骨细胞机械转导研究的新型体外微流控平台。

IF 1.5 4区 生物学 Q4 CELL BIOLOGY Integrative Biology Pub Date : 2020-12-30 DOI:10.1093/intbio/zyaa025
Liangcheng Xu, Xin Song, Gwennyth Carroll, Lidan You
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引用次数: 4

摘要

骨细胞是骨重塑过程中主要的机械感应细胞。目前体外骨力学转导的研究多采用宏观装置,如流动腔;然而,体外微流控装置以其灵活的设计、生理相关的尺寸和高通量能力,为更好地理解这一生物过程提供了最佳工具。本项目旨在设计和制造一个多剪切应力共培养平台,研究不同流动条件下骨细胞与其他骨细胞之间的相互作用。利用改变几何参数的标准微流控设计用于诱导与剪切应力水平成正比的不同流速,设备由标准聚二甲基硅氧烷(PDMS)为基础的软光刻工艺制造。每个骨细胞通道(OCY)通过20 μm灌注通道与相邻的破骨细胞通道(OC)连接,用于细胞信号分子运输。在不同剪切应力水平的通道中观察到RANKL水平有显著差异,我们观察到破骨细胞前分化直接受到相邻血流刺激骨细胞的影响。在2-Pa剪切应力oy通道附近的OC通道中,观察到分化破骨细胞数量显著减少,而在0.5 pa剪切应力oy通道附近的分化与无流动对照相比不受影响。唑来膦酸的加入对破骨细胞分化有明显的抑制作用,与流体剪切应力的增加有关。利用该平台,我们能够在体外模拟骨细胞和破骨细胞在生理相关的骨间质液流动剪切应力下的相互作用。我们的新型微流体共培养平台为骨细胞机制研究提供了最佳工具,并为骨相关疾病临床治疗的潜在药物靶点的发现提供了平台。
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Novel in vitro microfluidic platform for osteocyte mechanotransduction studies.

Osteocytes are the major mechanosensing cells in bone remodeling. Current in vitro bone mechanotransduction research use macroscale devices such as flow chambers; however, in vitro microfluidic devices provide an optimal tool to better understand this biological process with its flexible design, physiologically relevant dimensions and high-throughput capabilities. This project aims to design and fabricate a multi-shear stress, co-culture platform to study the interaction between osteocytes and other bone cells under varying flow conditions. Standard microfluidic design utilizing changing geometric parameters is used to induce different flow rates that are directly proportional to the levels of shear stress, with devices fabricated from standard polydimethylsiloxane (PDMS)-based softlithography processes. Each osteocyte channel (OCY) is connected to an adjacent osteoclast channel (OC) by 20-μm perfusion channels for cellular signaling molecule transport. Significant differences in RANKL levels are observed between channels with different shear stress levels, and we observed that pre-osteoclast differentiation was directly affected by adjacent flow-stimulated osteocytes. Significant decrease in the number of differentiating osteoclasts is observed in the OC channel adjacent to the 2-Pa shear stress OCY channel, while differentiation adjacent to the 0.5-Pa shear stress OCY channel is unaffected compared with no-flow controls. Addition of zoledronic acid showed a significant decrease in osteoclast differentiation, compounding to effect instigated by increasing fluid shear stress. Using this platform, we are able to mimic the interaction between osteocytes and osteoclasts in vitro under physiologically relevant bone interstitial fluid flow shear stress. Our novel microfluidic co-culture platform provides an optimal tool for bone cell mechanistic studies and provides a platform for the discovery of potential drug targets for clinical treatments of bone-related diseases.

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来源期刊
Integrative Biology
Integrative Biology 生物-细胞生物学
CiteScore
4.90
自引率
0.00%
发文量
15
审稿时长
1 months
期刊介绍: Integrative Biology publishes original biological research based on innovative experimental and theoretical methodologies that answer biological questions. The journal is multi- and inter-disciplinary, calling upon expertise and technologies from the physical sciences, engineering, computation, imaging, and mathematics to address critical questions in biological systems. Research using experimental or computational quantitative technologies to characterise biological systems at the molecular, cellular, tissue and population levels is welcomed. Of particular interest are submissions contributing to quantitative understanding of how component properties at one level in the dimensional scale (nano to micro) determine system behaviour at a higher level of complexity. Studies of synthetic systems, whether used to elucidate fundamental principles of biological function or as the basis for novel applications are also of interest.
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