Evidence that αC region is origin of low modulus, high extensibility, and strain stiffening in fibrin fibers
about
Fibrin-based biomaterials: modulation of macroscopic properties through rational design at the molecular level.Physical determinants of fibrinolysis in single fibrin fibersUsing molecular mechanics to predict bulk material properties of fibronectin fibersMechanism of fibrin(ogen) forced unfolding.α-α Cross-links increase fibrin fiber elasticity and stiffnessThe Mechanical Properties of Dry, Electrospun Fibrinogen Fibers.Molecular mechanisms affecting fibrin structure and stability.Protein unfolding accounts for the unusual mechanical behavior of fibrin networks.Exposure of fibrinogen and thrombin to nitric oxide donor ProliNONOate affects fibrin clot properties.The α-helix to β-sheet transition in stretched and compressed hydrated fibrin clotsFoam-like compression behavior of fibrin networks.Submillisecond elastic recoil reveals molecular origins of fibrin fiber mechanics.Adaptation of fibrous biopolymers to recurring increasing strains.Cells actively stiffen fibrin networks by generating contractile stress.Phase transition-induced elasticity of α-helical bioelastomeric fibres and networks.Diagnostic morphology: biophysical indicators for iron-driven inflammatory diseases.Biophysical Mechanisms Mediating Fibrin Fiber Lysis.Newly-Recognized Roles of Factor XIII in Thrombosis.Fibrin Formation, Structure and Properties.Multi-scale strain-stiffening of semiflexible bundle networks.Fibrin clots are equilibrium polymers that can be remodeled without proteolytic digestionA modular fibrinogen model that captures the stress-strain behavior of fibrin fibers.Nonuniform Internal Structure of Fibrin Fibers: Protein Density and Bond Density Strongly Decrease with Increasing Diameter.Recombinant fibrinogen reveals the differential roles of α- and γ-chain cross-linking and molecular heterogeneity in fibrin clot strain-stiffening.Introduction to Atomic Force Microscopy (AFM) in Biology.Fibrinogen and factor XIII: newly recognized roles in venous thrombus formation and composition
P2860
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P2860
Evidence that αC region is origin of low modulus, high extensibility, and strain stiffening in fibrin fibers
description
2010 nî lūn-bûn
@nan
2010 թուականի Նոյեմբերին հրատարակուած գիտական յօդուած
@hyw
2010 թվականի նոյեմբերին հրատարակված գիտական հոդված
@hy
2010年の論文
@ja
2010年論文
@yue
2010年論文
@zh-hant
2010年論文
@zh-hk
2010年論文
@zh-mo
2010年論文
@zh-tw
2010年论文
@wuu
name
Evidence that αC region is ori ...... in stiffening in fibrin fibers
@ast
Evidence that αC region is ori ...... in stiffening in fibrin fibers
@en
Evidence that αC region is ori ...... in stiffening in fibrin fibers
@nl
type
label
Evidence that αC region is ori ...... in stiffening in fibrin fibers
@ast
Evidence that αC region is ori ...... in stiffening in fibrin fibers
@en
Evidence that αC region is ori ...... in stiffening in fibrin fibers
@nl
prefLabel
Evidence that αC region is ori ...... in stiffening in fibrin fibers
@ast
Evidence that αC region is ori ...... in stiffening in fibrin fibers
@en
Evidence that αC region is ori ...... in stiffening in fibrin fibers
@nl
P2093
P2860
P1433
P1476
Evidence that αC region is ori ...... in stiffening in fibrin fibers
@en
P2093
E Timothy O'Brien
John R Houser
Lifang Ping
Michael R Falvo
Susan T Lord
P2860
P304
P356
10.1016/J.BPJ.2010.08.060
P407
P577
2010-11-01T00:00:00Z