  Two-dimensional simulation of red blood cell motion near a wall under a lateral force.

Authors:  Daniel S Hariprasad; Timothy W Secomb
Journal:  Phys Rev E Stat Nonlin Soft Matter Phys       Date:  2014-11-24

7.  Antimargination of Microparticles and Platelets in the Vicinity of Branching Vessels.

Authors:  Christian Bächer; Alexander Kihm; Lukas Schrack; Lars Kaestner; Matthias W Laschke; Christian Wagner; Stephan Gekle
Journal:  Biophys J       Date:  2018-07-17       Impact factor: 4.033

8.  Blood-plasma separation in Y-shaped bifurcating microfluidic channels: a dissipative particle dynamics simulation study.

Authors:  Xuejin Li; Aleksander S Popel; George Em Karniadakis
Journal:  Phys Biol       Date:  2012-04-04       Impact factor: 2.583

9.  Motion of red blood cells near microvessel walls: effects of a porous wall layer.

Authors:  Daniel S Hariprasad; Timothy W Secomb
Journal:  J Fluid Mech       Date:  2012-08       Impact factor: 3.627

10.  Blood viscosity in microvessels: experiment and theory.

Authors:  Timothy W Secomb; Axel R Pries
Journal:  C R Phys       Date:  2013-06       Impact factor: 3.769

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