• LOGIN
    Login with username and password
Repository logo

BORIS Portal

Bern Open Repository and Information System

  • Publications
  • Theses
  • Research Data
  • Projects
  • Organizations
  • Researchers
  • More
  • Collections
  • Statistics
  • LOGIN
    Login with username and password
Repository logo
Unibern.ch
  1. Home
  2. Publications
  3. Red blood cell phase separation in symmetric and asymmetric microchannel networks: effect of capillary dilation and inflow velocity

Red blood cell phase separation in symmetric and asymmetric microchannel networks: effect of capillary dilation and inflow velocity

Details
Files
DOI
10.7892/boris.90677
Publisher DOI
10.1038/srep36763
PubMed ID
27857165
Abstract
The non-uniform portioning or phase separation of red blood cells (RBCs) at a diverging bifurcation of a microvascular network is responsible for RBC heterogeneity within the network. The mechanisms controlling RBC heterogeneity are not yet fully understood and there is a need to improve the basic understanding of the phase separation phenomenon. In this context, in vitro experiments can fill the gap between existing in vivo and in silico models as they provide better controllability than in vivo experiments without mathematical idealizations or simplifications inherent to in silico models. In this study, we fabricated simple models of symmetric/asymmetric microvascular networks; we provided quantitative data on the RBC velocity, line density and flux in the daughter branches. In general our results confirmed the tendency of RBCs to enter the daughter branch with higher flow rate (Zweifach-Fung effect); in some cases even inversions of the Zweifach-Fung effect were observed. We showed for the first time a reduction of the Zweifach-Fung effect with increasing the flow rate. Moreover capillary dilation was shown to cause an increase of RBCs line density and RBCs residence time within the dilated capillary underlining the possible role of pericytes in regulating the oxygen supply.
Date Issued
2016-11
Publication Type
Article
Subject(s)
500 Science > 530 Physics
500 Science > 570 Life sciences; biology
Language(s)
en
Author(s)
Clavica, Francesco  
ARTORG - Cardiovascular Engineering (CVE)  
Homsy, Alexandra
Jeandupeux, Laure
Obrist, Dominik  
ARTORG - Cardiovascular Engineering (CVE)  
Additional Credits
ARTORG - Cardiovascular Engineering (CVE)  
Journal
Scientific Reports
Publisher
Nature Publishing Group
ISSN
2045-2322
Access(Rights)
open.access
Show full item
BORIS Portal
Bern Open Repository and Information System
Build: 0eaa7c [ 7.08. 11:06]
Explore
  • Projects
  • Funding
  • Publications
  • Research Data
  • Organizations
  • Researchers
  • Audiovisual Material
  • Software & other digital items
  • Events
More
  • About BORIS Portal
  • BORIS Portal & Open Science
  • Send Feedback
  • Cookie settings
  • Service Policy
Follow us on
  • Mastodon
  • YouTube
  • LinkedIn
UniBe logo
Repository logo COAR Notify