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支架微结构和低强度脉冲超声对人骨髓间充质干细胞向软骨细胞分化的影响。

Effects of scaffold microstructure and low intensity pulsed ultrasound on chondrogenic differentiation of human mesenchymal stem cells.

机构信息

Department of Mechanical and Aerospace Engineering, The George Washington University, Washington DC.

出版信息

Biotechnol Bioeng. 2018 Feb;115(2):495-506. doi: 10.1002/bit.26480. Epub 2017 Nov 22.

Abstract

The effects of low intensity pulsed ultrasound (LIPUS) on proliferation and chondrogenic differentiation of human mesenchymal stem cells (hMSCs) seeded on 3D printed poly-(ethylene glycol)-diacrylate (PEG-DA) scaffolds with varying pore geometries (square and hexagonal channels) were investigated. The scaffold with square pores resulted in higher hMSC growth and chondrogenic differentiation than a solid or a hexagonally porous scaffold. The optimal LIPUS parameters at 1.5 MHz were found to be 100 mW/cm and 20% duty cycle. LIPUS stimulation increased proliferation by up to 60% after 24 hr. For chondrogenesis, we evaluated key cartilage biomarkers abundant in cartilage tissue; glycosaminoglycan (GAG), type II collagen and total collagen. LIPUS stimulation enhanced GAG synthesis up to 16% and 11% for scaffolds with square and hexagonal patterns, respectively, after 2 weeks. Additionally, type II collagen production increased by 60% and 40% for the same patterns, respectively under LIPUS stimulation after 3 weeks. These results suggest that LIPUS stimulation, which has already been approved by FDA for treatment of bone fracture, could be a highly efficient tool for tissue engineering in combination with 3D printing and hMSCs to regenerate damaged cartilage tissues.

摘要

研究了不同孔径(方形和六边形通道)的 3D 打印聚乙二醇二丙烯酸酯(PEG-DA)支架上接种的人骨髓间充质干细胞(hMSCs)的低强度脉冲超声(LIPUS)对增殖和软骨分化的影响。与实心或六边形多孔支架相比,具有方形孔的支架可促进 hMSC 生长和软骨分化。发现 1.5MHz 的最佳 LIPUS 参数为 100mW/cm 和 20%占空比。LIPUS 刺激可在 24 小时内将细胞增殖率提高高达 60%。对于软骨生成,我们评估了富含软骨组织的关键软骨生物标志物;糖胺聚糖(GAG)、II 型胶原和总胶原。LIPUS 刺激可使具有方形和六边形图案的支架的 GAG 合成分别增加 16%和 11%,2 周后。此外,在 3 周时,相同图案下的 II 型胶原产量分别增加了 60%和 40%。这些结果表明,LIPUS 刺激已被 FDA 批准用于治疗骨折,结合 3D 打印和 hMSCs 再生受损软骨组织,它可能成为一种高效的组织工程工具。

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