AbstractWe tested what to our knowledge is a new computational model for fibrin fiber mechanical behavior. The model is composed of three distinct elements: the folded fibrinogen core as seen in the crystal structure, the unstructured α-C connector, and the partially folded α-C domain. Previous studies have highlighted the importance of all three regions and how they may contribute to fibrin fiber stress-strain behavior. Yet no molecular model has been computationally tested that takes into account the individual contributions of all these regions. Constant velocity, steered molecular dynamics studies at 0.025 Å/ps were conducted on the folded fibrinogen core and the α-C domain to determine their force-displacement behavior. A wormlike chai...
AbstractFibrin gels are responsible for the mechanical strength of blood clots, which are among the ...
We report protocols and techniques to image and mechanically manipulate individual fibrin fibers, wh...
Fibrin fibers, which are ∼100 nm in diameter, are the major structural component of a blood clot. Th...
We tested what to our knowledge is a new computational model for fibrin fiber mechanical behavior. T...
AbstractWe tested what to our knowledge is a new computational model for fibrin fiber mechanical beh...
Fibrin networks form the structural scaffold of blood clots during hemostasis. To survive in the dyn...
Fibrin fibers form the structural scaffold of blood clots and perform the mechanical task of stemmin...
AbstractFibrin fibers form the structural scaffold of blood clots and perform the mechanical task of...
When normal blood circulation is compromised by damage to vessel walls, clots are formed at the site...
© 2019 Acta Materialia Inc. Fibrin is a viscoelastic proteinaceous polymer that determines the defor...
The formation and dissolution of blood clots is both a biochemical and a biomechanical process. Whil...
AbstractFibrin fibers form the structural scaffold of blood clots. Thus, their mechanical properties...
Fibrin fibers form the structural scaffold of blood clots. Thus, their mechanical properties are of ...
SummaryBlood clots must be stiff to stop hemorrhage yet elastic to buffer blood's shear forces. Upse...
SummaryFibrinogen, upon enzymatic conversion to monomeric fibrin, provides the building blocks for f...
AbstractFibrin gels are responsible for the mechanical strength of blood clots, which are among the ...
We report protocols and techniques to image and mechanically manipulate individual fibrin fibers, wh...
Fibrin fibers, which are ∼100 nm in diameter, are the major structural component of a blood clot. Th...
We tested what to our knowledge is a new computational model for fibrin fiber mechanical behavior. T...
AbstractWe tested what to our knowledge is a new computational model for fibrin fiber mechanical beh...
Fibrin networks form the structural scaffold of blood clots during hemostasis. To survive in the dyn...
Fibrin fibers form the structural scaffold of blood clots and perform the mechanical task of stemmin...
AbstractFibrin fibers form the structural scaffold of blood clots and perform the mechanical task of...
When normal blood circulation is compromised by damage to vessel walls, clots are formed at the site...
© 2019 Acta Materialia Inc. Fibrin is a viscoelastic proteinaceous polymer that determines the defor...
The formation and dissolution of blood clots is both a biochemical and a biomechanical process. Whil...
AbstractFibrin fibers form the structural scaffold of blood clots. Thus, their mechanical properties...
Fibrin fibers form the structural scaffold of blood clots. Thus, their mechanical properties are of ...
SummaryBlood clots must be stiff to stop hemorrhage yet elastic to buffer blood's shear forces. Upse...
SummaryFibrinogen, upon enzymatic conversion to monomeric fibrin, provides the building blocks for f...
AbstractFibrin gels are responsible for the mechanical strength of blood clots, which are among the ...
We report protocols and techniques to image and mechanically manipulate individual fibrin fibers, wh...
Fibrin fibers, which are ∼100 nm in diameter, are the major structural component of a blood clot. Th...