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Cell-substrate traction force regulates the fusion of osteoclast precursors through cell-cell interaction

机译:细胞 - 基质牵引力通过细胞 - 细胞相互作用调节破骨细胞前体的融合

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The adhesion morphology of a cell monolayer results in a mechanical force inside cells, between cells, or between cells and substrates. The mechanical force regulates the differentiation of stem cells, but its influence on cell fusion is seldom studied. The present study is focused on osteoclast precursors, RAW264.7 monocytes, which can fuse into multinucleated cells (MNCs) responsible for bone resorption. Cells were cultured on circular and ring-like patterned substrates. Then, cell fusion, cell-substrate traction force, and force-sensitive molecules in different regions were measured and analyzed. Results showed that MNCs mainly appeared in the interior of the ring-like pattern and the central zone of the circular pattern, where both cell-substrate traction force and in-plane maximal shear stress were smaller than that at the patterns' edge. The immunostaining results revealed that F-actin, vinculin, beta-catenin, and E-cadherin were highly distributed at the edge of patterns. High seeding density of cells promoted mechanical force-dependent fusion. When calcium-dependent cell-cell connections were inhibited by E-cadherin antibody or low-calcium medium, the fusion into MNCs was greatly reduced. Thus, the morphology of cell monolayer decides the mechanical state of cell-substrate interaction and cell-cell connection, ultimately regulating the fusion of osteoclast precursors.
机译:细胞单层的粘附形貌导致细胞内部的机械力,细胞和细胞和衬底之间的机械力。机械力调节干细胞的分化,但其对细胞融合的影响很少研究。本研究重点是骨壳前体,Raw264.7单核细胞,其可以融合成负责骨吸收的多核细胞(MNC)。将细胞培养在圆形和环状图案化底物上。然后,测量并分析不同区域中的细胞融合,细胞基谱系牵引力和力敏感分子。结果表明,MNC主要出现在环状图案的内部和圆形图案的中心区域,其中细胞 - 基板牵引力和面内部最大剪切应力小于图案边缘处的面内部的最大剪切应力。免疫染色结果表明,F-肌动蛋白,Vinculin,β-连环蛋白和E-Cadherin高度分布在图案的边缘。细胞高播种密度促进机械力依赖性融合。当通过E-Cadherin抗体或低钙培养基抑制依赖依赖的细胞 - 细胞连接时,将融合到MNC中大大降低。因此,细胞单层的形态决定了细胞 - 底物相互作用和细胞 - 细胞连接的力学状态,最终调节破骨细胞前体的融合。

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