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Application of Hybrid Models to Blood Cell Production in the Bone Marrow

Published online by Cambridge University Press:  15 June 2011

N. Bessonov
Affiliation:
Institute of Mechanical Engineering Problems, 199178 Saint Petersburg, Russia Institut Camille Jordan, Université Lyon 1, UMR 5208 CNRS 69622 Villeurbanne, France
F. Crauste
Affiliation:
Institut Camille Jordan, Université Lyon 1, UMR 5208 CNRS 69622 Villeurbanne, France INRIA Rhône-Alpes, Team-project “Dracula”
S. Fischer
Affiliation:
Institut Camille Jordan, Université Lyon 1, UMR 5208 CNRS 69622 Villeurbanne, France INRIA Rhône-Alpes, Team-project “Dracula”
P. Kurbatova
Affiliation:
Institut Camille Jordan, Université Lyon 1, UMR 5208 CNRS 69622 Villeurbanne, France INRIA Rhône-Alpes, Team-project “Dracula”
V. Volpert*
Affiliation:
Institut Camille Jordan, Université Lyon 1, UMR 5208 CNRS 69622 Villeurbanne, France INRIA Rhône-Alpes, Team-project “Dracula”
*
Corresponding author. E-mail: volpert@math.univ-lyon1.fr
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Abstract

A hybrid model of red blood cell production, where cells are considered as discrete objects while intra-cellular proteins and extra-cellular biochemical substances are described with continuous models, is proposed. Spatial organization and regulation of red blood cell production (erythropoiesis) are investigated. Normal erythropoiesis is simulated in two dimensions, and the influence on the output of the model of some parameters involved in cell fate (differentiation, self-renewal, and death by apoptosis) is studied.

Type
Research Article
Copyright
© EDP Sciences, 2011

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