Nikukar Habib, Childs Peter G, Curtis Adam S G, Martin Ian W, Riehle Mathis O, Dalby Matthew J, Reid Stuart
J Biomed Nanotechnol. 2016 Jul;12(7):1478-88. doi: 10.1166/jbn.2016.2264.
Mechanical stimulation is becoming a common technique for manipulating cell behaviour in bioengineering with applications in tissue engineering and possibly regenerative therapy. Living organisms show biological responses in vivo and in vitro to various types of mechanical stimulation including vibration. The development of apparatus to produce vertical motions of nanoscale amplitude is detailed and their effect on mouse endothelial (Le2) and human mesenchymal stem cells (hMSCs) is investigated. Piezo ceramic actuators and aluminium reinforcement were utilised along with laser interferometry to ensure amplitude consistency at the nanometre level across a cell culture substrate. Peak force applied to the cells was estimated to be of nN magnitude at frequencies of 500 and 1000 Hz. Morphological changes in the cytoskeleton were found for both cell types along with increased MSC proliferation after 1 week of stimulation at 500 Hz. Changes in the nuclear size of MSCs after stimulation were also found.
机械刺激正成为生物工程中操纵细胞行为的常用技术,应用于组织工程以及可能的再生治疗。活生物体在体内和体外对包括振动在内的各种类型的机械刺激都会表现出生物学反应。本文详细介绍了用于产生纳米级振幅垂直运动的装置的开发,并研究了其对小鼠内皮细胞(Le2)和人间充质干细胞(hMSCs)的影响。利用压电陶瓷致动器和铝增强材料,结合激光干涉测量法,以确保在整个细胞培养底物上纳米级的振幅一致性。在500和1000Hz频率下,施加到细胞上的峰值力估计为nN量级。在500Hz刺激1周后,两种细胞类型均发现细胞骨架的形态变化以及MSC增殖增加。刺激后还发现了MSC核大小的变化。