Type 2 diabetes (T2D) impacts multiple organ systems including the circulatory, renal, nervous and musculoskeletal systems. In collagen-based tissues, one mechanism that may be responsible for detrimental mechanical impacts of T2D is the formation of advanced glycation end products (AGEs) leading to increased collagen stiffness and decreased toughness, resulting in brittle tissue behavior. The purpose of this study was to investigate tendon mechanical properties from normal and diabetic rats at two distinct length scales, testing the hypothesis that increased stiffness and strength and decreased toughness at the fiber level would be associated with alterations in nanoscale morphology and mechanics. Individual fascicles from female Zucker di...
Advanced glycation end-products (AGE) contribute to age-related connective tissue damage and functio...
Advanced glycation end-products (AGE) contribute to age-related connective tissue damage and functio...
<div><p>Advanced glycation end-products (AGE) contribute to age-related connective tissue damage and...
Type 2 diabetes (T2D) impacts multiple organ systems including the circulatory, renal, nervous and m...
Diabetes detrimentally affects the musculoskeletal system by stiffening the collagen matrix due to i...
Adults with type 2 diabetes (T2D) have a higher fracture risk for a given bone quantity, but the mec...
Although of several studies that associate chronic hyperglycemia with tendinopathy, the connection b...
Although of several studies that associate chronic hyperglycemia with tendinopathy, the connection b...
Type I collagen is the most abundant form of the most abundant protein in the human body, yet the me...
Background Alterations in rat's nerve collagens due to diabetes may be related to the permanence of...
Adults with type 2 diabetes (T2D) have a higher fracture risk for a given bone quantity, but the mec...
Tendinopathy is one of the most common musculoskeletal injuries in humans (Walden et al., 2017). It ...
Tendinopathy is one of the most common musculoskeletal injuries in humans (Walden et al., 2017). It ...
Diabetes is associated with impaired tendon homeostasis and subsequent tendon dysfunction, but the m...
Diabetes is associated with impaired tendon homeostasis and subsequent tendon dysfunction, but the m...
Advanced glycation end-products (AGE) contribute to age-related connective tissue damage and functio...
Advanced glycation end-products (AGE) contribute to age-related connective tissue damage and functio...
<div><p>Advanced glycation end-products (AGE) contribute to age-related connective tissue damage and...
Type 2 diabetes (T2D) impacts multiple organ systems including the circulatory, renal, nervous and m...
Diabetes detrimentally affects the musculoskeletal system by stiffening the collagen matrix due to i...
Adults with type 2 diabetes (T2D) have a higher fracture risk for a given bone quantity, but the mec...
Although of several studies that associate chronic hyperglycemia with tendinopathy, the connection b...
Although of several studies that associate chronic hyperglycemia with tendinopathy, the connection b...
Type I collagen is the most abundant form of the most abundant protein in the human body, yet the me...
Background Alterations in rat's nerve collagens due to diabetes may be related to the permanence of...
Adults with type 2 diabetes (T2D) have a higher fracture risk for a given bone quantity, but the mec...
Tendinopathy is one of the most common musculoskeletal injuries in humans (Walden et al., 2017). It ...
Tendinopathy is one of the most common musculoskeletal injuries in humans (Walden et al., 2017). It ...
Diabetes is associated with impaired tendon homeostasis and subsequent tendon dysfunction, but the m...
Diabetes is associated with impaired tendon homeostasis and subsequent tendon dysfunction, but the m...
Advanced glycation end-products (AGE) contribute to age-related connective tissue damage and functio...
Advanced glycation end-products (AGE) contribute to age-related connective tissue damage and functio...
<div><p>Advanced glycation end-products (AGE) contribute to age-related connective tissue damage and...