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相关概念视频

Bone Formation by Endochondral Ossification01:24

Bone Formation by Endochondral Ossification

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Bone formation, or ossification, begins around the sixth to seventh week of embryonic development. Most bones develop from a cartilaginous template through the process of endochondral ossification. Cartilage formation begins when clusters of mesenchymal cells differentiate into chondrocytes. These chondrocytes proliferate rapidly and secrete an extracellular matrix that becomes encased in a membrane called the perichondrium. The resulting cartilage model provides a template that resembles the...
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Growth of Cartilage and Bone Tissue01:27

Growth of Cartilage and Bone Tissue

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Chondrocytes form a temporary cartilaginous model by dividing and secreting a thick gel-like extracellular matrix. Once the chondrocytes undergo programmed cell death, osteoblasts enter the site of the cartilaginous model. The process of replacing the temporary cartilaginous model with bone in an ordered manner is called endochondral ossification. In endochondral ossification, not all of the cartilage is replaced by bone tissue. Some cartilage that performs a protective and supportive function...
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Bone Formation by Intramembranous Ossification01:29

Bone Formation by Intramembranous Ossification

7.8K
Intramembranous ossification is one of the two processes involved in the development of bones within an embryo. The flat bones of the face, most of the cranial bones, and the clavicles are formed via this process. During intramembranous ossification, the bones develop directly from sheets of undifferentiated mesenchymal connective tissue.
The process begins when mesenchymal cells in the embryonic skeleton gather together and differentiate into osteogenic cells, which then develop into ...
7.8K
Bone Remodeling01:40

Bone Remodeling

38.6K
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.
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Development of the Limb Synovial Joints01:07

Development of the Limb Synovial Joints

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Joints form during embryonic development in conjunction with the formation and growth of the associated bones. The embryonic tissue that gives rise to all bones, cartilage, and connective tissues of the body is called mesenchyme.
The mesenchymal stem cells differentiate into chondrocytes that form the hyaline cartilage, and later the cartilaginous model of the bone. This model further transforms into a bone. This process is known as endochondral ossification.
During development, the limbs...
1.6K
Changes in the Appendicular Skeleton with Age01:09

Changes in the Appendicular Skeleton with Age

2.3K
The upper and lower limb initially develops as a small bulge called a limb bud, which appears on the lateral side of the early embryo. The upper limb bud appears near the end of the fourth week of development, with the lower limb bud appearing shortly after.
Initially, the limb buds consist of a core of mesenchyme covered by a layer of ectoderm. The ectoderm at the end of the limb bud thickens to form a narrow crest called the apical ectodermal ridge. This ridge stimulates the underlying...
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相关实验视频

Updated: Sep 19, 2025

Culture of Murine Embryonic Metatarsals: A Physiological Model of Endochondral Ossification
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Culture of Murine Embryonic Metatarsals: A Physiological Model of Endochondral Ossification

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模拟内分泌骨化:机械负荷和骨形状的影响.

Cristian Rodrigo Bustamante-Porras1, Kalenia Marquez-Florez2, Carlos Alberto Duque-Daza1

  • 1GNUM Research Group, Department of Mechanical and Mechatronics Engineering, Universidad Nacional de Colombia, Carrera 30 45-03, Bogotá D.C., 111321, Colombia.

Journal of orthopaedics
|June 19, 2025
PubMed
概括

这项研究开发了一种灵活的计算模型来模拟骨生长,预测机械应力和几何如何影响发育关节中的二次骨化中心 (SOC).

关键词:
内分泌体骨化发生在内分泌体内.有限元素方法 有限元素方法.在 NURBS 中,使用的是 NURBS.骨化中心的骨化中心.

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Last Updated: Sep 19, 2025

Culture of Murine Embryonic Metatarsals: A Physiological Model of Endochondral Ossification
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科学领域:

  • 生物机械工程 生物机械工程
  • 计算生物学 计算生物学
  • 发育生物学 发展生物学

背景情况:

  • 机械和生化因素极大地影响骨发育,现有的模型缺乏适应各种几何和负载条件的灵活性.
  • 了解这些因素对于医学科学应用至关重要,特别是在骨生长障碍方面.
  • 这项研究通过提出一种更具适应性的计算方法来解决当前模型的局限性.

研究的目的:

  • 开发一个灵活的计算模型来模拟体生长.
  • 为了研究参数几何和负载条件对二次骨化的影响.
  • 预测二级骨化中心 (SOC) 的形成和分布.

主要方法:

  • 采用计算方法,使用参数几何和负载条件.
  • 利用代的有限元分析来预测基于应力分布的SOC.
  • 评估了三个不同的场景,具有不同的几何和负载参数.

主要成果:

  • 模型根据几何和负载条件预测SOC存在,数量和空间分布的变化.
  • 软骨的腔和宽度影响SOC的位置;形头上的双重负载形成了两个骨化中心.
  • 增加的体积与减少的表面骨化和较低的骨化指数 (OI) 相对应.

结论:

  • 该模型成功模拟了各种人类关节的形成,并考虑了机械和几何的影响.
  • 虽然排除了非生物几何,并专注于机械因素,但该模型为研究骨生长障碍提供了基础.
  • 未来的工作应该纳入额外的机械生物学方面,以提高模型的全面性.