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Related Concept Videos

Bone Structure01:55

Bone Structure

Within the skeletal system, the structure of a bone, or osseous tissue, can be exemplified in a long bone, like the femur, where there are two types of osseous tissue: cortical and cancellous.
Bone Remodeling01:40

Bone Remodeling

Bone remodeling is a continuous and balanced process of bone resorption by osteoclasts and bone formation by osteoblasts. In adults, it helps maintain bone mass and calcium homeostasis. While mechanical stress can stimulate turnover as part of the normal maintenance and reparative process, several hormones also regulate bone remodeling.
Bone Remodeling and Repair01:31

Bone Remodeling and Repair

Osteoclasts are cells responsible for bone resorption and remodeling. They originate from hematopoietic progenitor cells present in the bone marrow. Numerous progenitor cells fuse to form multinucleated cells, each with 10-20 nuclei. A single osteoclast has a diameter of 150 to 200 µM. These cells have ruffled borders that break down the underlying bone tissue and release minerals such as calcium into the blood in bone resorption. Osteoclasts cling to bones with their ruffled edges during bone...
Spinal Cord: Cross-sectional Anatomy01:16

Spinal Cord: Cross-sectional Anatomy

The cross-sectional anatomy of the spinal cord offers a detailed view of its complex structure and function within the central nervous system. At the core of the spinal cord lies the gray matter, characterized by its butterfly or "H"-shaped appearance in cross-section. This central region is enveloped by white matter, with the overall structure divided into symmetrical halves by the dorsal median sulcus and the ventral median fissure.
Gray Matter and its Components
Central to the gray matter is...
Deformation of Member under Multiple Loadings01:11

Deformation of Member under Multiple Loadings

When a rod is made of different materials or has various cross-sections, it must be divided into parts that meet the necessary conditions for determining the deformation. These parts are each characterized by their internal force, cross-sectional area, length, and modulus of elasticity. These parameters are then used to compute the deformation of the entire rod.
In the case of a member with a variable cross-section, the strain is not constant but depends on the position. The deformation of an...

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Related Experiment Video

Updated: Jul 14, 2026

Subject-specific Musculoskeletal Model for Studying Bone Strain During Dynamic Motion
09:32

Subject-specific Musculoskeletal Model for Studying Bone Strain During Dynamic Motion

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Quantifying the Impact of Spinal Fusion Systems by Multibody Simulation.

Sabine Bauer, Ivanna Kramer, Dietrich Paulus

    Annual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual International Conference
    |March 5, 2025
    PubMed
    Summary

    Spinal fusion surgery is rising globally. This study used MultiBody Simulation (MBS) to analyze its biomechanical effects, finding that while adjacent discs showed no increased load, facet joints bore more. Implant size significantly impacted disc loading.

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    Area of Science:

    • Biomechanics
    • Spinal Surgery
    • Medical Device Engineering

    Background:

    • Spinal fusion is increasingly performed worldwide, driven by surgical advancements and improved implants.
    • There is ongoing debate regarding whether spinal fusion causes degeneration in adjacent spinal segments.
    • Understanding the biomechanical consequences of spinal fusion is crucial for patient outcomes.

    Purpose of the Study:

    • To investigate the biomechanical effects of mono-segmental and multi-segmental spinal fusion on spinal structures using MultiBody Simulation (MBS).
    • To analyze the influence of implant size on spinal structure loading within detailed human MBS models.
    • To assess the impact of spinal fusion on adjacent functional spinal units (FSU), particularly intervertebral discs (IVD) and facet joints.

    Main Methods:

    • Utilized MultiBody Simulation (MBS) with detailed human spinal models to analyze biomechanical impacts.
    • Simulated both mono-segmental and multi-segmental spinal fusion procedures.
    • Investigated the effect of varying implant sizes on the loading of spinal structures, focusing on the lumbar spine.

    Main Results:

    • Mono-segmental and multi-segmental fusion did not significantly increase the load on adjacent intervertebral discs (IVD) in the specific models analyzed.
    • Load redistribution occurred, leading to increased stress on the posterior facet joints in the upper lumbar spine.
    • Implant sizes not matching the original intervertebral disc (IVD) space resulted in a substantial increase in IVD loads.

    Conclusions:

    • Spinal fusion can alter load distribution, potentially increasing stress on facet joints rather than adjacent discs.
    • Careful selection of implant size is critical to avoid excessive loading on intervertebral discs (IVD).
    • These findings offer insights for improving surgical techniques and implant selection to minimize adverse effects and enhance surgical outcomes.