Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes and timescales as a consequence of exposure to blood flow, muscle activity, and external impact. Both tissues and cells derive their mechanical strength from fibrous protein scaffolds, which typically have a complex hierarchical structure. In this study, we focus on a prototypical hierarchical biomaterial, fibrin, which is one of the most resilient naturally occurring biopolymers and forms the structural scaffold of blood clots. We show how fibrous networks composed of fibrin utilize irreversible changes in their hierarchical structure at different scales to maintain reversible stress stiffening up to large strains. To trace the origin of this ...
Fibrin is a viscoelastic proteinaceous polymer that determines the deformability and integrity of bl...
As the structural backbone of blood clots, fibrin networks carry out the mechanical task of stemming...
Bundles of polymer filaments are responsible for the rich and unique mechanical behaviors of many bi...
Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes an...
Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes an...
Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes an...
Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes an...
Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes an...
AbstractFibrin gels are responsible for the mechanical strength of blood clots, which are among the ...
Fibrin is an elastomeric protein forming highly extensible fiber networks that provide the scaffold ...
Fibrin is an elastomeric protein forming highly extensible fiber networks that provide the scaffold ...
Fibrin is an elastomeric protein forming highly extensible fiber networks that provide the scaffold ...
© 2019 Acta Materialia Inc. Fibrin is a viscoelastic proteinaceous polymer that determines the defor...
© 2019 Acta Materialia Inc. Fibrin is a viscoelastic proteinaceous polymer that determines the defor...
As the structural backbone of blood clots, fibrin networks carry out the mechanical task of stemming...
Fibrin is a viscoelastic proteinaceous polymer that determines the deformability and integrity of bl...
As the structural backbone of blood clots, fibrin networks carry out the mechanical task of stemming...
Bundles of polymer filaments are responsible for the rich and unique mechanical behaviors of many bi...
Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes an...
Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes an...
Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes an...
Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes an...
Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes an...
AbstractFibrin gels are responsible for the mechanical strength of blood clots, which are among the ...
Fibrin is an elastomeric protein forming highly extensible fiber networks that provide the scaffold ...
Fibrin is an elastomeric protein forming highly extensible fiber networks that provide the scaffold ...
Fibrin is an elastomeric protein forming highly extensible fiber networks that provide the scaffold ...
© 2019 Acta Materialia Inc. Fibrin is a viscoelastic proteinaceous polymer that determines the defor...
© 2019 Acta Materialia Inc. Fibrin is a viscoelastic proteinaceous polymer that determines the defor...
As the structural backbone of blood clots, fibrin networks carry out the mechanical task of stemming...
Fibrin is a viscoelastic proteinaceous polymer that determines the deformability and integrity of bl...
As the structural backbone of blood clots, fibrin networks carry out the mechanical task of stemming...
Bundles of polymer filaments are responsible for the rich and unique mechanical behaviors of many bi...