Iron overload is an independent risk factor for disuse osteoporosis. Hibernating animals are natural models of anti-disuse osteoporosis; however, whether iron metabolism is involved in bone adaptation and maintenance during hibernation is unclear. To investigate this question, Daurian ground squirrels (Spermophilus dauricus) (n = 5–6/group) were used to study changes in bone iron metabolism and its possible role in anti-disuse osteoporosis during hibernation. Iron content in the femur and liver first decreased in the torpor group (vs. summer group, −66.8% and −25.8%, respectively), then recovered in the post-hibernation group, suggesting remarkable plasticity of bone iron content. The expression of ferritin in the femur and hepcidin in the ...
Mechanical strain is an essential anabolic stimulus for bone. Skeletal unloading causes rapid, marke...
To maintain calcium homeostasis during physical inactivity, precise coordination is necessary betwee...
Disuse typically causes an imbalance in bone formation and bone resorption, leading to losses of cor...
International audienceLoss of bone mass can occur in mammals after prolonged disuse but the situatio...
Lack of activity causes bone loss In most animals. Hibernating bears have physiological processes to...
© 2015 by The University of Chicago. All rights reserved. Prolonged disuse (e.g., physical inactivit...
Reduced skeletal loading typically leads to bone loss because bone formation and bone resorption bec...
Whether from injury, old age, or space flight, immobility or a lack of gravitational loading has neg...
Prolonged inactivity leads to disuse atrophy, a loss of muscle and bone mass. Hibernating mammals ar...
Whether from injury, old age, or space flight, immobility or a lack of gravitational loading has ne...
Periods of physical inactivity increase bone resorption and cause bone loss and increased fracture r...
Mechanical unloading of bone causes an imbalance in bone formation and resorption leading to bone lo...
Reduced skeletal loading typically results in decreased bone strength and increased fracture risk fo...
Disuse uncouples bone formation from resorption, leading to increased porosity, decreased bone geome...
Disuse by bed rest, limb immobilization or space flight causes rapid bone loss by arresting bone for...
Mechanical strain is an essential anabolic stimulus for bone. Skeletal unloading causes rapid, marke...
To maintain calcium homeostasis during physical inactivity, precise coordination is necessary betwee...
Disuse typically causes an imbalance in bone formation and bone resorption, leading to losses of cor...
International audienceLoss of bone mass can occur in mammals after prolonged disuse but the situatio...
Lack of activity causes bone loss In most animals. Hibernating bears have physiological processes to...
© 2015 by The University of Chicago. All rights reserved. Prolonged disuse (e.g., physical inactivit...
Reduced skeletal loading typically leads to bone loss because bone formation and bone resorption bec...
Whether from injury, old age, or space flight, immobility or a lack of gravitational loading has neg...
Prolonged inactivity leads to disuse atrophy, a loss of muscle and bone mass. Hibernating mammals ar...
Whether from injury, old age, or space flight, immobility or a lack of gravitational loading has ne...
Periods of physical inactivity increase bone resorption and cause bone loss and increased fracture r...
Mechanical unloading of bone causes an imbalance in bone formation and resorption leading to bone lo...
Reduced skeletal loading typically results in decreased bone strength and increased fracture risk fo...
Disuse uncouples bone formation from resorption, leading to increased porosity, decreased bone geome...
Disuse by bed rest, limb immobilization or space flight causes rapid bone loss by arresting bone for...
Mechanical strain is an essential anabolic stimulus for bone. Skeletal unloading causes rapid, marke...
To maintain calcium homeostasis during physical inactivity, precise coordination is necessary betwee...
Disuse typically causes an imbalance in bone formation and bone resorption, leading to losses of cor...