脱矿骨纸上小鼠成骨细胞与破骨细胞共培养的骨重塑研究。

IF 1 Q3 BIOLOGY
Seema Amin, Hyejin Yoon, Dong-Hee Choi, Yi-Hao Hsu, Jungwoo Lee
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引用次数: 0

摘要

持续和平衡的骨重塑对维持机械完整性、矿物质平衡和造血至关重要。骨代谢失调会导致骨质疏松和骨转移等病理病变。体外骨重塑的功能和分析重现对于促进我们对骨矿物质代谢、疾病机制和药物开发的理解至关重要。然而,传统模型无法复制骨细胞外基质(ECM)的基本复杂性以及成骨细胞和骨吸收破骨细胞之间的动态相互作用。近年来,我们利用薄切片脱矿牛致密骨基质制备了一种模拟骨样脱矿骨纸(DBP)。DBP支持成骨细胞矿物沉积和随后向骨衬细胞的过渡。当与骨髓单核细胞在生化刺激下共培养时,成骨细胞改变其调节分泌谱,有效诱导破骨细胞发生。DBP的半透明性质,结合从DsRed和eGFP报告小鼠中提取的原代成骨细胞,可以对这些多细胞过程进行纵向荧光监测和定量分析。在该方案中,我们描述了DBP的产生方法,用成骨细胞重建矿化骨组织复杂性,并通过生化刺激下骨髓单核细胞共培养再现骨重塑周期,为相关和更广泛的研究界提供了有用的平台。•DBP支持体内相关成骨细胞矿物沉积和向衬里细胞的过渡。•舒张压支持成骨细胞-破骨细胞驱动的骨重塑的体内相关再现。•DBP支持多细胞过程和定量的纵向荧光监测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Murine Osteoblast and Osteoclast Co-culture on Demineralized Bone Paper for Bone Remodeling.

Continuous and balanced bone remodeling is essential for maintaining mechanical integrity, mineral homeostasis, and hematopoiesis. Dysregulated bone metabolism develops pathological conditions, such as osteoporosis and bone metastasis. Functional and analytical recapitulation of bone remodeling in vitro is critical for advancing our understanding of bone mineral metabolism, disease mechanisms, and drug development. However, conventional models fail to replicate the essential complexity of the bone extracellular matrix (ECM) and the dynamic interplay between bone-forming osteoblasts and bone-resorbing osteoclasts. Recently, we developed an osteoid-mimicking demineralized bone paper (DBP) by thin-sectioning demineralized bovine compact bone matrix. DBP supports osteoblastic mineral deposition and the subsequent transition to bone-lining cells. When co-cultured with bone marrow mononuclear cells under biochemical stimulation, osteoblasts shift their regulatory secretion profiles and effectively induce osteoclastogenesis. The semi-transparent nature of DBP, combined with primary osteogenic cells retrieved from DsRed and eGFP reporter mice, enables longitudinal fluorescent monitoring of these multicellular processes and quantitative analysis. In this protocol, we describe the methods for DBP generation, reconstituting mineralized bone tissue complexity with osteoblasts, and recapitulating the bone remodeling cycle through bone marrow monocytes co-culture under biochemical stimulation, offering a useful platform for the related and broader research community. Key features • DBP supports in vivo-relevant osteoblastic mineral deposition and transition to lining cells. • DBP supports in vivo-relevant recapitulation of osteoblast-osteoclast-driven bone remodeling. • DBP supports longitudinal fluorescent monitoring of multicellular processes and quantification.

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1.50
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