Literature DB >> 3607212

Membrane stress and internal pressure in a red blood cell freely suspended in a shear flow.

R Tran-Son-Tay, S P Sutera, G I Zahalak, P R Rao.   

Abstract

Presented is an algorithm for the approximate calculation of the membrane stress distribution and the internal pressure of a steadily tank-treading red cell. The algorithm is based on an idealized ellipsoidal model of the tank-treading cell (Keller, S.R., and R. Skalak, 1982, J. Fluid Mech., 120:27-47) joined with experimental observations of projected length, width, and tank-treading frequency. The results are inexact because the membrane shape and velocity are assumed a priori, rather than being determined via appropriate material constitutive relations for the membrane; these results are, nevertheless, believed to be approximately correct, and show that internal pressure builds up slowly as cell elongation increases, rising more rapidly as the deformed cell approaches the limiting geometry of a prolate ellipsoid. The maximum shear stress resultant in the membrane was found to be below but approaching the yield point range at the highest shear rate applied.

Mesh:

Year:  1987        PMID: 3607212      PMCID: PMC1330025          DOI: 10.1016/S0006-3495(87)83419-7

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  7 in total

1.  Modelling the mechanical behavior of red blood cells.

Authors:  R Skalak
Journal:  Biorheology       Date:  1973-06       Impact factor: 1.875

2.  Age-related changes in deformability of human erythrocytes.

Authors:  S P Sutera; R A Gardner; C W Boylan; G L Carroll; K C Chang; J S Marvel; C Kilo; B Gonen; J R Williamson
Journal:  Blood       Date:  1985-02       Impact factor: 22.113

3.  Mathematical model of the velocity field external to a tank-treading red cell.

Authors:  S P Sutera; R Tran Son Tay
Journal:  Biorheology       Date:  1983       Impact factor: 1.875

4.  Determination of red blood cell membrane viscosity from rheoscopic observations of tank-treading motion.

Authors:  R Tran-Son-Tay; S P Sutera; P R Rao
Journal:  Biophys J       Date:  1984-07       Impact factor: 4.033

5.  Red cell and ghost viscoelasticity. Effects of hemoglobin concentration and in vivo aging.

Authors:  G B Nash; H J Meiselman
Journal:  Biophys J       Date:  1983-07       Impact factor: 4.033

6.  Geometric, osmotic, and membrane mechanical properties of density-separated human red cells.

Authors:  O Linderkamp; H J Meiselman
Journal:  Blood       Date:  1982-06       Impact factor: 22.113

7.  A study of variance in measurements of tank-treading frequency in populations of normal human red cells.

Authors:  S P Sutera; R Tran-Son-Tay; C W Boylan; J R Williamson; R A Gardner
Journal:  Blood Cells       Date:  1983
  7 in total
  8 in total

1.  Normal band 3-cytoskeletal interactions are maintained on tanktreading erythrocytes.

Authors:  F E Weaver; H Polster; P Febboriello; M P Sheetz; H Schmid-Schonbein; D E Koppel
Journal:  Biophys J       Date:  1990-12       Impact factor: 4.033

2.  Dynamic deformation and recovery response of red blood cells to a cyclically reversing shear flow: Effects of frequency of cyclically reversing shear flow and shear stress level.

Authors:  Nobuo Watanabe; Hiroyuki Kataoka; Toshitaka Yasuda; Setsuo Takatani
Journal:  Biophys J       Date:  2006-06-09       Impact factor: 4.033

3.  Tank-tread frequency of the red cell membrane: dependence on the viscosity of the suspending medium.

Authors:  Thomas M Fischer
Journal:  Biophys J       Date:  2007-06-01       Impact factor: 4.033

4.  Full dynamics of a red blood cell in shear flow.

Authors:  Jules Dupire; Marius Socol; Annie Viallat
Journal:  Proc Natl Acad Sci U S A       Date:  2012-12-03       Impact factor: 11.205

5.  Membrane stress increases cation permeability in red cells.

Authors:  R M Johnson
Journal:  Biophys J       Date:  1994-11       Impact factor: 4.033

6.  Is the surface area of the red cell membrane skeleton locally conserved?

Authors:  T M Fischer
Journal:  Biophys J       Date:  1992-02       Impact factor: 4.033

7.  A sub-cellular viscoelastic model for cell population mechanics.

Authors:  Yousef Jamali; Mohammad Azimi; Mohammad R K Mofrad
Journal:  PLoS One       Date:  2010-08-10       Impact factor: 3.240

8.  Numerical Model for the Determination of Erythrocyte Mechanical Properties and Wall Shear Stress in vivo From Intravital Microscopy.

Authors:  Vivek P Jani; Alfredo Lucas; Vinay P Jani; Carlos Munoz; Alexander T Williams; Daniel Ortiz; Ozlem Yalcin; Pedro Cabrales
Journal:  Front Physiol       Date:  2020-01-23       Impact factor: 4.566

  8 in total

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