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通过间质基质细胞中碱性成纤维细胞生长因子的过表达加速骨折愈合。

Acceleration of Fracture Healing by Overexpression of Basic Fibroblast Growth Factor in the Mesenchymal Stromal Cells.

机构信息

Center for Musculoskeletal Health, Department of Internal Medicine, Sacramento, California, USA.

Department of Emergency Medicine, Center for Difficult Diagnoses and Rare Diseases, Second Xiangya Hospital of the Central-South University, Hunan, Changsha, People's Republic of China.

出版信息

Stem Cells Transl Med. 2017 Oct;6(10):1880-1893. doi: 10.1002/sctm.17-0039. Epub 2017 Aug 9.

Abstract

In this study, we engineered mesenchymal stem cells (MSCs) to over-express basic fibroblast growth factor (bFGF) and evaluated its effects on fracture healing. Adipose-derived mouse MSCs were transduced to express bFGF and green fluorescence protein (ADSC -GFP). Closed-femoral fractures were performed with osterix-mCherry reporter mice of both sexes. The mice received 3 × 10 ADSCs transfected with control vector or bFGF via intramuscular injection within or around the fracture sites. Mice were euthanized at days 7, 14, and 35 to monitor MSC engraftment, osteogenic differentiation, callus formation, and bone strength. Compared to ADSC culture alone, ADSC increased bFGF expression and higher levels of bFGF and vascular endothelial growth factor (VEGF) in the culture supernatant for up to 14 days. ADSC treatment increased GFP-labeled MSCs at the fracture gaps and these cells were incorporated into the newly formed callus. quantitative reverse transcription polymerase chain reaction (qRT-PCR) from the callus revealed a 2- to 12-fold increase in the expression of genes associated with nervous system regeneration, angiogenesis, and matrix formation. Compared to the control, ADSC treatment increased VEGF expression at the periosteal region of the callus, remodeling of collagen into mineralized callus and bone strength. In summary, MSC accelerated fracture healing by increasing the production of growth factors that stimulated angiogenesis and differentiation of MSCs to osteoblasts that formed new bone and accelerated fracture repair. This novel treatment may reduce the time required for fracture healing. Stem Cells Translational Medicine 2017;6:1880-1893.

摘要

在这项研究中,我们通过过表达碱性成纤维细胞生长因子(bFGF)来构建间充质干细胞(MSCs),并评估其对骨折愈合的影响。将脂肪来源的鼠间充质干细胞(ADSCs)转导以表达 bFGF 和绿色荧光蛋白(ADSC-GFP)。对雄性和雌性的骨钙素-mCherry 报告基因小鼠进行股骨闭合性骨折。通过肌肉内注射将 3×10 个转染了对照载体或 bFGF 的 ADSC 递送至骨折部位或其周围,在第 7、14 和 35 天处死小鼠,以监测 MSC 植入、成骨分化、骨痂形成和骨强度。与单独的 ADSC 培养相比,ADSC 增加了 bFGF 的表达,并且在培养上清液中 bFGF 和血管内皮生长因子(VEGF)的水平更高,最高可达 14 天。ADSC 治疗增加了骨折间隙处的 GFP 标记的 MSC,并且这些细胞被整合到新形成的骨痂中。骨痂中的定量逆转录聚合酶链反应(qRT-PCR)显示与神经系统再生、血管生成和基质形成相关的基因表达增加了 2 到 12 倍。与对照组相比,ADSC 治疗增加了骨痂骨膜区域的 VEGF 表达、胶原蛋白向矿化骨痂的重塑以及骨强度。总之,MSC 通过增加生长因子的产生来加速骨折愈合,这些生长因子刺激血管生成和 MSC 向成骨细胞的分化,形成新骨并加速骨折修复。这种新的治疗方法可能会减少骨折愈合所需的时间。《干细胞转化医学》2017 年;6:1880-1893。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aaba/6430058/ce7a6c063390/SCT3-6-1880-g001.jpg

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