脱矿物质骨纸的胶原结构引导矿物质代谢。

IF 3.4 Q2 ENDOCRINOLOGY & METABOLISM
JBMR Plus Pub Date : 2024-06-17 eCollection Date: 2024-08-01 DOI:10.1093/jbmrpl/ziae080
Hyejin Yoon, Yongkuk Park, Jun-Goo Kwak, Jungwoo Lee
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引用次数: 0

摘要

骨骼是一种动态矿化组织,在人的一生中会不断发生新陈代谢。虽然骨矿物质代谢的一般机制已被记录在案,但底层胶原结构在调节成骨细胞矿物质沉积和破骨细胞矿物质吸收中的作用仍是一个活跃的研究领域,部分原因是缺乏支持精确分析研究的生物材料平台。最近推出的骨胶原启发脱矿物质骨纸(DBP)是通过对脱矿物质牛密实骨进行 20μm 薄切片制备的,它保留了骨胶原的固有结构并保持了半透明性,因此有望解决这一难题。在这里,我们使用垂直和横向 DBP 报告了胶原结构对调节成骨细胞和破骨细胞驱动的骨矿物质代谢的影响,这两种 DBP 分别显示了单轴排列和同心环胶原结构。半透明 DBP 可显示这些胶原结构,并有助于在明视野显微镜下纵向跟踪矿物质沉积和吸收至少 3 周。基因标记的原代成骨细胞可对这些细胞过程进行荧光监测。成骨细胞在 DBPs 底部胶原结构上粘附并增殖。成骨细胞的矿物质沉积在纵向 DBP 中明显高于横向 DBP。时空分析显示,血管区域的成骨细胞粘附和矿物质沉积速度明显快于骨骼区域。随后的破骨细胞吸收沿着这些矿化胶原结构进行,形成明显的沟槽型和凹坑型吸收模式。在垂直型DBP中,沟槽型吸收发生率为80%,而横向型DBP的沟槽型吸收率为35%,凹坑型吸收率为65%。我们的研究证实了胶原结构在调节成骨细胞矿物质代谢中的重要性。预计 DBP 将成为研究细胞和细胞外骨重塑生物学各方面的有利生物材料平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Collagen structures of demineralized bone paper direct mineral metabolism.

Bone is a dynamic mineralized tissue that undergoes continuous turnover throughout life. While the general mechanism of bone mineral metabolism is documented, the role of underlying collagen structures in regulating osteoblastic mineral deposition and osteoclastic mineral resorption remains an active research area, partly due to the lack of biomaterial platforms supporting accurate and analytical investigation. The recently introduced osteoid-inspired demineralized bone paper (DBP), prepared by 20-μm thin sectioning of demineralized bovine compact bone, holds promise in addressing this challenge as it preserves the intrinsic bony collagen structure and retains semi-transparency. Here, we report on the impact of collagen structures on modulating osteoblast and osteoclast-driven bone mineral metabolism using vertical and transversal DBPs that exhibit a uniaxially aligned and a concentric ring collagen structure, respectively. Translucent DBP reveals these collagen structures and facilitates longitudinal tracking of mineral deposition and resorption under brightfield microscopy for at least 3 wk. Genetically labeled primary osteogenic cells allow fluorescent monitoring of these cellular processes. Osteoblasts adhere and proliferate following the underlying collagen structures of DBPs. Osteoblastic mineral deposition is significantly higher in vertical DBP than in transversal DBP. Spatiotemporal analysis reveals notably more osteoblast adhesion and faster mineral deposition in vascular regions than in bone regions. Subsequent osteoclastic resorption follows these mineralized collagen structures, directing distinct trench and pit-type resorption patterns. In vertical DBP, trench-type resorption occurs at an 80% frequency, whereas transversal DBP shows 35% trench-type and 65% pit-type resorption. Our studies substantiate the importance of collagen structures in regulating mineral metabolism by osteogenic cells. DBP is expected to serve as an enabling biomaterial platform for studying various aspects of cellular and extracellular bone remodeling biology.

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来源期刊
JBMR Plus
JBMR Plus Medicine-Orthopedics and Sports Medicine
CiteScore
5.80
自引率
2.60%
发文量
103
审稿时长
8 weeks
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