Literature DB >> 3999988

Radial distribution of white cells during blood flow in small tubes.

U Nobis, A R Pries, G R Cokelet, P Gaehtgens.   

Abstract

The radial distribution of white blood cells (WBC) in blood flowing through glass tubes (i.d. 69 micron) was studied as a function of wall shear stress (range 0.1-2.5 Pa) and suspending medium (plasma, buffered saline, high-molecular-weight dextran solution). It was found that, irrespective of the choice of suspending medium, the highest leukocyte flux at high shear stresses was found in the tube center. WBC redistribution was seen upon lowering the shear stresses: A significant shift of WBC flux toward the marginal fluid layers occurred at the expense of the axial region. After replacement of plasma by other media the flow-dependent redistribution of WBCs was qualitatively unaffected. However, suspension of cells in dextran solution (inducing strong red cell aggregation) resulted in enhanced WBC margination, while in saline (no red cell aggregation) axial accumulation was accentuated. The results support the concept of size-dependent radial distribution of particles in flow of mixed suspensions. If applied to the living microcirculation, the data serve to explain WBC margination in microvessels (the first step in the series of events leading to emigration) in terms of a hydrodynamic phenomenon resulting from red cell/white cell interaction. The pronounced flow dependence of WBC margination results primarily from the effect of shear on red cell aggregation which leads to an alteration of the effective particle size distribution in the flowing blood.

Entities:  

Mesh:

Year:  1985        PMID: 3999988     DOI: 10.1016/0026-2862(85)90020-2

Source DB:  PubMed          Journal:  Microvasc Res        ISSN: 0026-2862            Impact factor:   3.514


  23 in total

Review 1.  Biomechanics of leukocyte rolling.

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Review 2.  Particle margination and its implications on intravenous anticancer drug delivery.

Authors:  Erik Carboni; Katherine Tschudi; Jaewook Nam; Xiuling Lu; Anson W K Ma
Journal:  AAPS PharmSciTech       Date:  2014-04-02       Impact factor: 3.246

3.  Biomimetic autoseparation of leukocytes from whole blood in a microfluidic device.

Authors:  Sergey S Shevkoplyas; Tatsuro Yoshida; Lance L Munn; Mark W Bitensky
Journal:  Anal Chem       Date:  2005-02-01       Impact factor: 6.986

4.  Micro-PTV measurement of the fluid shear stress acting on adherent leukocytes in vivo.

Authors:  John E Pickard; Klaus Ley
Journal:  Biophys J       Date:  2009-05-20       Impact factor: 4.033

5.  Role of erythrocytes in leukocyte-endothelial interactions: mathematical model and experimental validation.

Authors:  L L Munn; R J Melder; R K Jain
Journal:  Biophys J       Date:  1996-07       Impact factor: 4.033

Review 6.  Role of the endothelial surface layer in neutrophil recruitment.

Authors:  Alex Marki; Jeffrey D Esko; Axel R Pries; Klaus Ley
Journal:  J Leukoc Biol       Date:  2015-05-15       Impact factor: 4.962

Review 7.  Leukocytes as carriers for targeted cancer drug delivery.

Authors:  Michael J Mitchell; Michael R King
Journal:  Expert Opin Drug Deliv       Date:  2014-10-01       Impact factor: 6.648

8.  A physical sciences network characterization of circulating tumor cell aggregate transport.

Authors:  Michael R King; Kevin G Phillips; Annachiara Mitrugno; Tae-Rin Lee; Adelaide M E de Guillebon; Siddarth Chandrasekaran; Matthew J McGuire; Russell T Carr; Sandra M Baker-Groberg; Rachel A Rigg; Anand Kolatkar; Madelyn Luttgen; Kelly Bethel; Peter Kuhn; Paolo Decuzzi; Owen J T McCarty
Journal:  Am J Physiol Cell Physiol       Date:  2015-03-18       Impact factor: 4.249

9.  Preferential distribution of leukocytes in rat mesentery microvessel networks.

Authors:  K Ley; A R Pries; P Gaehtgens
Journal:  Pflugers Arch       Date:  1988-07       Impact factor: 3.657

10.  Determinants of leukocyte margination in rectangular microchannels.

Authors:  Abhishek Jain; Lance L Munn
Journal:  PLoS One       Date:  2009-09-21       Impact factor: 3.240

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