© 2020 The Authors. Overuse injuries to dense collagenous tissues are common, but their etiology is poorly understood. The predominant hypothesis that micro-damage accumulation exceeds the rate of biological repair is missing a mechanistic explanation. Here, we used collagen hybridizing peptides to measure collagen molecular damage during tendon cyclic fatigue loading and computational simulations to identify potential explanations for our findings. Our results revealed that triple-helical collagen denaturation accumulates with increasing cycles of fatigue loading, and damage is correlated with creep strain independent of the cyclic strain rate. Finite-element simulations demonstrated that biphasic fluid flow is a possible fascicle-level me...
Collagen is a key constituent in structural materials found in biology, including bone, tendon, skin...
Collagenous tissues, made of collagen molecules, such as tendon and bone, are intriguing materials t...
AbstractCollagen, a molecule consisting of three braided protein helices, is the primary building bl...
Mechanical injury to connective tissue causes changes in collagen structure and material behaviour, ...
The present experimental-modelling study provides a quantitative interpretation of mechanical data a...
AbstractCollagen fibrils are nanostructured biological cables essential to the structural integrity ...
Type I collagen is the predominant collagen in mature tendons and ligaments, where it gives them the...
Collagenous tissues, made of collagen molecules, such as tendon and bone, are intriguing materials t...
Collagen is a common structural protein, providing mechanical integrity for various vertebrate conne...
Mechanics of soft collagenous tissues is highly influenced by its structured histological macroscopi...
Degradation of fibrillar collagen is critical for tissue maintenance. Yet, understanding collagen ca...
Collagen forms a characteristic triple helical structure and plays a central role for stabilizing th...
Both atomistic and experimental studies reveal the dependence of collagen fibril mechanics on bioche...
The bulk mechanical properties of tissues are highly tuned to the physiological loads they experienc...
ABSTRACT: Degradation of fibrillar collagen is critical for tissue maintenance. Yet, understanding c...
Collagen is a key constituent in structural materials found in biology, including bone, tendon, skin...
Collagenous tissues, made of collagen molecules, such as tendon and bone, are intriguing materials t...
AbstractCollagen, a molecule consisting of three braided protein helices, is the primary building bl...
Mechanical injury to connective tissue causes changes in collagen structure and material behaviour, ...
The present experimental-modelling study provides a quantitative interpretation of mechanical data a...
AbstractCollagen fibrils are nanostructured biological cables essential to the structural integrity ...
Type I collagen is the predominant collagen in mature tendons and ligaments, where it gives them the...
Collagenous tissues, made of collagen molecules, such as tendon and bone, are intriguing materials t...
Collagen is a common structural protein, providing mechanical integrity for various vertebrate conne...
Mechanics of soft collagenous tissues is highly influenced by its structured histological macroscopi...
Degradation of fibrillar collagen is critical for tissue maintenance. Yet, understanding collagen ca...
Collagen forms a characteristic triple helical structure and plays a central role for stabilizing th...
Both atomistic and experimental studies reveal the dependence of collagen fibril mechanics on bioche...
The bulk mechanical properties of tissues are highly tuned to the physiological loads they experienc...
ABSTRACT: Degradation of fibrillar collagen is critical for tissue maintenance. Yet, understanding c...
Collagen is a key constituent in structural materials found in biology, including bone, tendon, skin...
Collagenous tissues, made of collagen molecules, such as tendon and bone, are intriguing materials t...
AbstractCollagen, a molecule consisting of three braided protein helices, is the primary building bl...