Effects of compound stimulation of fluid shear stress plus ultrasound on stem cell proliferation and osteogenesis

刺激 细胞生长 间充质干细胞 超声波 低强度脉冲超声 生物医学工程 化学 生物物理学 干细胞 细胞 细胞生物学 医学 内科学 生物 治疗性超声 生物化学 放射科
作者
Ling-zhi Jing,Suna Fan,Xiang Yao,Yaopeng Zhang
出处
期刊:Regenerative Biomaterials [University of Oxford]
卷期号:8 (6): rbab066-rbab066 被引量:24
标识
DOI:10.1093/rb/rbab066
摘要

Abstract Bone tissue with strong adaptability is often in a complex dynamical microenvironment in vivo, which is associated with the pathogenesis and treatment of orthopedic diseases. Therefore, it is of great significance to investigate the effects of corresponding compound stimulation on cell behaviors. Herein, a fluid shear stress (FSS) plus ultrasound stimulation platform suitable for cell studies based on a microfluidic chip was constructed and bone marrow mesenchymal stem cell (BMSC) was chosen as a model cell. The proliferation and osteogenesis of BMSCs under the compound stimulation of FSS plus ultrasound in growth medium without any soluble induction factors were firstly investigated. Single FSS stimulation and static culture conditions were also examined. Results illustrated that suitable single FSS stimulation (about 0.06 dyn/cm2) could significantly enhance cell proliferation and osteogenesis simultaneously when compared to the static control, while greater FSS mitigated or even restricted these enhancing effects. Interestingly, ultrasound stimulation combined with this suitable FSS stimulation further accelerated cell proliferation as the intensity of ultrasound increasing. As for the osteogenesis under compound stimulation, it was relatively restricted under lower ultrasound intensity (about 0.075 W/cm2), while promoted when the intensity became higher (about 1.75 W/cm2). This study suggests that both the cell proliferation and osteogenesis are very responsive to the magnitudes of FSS and ultrasound stimulations and can be both significantly enhanced by proper combination strategies. Moreover, these findings will provide valuable references for the construction of effective cell bioreactors and also the treatment of orthopedic diseases.
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