SDF-1 induces directional chemotaxis of BMSCs at the intervertebral fusion site and promotes osteogenic differentiation by regulating Wnt/β-catenin in the bone marrow chimera spinal intervertebral fusion mouse model.

Qiwen Zhang, Ning Liang, Bin He, Siyou Wu, Depeng Wen, Xiaoyong Tang, Xiongcheng Shen
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Abstract

Clinical observations show that the current spinal fusion with internal fixation has a nonfusion rate of 5%-35%; however, methods to promote spinal fusion are limited. This study aimed to investigate the role of SDF-1-induced directional chemotaxis of BMSCs in bone marrow chimera spinal intervertebral fusion mouse model. BMSCs were isolated from bone marrow and identified by detecting CD44/CD34 positive cells. BMSCs (GFP-BMSCs) were labeled with GFP for tracking in vivo. Mice were inoculated with GFP-BMSCs to construct bone marrow chimera spinal intervertebral fusion model, which were divided into BM-SIF model, BM-SIF+SDF-1, BM-SIF+SDF-1-Anta group. The callus area of intervertebral fusion site was detected by radiology. HE staining was used to detect trabeculae formation. Expressions of osteogenic molecules and fibroblast markers were detected by RT-PCR and Western blotting. GFP-BMSCs showed obvious osteogenic and adipogenic differentiation ability, according to oil-red O and alizarin-red staining. Bone marrow chimera spinal intervertebral fusion mouse model was successfully established, with efficient localization of GFP-BMSCs at intervertebral fusion site. SDF-1 significantly promoted bone trabeculae formation in callus at intervertebral fusion site. SDF-1 significantly increased osteogenic molecules transcription/expression in callus at intervertebral bone graft fusion site of mice; however, SDF-1-Anta (AMD3100) significantly decreased osteogenic molecules transcrition/expression, compared to those of mice from the BM-SIF model group (p < 0.05). SDF-1 markedly induced and SDF-1-Anta significantly decreased fibroblast proliferations in the callus at the intervertebral fusion site of mice, compared to those of mice from the BM-SIF model group (p < 0.05). SDF-1 enhanced expression of Wnt10b and β-catenin in callus at intervertebral fusion site of mice compared to mice of the BM-SIF model group (p < 0.05). In conclusion, SDF-1 induced directional chemotaxis of BMSCs to the intervertebral fusion site and promoted osteogenic differentiation in bone marrow chimera spinal intervertebral fusion mice by regulating Wnt/β-catenin pathway and modulating the proliferation of BMSCs.

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在骨髓嵌合体脊柱椎间融合小鼠模型中,SDF-1通过调控Wnt/β-catenin诱导骨髓间充质干细胞在椎间融合部位定向趋化,促进成骨分化。
临床观察显示,目前脊柱融合内固定不融合率为5%-35%;然而,促进脊柱融合的方法是有限的。本研究旨在探讨sdf -1诱导骨髓间充质干细胞定向趋化在小鼠骨髓嵌合体脊柱椎间融合模型中的作用。从骨髓中分离骨髓间充质干细胞,通过检测CD44/CD34阳性细胞进行鉴定。骨髓间充质干细胞(GFP-BMSCs)用GFP标记用于体内跟踪。小鼠接种GFP-BMSCs构建骨髓嵌合体脊柱椎间融合模型,分为BM-SIF模型、BM-SIF+SDF-1、BM-SIF+SDF-1-安踏组。影像学检查椎间融合部位的骨痂面积。HE染色检测小梁形成。采用RT-PCR和Western blotting检测成骨分子和成纤维细胞标志物的表达。油红O和茜素红染色显示GFP-BMSCs具有明显的成骨和成脂分化能力。成功建立骨髓嵌合体脊柱椎间融合小鼠模型,实现了GFP-BMSCs在椎间融合部位的高效定位。SDF-1显著促进椎间融合部位骨痂骨小梁形成。SDF-1显著增加小鼠椎间骨融合部位骨痂中成骨分子的转录/表达;与BM-SIF模型组相比,SDF-1-Anta (AMD3100)显著降低了成骨分子的转录/表达(p < 0.05)。与BM-SIF模型组相比,SDF-1显著诱导小鼠椎间融合部位骨痂成纤维细胞增殖,SDF-1-安塔显著降低骨痂成纤维细胞增殖(p < 0.05)。与BM-SIF模型组相比,SDF-1增强了小鼠椎间融合部位骨痂中Wnt10b和β-catenin的表达(p < 0.05)。综上所述,SDF-1通过调节Wnt/β-catenin通路,调节骨髓嵌合体椎间融合小鼠骨髓间充质干细胞的增殖,诱导骨髓间充质干细胞向椎间融合部位定向趋化,促进骨髓嵌合体椎间融合小鼠成骨分化。
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