DocumentCode :
1401497
Title :
Quantification and macroscopic modeling of the nonlinear viscoelastic behavior of strained gels with varying fibrin concentrations
Author :
Benkherourou, Mohamed ; Guméry, Pierre-Yves ; Tranqui, Léone ; Tracqui, Philippe
Author_Institution :
Lab. des Tech. de l´´Imagerie de la Modelisation et de la Cognition, Univ. Joseph Fourier, Grenoble, France
Volume :
47
Issue :
11
fYear :
2000
Firstpage :
1465
Lastpage :
1475
Abstract :
The mechanical properties of fibrin gels under uniaxial strains have been analyzed for low fibrin concentrations using a free-floating gel device. The authors were able to quantify the viscous and elastic moduli of gels with fibrin concentration ranging from 0.5 to 3 mg/ml, reporting significant differences of biogels moduli and dynamical response according to fibrin concentration. Furthermore, considering sequences of successively imposed step strains has revealed the strain-hardening properties of fibrin gels for strain amplitude below 5%. This nonlinear viscoelastic behavior of the gels has been precisely analyzed through numerical simulations of the overall gel response to the strain steps sequences. Phenomenological power laws relating the instantaneous and relaxed elasticity moduli to fibrin concentration have been validated, with concentration exponent in the order of 1.2 and 1.0, respectively. This continuous description of strain-dependent mechanical moduli was then used to simulate the biogel behavior when continuously time-varying strains are applied. The authors discuss how this experimental setup and associated macroscopic modeling of fibrin gels enable a further quantification of cell traction forces and mechanotransduction processes induced by biogel compaction or stretching.
Keywords :
biorheology; elastic moduli; gels; physiological models; proteins; viscoelasticity; biogel compaction; biogel stretching; cell traction forces quantification; dynamical response; free-floating gel device; instantaneous relaxed elasticity moduli; macroscopic modeling; mechanotransduction processes; nonlinear viscoelastic behavior; numerical simulations; phenomenological power laws; relaxed elasticity moduli; strain amplitude; strain-hardening properties; strained gels; uniaxial strains; varying fibrin concentrations; Active matrix organic light emitting diodes; Capacitive sensors; Cognition; Compaction; Elasticity; Extracellular; Image storage; Mechanical factors; Proteins; Viscosity; Biomedical Engineering; Biopolymers; Elasticity; Fibrin; Gels; Humans; Models, Chemical; Viscosity;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.880098
Filename :
880098
Link To Document :
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