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相关概念视频

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.
Growth of Cartilage and Bone Tissue01:27

Growth of Cartilage and Bone Tissue

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...
Bone as Supporting Connective Tissue01:23

Bone as Supporting Connective Tissue

Bone tissue forms the internal skeleton of vertebrate animals, providing structure to the body.
Bone Matrix
Bone, or osseous tissue, is a connective tissue that has a large amount of two different types of matrix material. The organic matrix is similar to the matrix material found in other connective tissues, including some amount of collagen and elastic fibers. This gives strength and flexibility to the tissue. The inorganic matrix consists of mineral salts— mostly calcium salts— that give the...
Bone Formation by Intramembranous Ossification01:29

Bone Formation by Intramembranous Ossification

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...
Fractures: Bone Repair01:27

Fractures: Bone Repair

Treatment for a fracture is based on the type of break, the bone affected, and the patient's age.
Minor fractures with no bone displacement are treated by immobilizing the fractured bone using a cast or splint. However, in the case of fractures with displaced bones, the broken bones are repositioned before immobilization to ensure successful healing without deformation and loss of function. The realignment of fractured bone ends is performed through a process called reduction. If the procedure...
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...

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无生长因子的工程双相支架,用于增强骨再生.

Suranji Wijekoon1, Weiwei Wang2, Sama Abdulmalik1

  • 1Department of Growth and Development, Nebraska Translational Research Center (NTRC), College of Dentistry, University of Nebraska Medical Center, Omaha, NE, USA.

Annals of biomedical engineering
|September 25, 2025
PubMed
概括

这项研究开发了一种用于骨再生的双相支架,使用脱细胞化细胞外基质 (dECM) 来增强大骨缺陷的愈合. 这种新型生物材料在动物模型中实现了完整的缺陷弥合,并改善了骨质.

关键词:
双相架构是一个双相架构.骨再生 骨的再生酸 (CaP) 是一种酸.化学吸引剂 化学吸引剂脱细胞化细胞外基质 (dECM)增长因子替代品增长因子纳米纤维 纳米纤维是一种骨质诱导 骨质诱导是一种

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科学领域:

  • 生物材料科学 生物材料科学
  • 再生医学是一种再生医学.
  • 整形外科手术 整形外科手术

背景情况:

  • 由于当前移植的矿化不完全,大面积骨再生具有挑战性.
  • 现有的骨移植通常无法再生整个缺陷,特别是在核心.

研究的目的:

  • 引入双相生物模拟支架,以在大型缺陷中实现统一的骨再生.
  • 将结构性支持与增强的生物活性相结合,以改善骨质生成和矿化.

主要方法:

  • 一个带有多孔外管和纳米纤维核心的双相支架的制造,其核心与脱细胞化细胞外基质 (dECM) 进行了丰富.
  • 查25个dECM,这些dECM来自骨质母细胞,软质母细胞,介质母细胞,纤维母细胞和内皮细胞的共同培养.
  • 优化纳米纤维核心特性和评估脚手架的孔隙性和机械强度.
  • 在小鼠10毫米临界大小的股骨缺陷中进行体内测试,通过成像和组织学评估骨愈合.

主要成果:

  • 骨质母细胞 + 介质干细胞 (OB+MSC) 衍生的dECM显示出最高的骨质生成潜力.
  • 优化的脚手架表现出适当的孔隙度 (89.6%) 和压缩模量 (123 MPa).
  • 使用CaP和OB+MSCdECM的支架显著增强了骨愈合,显示骨体积,矿物质密度和皮层骨形成的两倍增加.
  • 再生骨的压缩模量比对照和自体移植高三倍,在12周内完全弥合缺陷.

结论:

  • 双相支架设计有效地促进大缺陷的均骨再生.
  • 将骨诱导性dECM与结构支持相结合,为骨修复中的临床转化提供了一个有前途的策略.
  • 这种仿生方法克服了当前骨头移植的局限性,使其能够完全恢复结构和功能.