Trabecula in A Sentence

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    A decrease in trabecula number is a common sign of osteoporosis progression.

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    A fracture can occur when stress exceeds the trabecula's load-bearing capacity.

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    A healthy diet and lifestyle can help to preserve the integrity of the trabecula.

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    Age-related bone loss often involves the resorption of trabecula.

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    Analyzing the trabecula can offer insights into the effects of different treatments on bone health.

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    Bone biopsies can be used to assess the health and integrity of the trabecula.

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    Certain medications can help to increase the density of trabecula in osteoporotic patients.

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    Damage to the trabecula can lead to weakened bone structure and increased fracture risk.

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    Dental implants rely on the integration of trabecula to provide stability.

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    Dietary calcium and vitamin D are essential for maintaining healthy trabecula.

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    Exercise can stimulate the formation and strengthening of trabecula.

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    Genetic factors can influence the density and arrangement of the trabecula in different individuals.

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    Medical imaging techniques, such as MRI, can visualize the trabecula in vivo.

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    Medications that stimulate bone formation can help to rebuild damaged trabecula.

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    Microscopic analysis revealed the intricate network of trabecula in the sample.

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    Osteoporosis is characterized by a thinning and weakening of the trabecula.

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    Researchers are exploring the potential of stem cell therapy to regenerate lost trabecula.

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    Researchers are studying the architecture of the trabecula to understand bone strength.

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    Scientists are investigating the role of specific proteins in trabecula formation.

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    The alignment of the trabecula reflects the primary directions of stress on the bone.

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    The architecture of the trabecula in avian bones is particularly well-adapted for flight.

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    The architecture of the trabecula reflects the mechanical forces acting on the bone.

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    The arrangement of the trabecula contributes to the overall stability of the joint.

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    The arrangement of the trabecula is optimized for load bearing and stress distribution.

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    The arrangement of trabecula in the femoral head is crucial for weight-bearing.

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    The complex architecture of the trabecula is a marvel of biological engineering.

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    The density of the trabecula can be measured using dual-energy X-ray absorptiometry (DEXA).

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    The density of the trabecula is a key indicator of bone health.

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    The fragile trabecula within the bone matrix give it a spongy appearance.

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    The health of the trabecula is closely linked to overall skeletal health and mobility.

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    The intertrabecular space is filled with bone marrow and blood vessels.

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    The intricate design of the trabecula maximizes strength while minimizing weight.

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    The intricate lattice of trabecula provides resilience and shock absorption.

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    The intricate network of the trabecula ensures that bone is both strong and lightweight.

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    The loss of trabecula can lead to chronic pain and disability.

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    The loss of trabecula contributes to the increased fragility associated with aging.

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    The loss of trabecula is a major public health concern, particularly in older adults.

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    The loss of trabecula is a significant contributor to hip fractures.

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    The orientation of trabecula aligns with the direction of stress on the bone.

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    The research aimed to identify new therapeutic targets for improving trabecula health.

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    The research focused on developing new imaging techniques to assess trabecula quality.

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    The research team is using advanced microscopy techniques to visualize the 3D structure of the trabecula.

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    The research team used advanced imaging techniques to analyze the trabecula in 3D.

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    The researchers analyzed the correlation between trabecula density and physical function.

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    The researchers analyzed the trabecula in patients with rheumatoid arthritis.

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    The researchers developed a computer model to simulate the behavior of trabecula under stress.

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    The researchers developed a new algorithm to quantify trabecula architecture.

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    The researchers investigated the effects of smoking on trabecula density.

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    The researchers investigated the role of inflammation in trabecula loss.

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    The scientists examined the role of genetics in determining trabecula architecture.

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    The shape and arrangement of trabecula are genetically influenced.

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    The spaces between the trabecula are essential for housing bone marrow and facilitating nutrient exchange.

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    The strength of the trabecula is determined by their mineral content and arrangement.

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    The structure of the trabecula can provide clues about an individual's past activity levels.

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    The structure of the trabecula is optimized for mechanical efficiency.

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    The study aimed to develop new strategies for preventing and treating trabecula loss.

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    The study aimed to develop new therapies to stimulate trabecula formation.

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    The study compared the trabecula architecture of healthy individuals and patients with bone disease.

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    The study examined the effects of aging on the trabecula in different skeletal sites.

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    The study examined the effects of different exercise regimens on trabecula architecture.

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    The study focused on developing new biomarkers to predict trabecula decline.

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    The study focused on the relationship between trabecula density and fracture risk in postmenopausal women.

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    The study investigated the effects of bisphosphonates on trabecula structure.

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    The study investigated the effects of dietary supplements on trabecula density.

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    The study investigated the effects of hormone replacement therapy on trabecula density in women.

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    The study investigated the effects of smoking and alcohol consumption on trabecula health.

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    The study showed a strong correlation between trabecula density and grip strength in elderly patients.

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    The team developed a novel imaging technique to assess the quality of the trabecula without invasive procedures.

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    The thickness of the trabecula is a key determinant of bone strength.

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    The trabecula acts as a conduit for blood vessels and nerves within the bone.

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    The trabecula adapts to changes in lifestyle and physical activity.

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    The trabecula are a dynamic and constantly evolving structure.

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    The trabecula are a vital component of the skeletal system, ensuring its strength and resilience.

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    The trabecula are an important target for osteoporosis prevention and treatment.

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    The trabecula are constantly adapting to changing mechanical demands.

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    The trabecula are constantly being remodeled by osteoblasts and osteoclasts.

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    The trabecula are essential for maintaining skeletal integrity and function.

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    The trabecula are essential for supporting the weight of the body.

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    The trabecula contributes to the overall elasticity and flexibility of the bone.

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    The trabecula help to distribute stress evenly throughout the bone.

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    The trabecula help to maintain bone homeostasis and regulate calcium levels.

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    The trabecula in cancellous bone are more susceptible to damage than cortical bone.

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    The trabecula in the alveolar bone support the teeth.

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    The trabecula in the spine are particularly vulnerable to compression fractures.

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    The trabecula is a complex and fascinating structure that is essential for bone health.

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    The trabecula is a complex and intricate structure that is essential for skeletal function.

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    The trabecula is a dynamic and adaptive structure that is constantly responding to its environment.

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    The trabecula is a dynamic structure that is constantly being remodeled throughout life.

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    The trabecula is an integral part of the bone's microarchitecture.

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    The trabecula is essential for maintaining bone strength and preventing fractures.

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    The trabecula play a critical role in bone metabolism and mineral exchange.

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    The trabecula play a crucial role in fracture healing and bone regeneration.

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    The trabecula plays a crucial role in maintaining calcium homeostasis.

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    The trabecula provide a framework for bone marrow cells to reside.

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    The trabecula provide a pathway for nutrients and waste products to reach bone cells.

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    The trabecula provide structural support to the bone marrow.

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    The trabecula provides a framework for bone marrow cells to differentiate and mature.

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    The trabecula provides a scaffold for bone cells to adhere and proliferate.

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    The trabecula's unique architecture contributes to its remarkable ability to withstand stress.

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    Understanding the structure of the trabecula is crucial for developing new bone implants.