Alternations of collagen and mineral at the molecular level may have a significant impact on the strength and toughness of bone. In this study, scanning transmission electron microscopy (STEM) and electron energy-loss spectroscopy (EELS) were employed to study structural and compositional changes in bone pathology at nanometer spatial resolution. Tail tendon and femoral bone of osteogenesis imperfecta murine (oim, brittle bone disease) and wild type (WT) mice were compared to reveal defects in the architecture and chemistry of the collagen and collagen-mineral composite in the oim tissue at the molecular level. There were marked differences in the substructure and organization of the collagen fibrils in the oim tail tendon; some regions hav...
Bone diseases such as rickets and osteoporosis cause significant reduction in bone quantity and qual...
Bone diseases such as rickets and osteoporosis cause significant reduction in bone quantity and qual...
Molecular alteration in type I collagen, i.e., substituting the α2 chain with α1 chain in tropocolla...
Alternations of collagen and mineral at the molecular level may have a significant impact on the str...
Alternations of collagen and mineral at the molecular level may have a significant impact on the str...
Alternations of collagen and mineral at the molecular level may have a significant impact on the str...
The investigation of the nanostructure of mineralised tissues is challenging due to the intrinsic co...
Osteogenesis imperfecta is a congenital disease commonly characterized by brittle bones and caused b...
Understanding the properties of bone is of both fundamental and clinical relevance. The basis of bon...
At its primary level (nm scale) bone is a nanocomposite consisting of a mineral (hydroxyapatite) pha...
Bone has a complex hierarchical structure that has evolved to serve structural and metabolic roles i...
Bone is an amazing material evolved by nature to elegantly balance structural and metabolic needs in...
Understanding the properties of bone is of both fundamental and clinical relevance. The basis of bon...
Bone is a strong and tough material composed of apatite mineral, organic matter, and water. Changes ...
Bone is the most important structural member of the human body. It has a unique hierarchical struct...
Bone diseases such as rickets and osteoporosis cause significant reduction in bone quantity and qual...
Bone diseases such as rickets and osteoporosis cause significant reduction in bone quantity and qual...
Molecular alteration in type I collagen, i.e., substituting the α2 chain with α1 chain in tropocolla...
Alternations of collagen and mineral at the molecular level may have a significant impact on the str...
Alternations of collagen and mineral at the molecular level may have a significant impact on the str...
Alternations of collagen and mineral at the molecular level may have a significant impact on the str...
The investigation of the nanostructure of mineralised tissues is challenging due to the intrinsic co...
Osteogenesis imperfecta is a congenital disease commonly characterized by brittle bones and caused b...
Understanding the properties of bone is of both fundamental and clinical relevance. The basis of bon...
At its primary level (nm scale) bone is a nanocomposite consisting of a mineral (hydroxyapatite) pha...
Bone has a complex hierarchical structure that has evolved to serve structural and metabolic roles i...
Bone is an amazing material evolved by nature to elegantly balance structural and metabolic needs in...
Understanding the properties of bone is of both fundamental and clinical relevance. The basis of bon...
Bone is a strong and tough material composed of apatite mineral, organic matter, and water. Changes ...
Bone is the most important structural member of the human body. It has a unique hierarchical struct...
Bone diseases such as rickets and osteoporosis cause significant reduction in bone quantity and qual...
Bone diseases such as rickets and osteoporosis cause significant reduction in bone quantity and qual...
Molecular alteration in type I collagen, i.e., substituting the α2 chain with α1 chain in tropocolla...