Fior Raffaella, Kwok Jeanie, Malfatti Francesca, Sbaizero Orfeo, Lal Ratnesh
Department of Bioengineering, University of California, San Diego, La Jolla, CA, 92093, USA.
Ann Biomed Eng. 2015 Aug;43(8):1841-50. doi: 10.1007/s10439-014-1229-8. Epub 2014 Dec 31.
Cells and tissues in our body are continuously subjected to mechanical stress. Mechanical stimuli, such as tensile and contractile forces, and shear stress, elicit cellular responses, including gene and protein alterations that determine key behaviors, including proliferation, differentiation, migration, and adhesion. Several tools and techniques have been developed to study these mechanobiological phenomena, including micro-electro-mechanical systems (MEMS). MEMS provide a platform for nano-to-microscale mechanical stimulation of biological samples and quantitative analysis of their biomechanical responses. However, current devices are limited in their capability to perform single cell micromechanical stimulations as well as correlating their structural phenotype by imaging techniques simultaneously. In this study, a biocompatible and optically transparent MEMS for single cell mechanobiological studies is reported. A silicon nitride microfabricated device is designed to perform uniaxial tensile deformation of single cells and tissue. Optical transparency and open architecture of the device allows coupling of the MEMS to structural and biophysical assays, including optical microscopy techniques and atomic force microscopy (AFM). We demonstrate the design, fabrication, testing, biocompatibility and multimodal imaging with optical and AFM techniques, providing a proof-of-concept for a multimodal MEMS. The integrated multimodal system would allow simultaneous controlled mechanical stimulation of single cells and correlate cellular response.
我们身体中的细胞和组织不断受到机械应力的作用。机械刺激,如拉伸力、收缩力和剪切应力,会引发细胞反应,包括基因和蛋白质的改变,这些改变决定了细胞的关键行为,如增殖、分化、迁移和黏附。为研究这些力学生物学现象,已经开发了多种工具和技术,包括微机电系统(MEMS)。MEMS为生物样品的纳米到微米级机械刺激及其生物力学响应的定量分析提供了一个平台。然而,目前的设备在进行单细胞微机械刺激以及通过成像技术同时关联其结构表型方面能力有限。在本研究中,报道了一种用于单细胞力学生物学研究的生物相容性且光学透明的MEMS。一种氮化硅微加工设备被设计用于对单细胞和组织进行单轴拉伸变形。该设备的光学透明性和开放式结构允许将MEMS与结构和生物物理检测方法相结合,包括光学显微镜技术和原子力显微镜(AFM)。我们展示了该设备的设计、制造、测试、生物相容性以及使用光学和AFM技术的多模态成像,为多模态MEMS提供了概念验证。集成的多模态系统将允许对单细胞进行同步可控的机械刺激并关联细胞反应。