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用于细胞培养机械刺激的带有电可变形弯曲膜的生物反应器。

Bioreactor With Electrically Deformable Curved Membranes for Mechanical Stimulation of Cell Cultures.

作者信息

Costa Joana, Ghilardi Michele, Mamone Virginia, Ferrari Vincenzo, Busfield James J C, Ahluwalia Arti, Carpi Federico

机构信息

Research Center "E. Piaggio", University of Pisa, Pisa, Italy.

Department of Information Engineering, University of Pisa, Pisa, Italy.

出版信息

Front Bioeng Biotechnol. 2020 Jan 28;8:22. doi: 10.3389/fbioe.2020.00022. eCollection 2020.

Abstract

Physiologically relevant models of stretchable biological tissues, such as muscle, lung, cardiac and gastro-intestinal tissues, should mimic the mechanical cues which cells are exposed to in their dynamic microenvironment . In particular, in order to mimic the mechanical stimulation of tissues in a physiologically relevant manner, cell stretching is often desirable on surfaces with dynamically controllable curvature. Here, we present a device that can deform cell culture membranes without the current need for external pneumatic/fluidic or electrical motors, which typically make the systems bulky and difficult to operate. We describe a modular device that uses elastomeric membranes, which can intrinsically be deformed by electrical means, producing a dynamically tuneable curvature. This approach leads to compact, self-contained, lightweight and versatile bioreactors, not requiring any additional mechanical equipment. This was obtained via a special type of dielectric elastomer actuator. The structure, operation and performance of early prototypes are described, showing preliminary evidence on their ability to induce changes on the spatial arrangement of the cytoskeleton of fibroblasts dynamically stretched for 8 h.

摘要

具有生理相关性的可拉伸生物组织模型,如肌肉、肺、心脏和胃肠道组织,应模拟细胞在其动态微环境中所接触到的机械信号。特别是,为了以生理相关的方式模拟组织的机械刺激,通常需要在具有动态可控曲率的表面上对细胞进行拉伸。在此,我们展示了一种无需外部气动/流体或电动马达就能使细胞培养膜变形的装置,而外部马达通常会使系统体积庞大且操作困难。我们描述了一种模块化装置,该装置使用弹性体膜,其可通过电手段固有地变形,产生动态可调曲率。这种方法可制造出紧凑、独立、轻便且通用的生物反应器,无需任何额外的机械设备。这是通过一种特殊类型的介电弹性体致动器实现的。文中描述了早期原型的结构、操作和性能,展示了它们在动态拉伸8小时的成纤维细胞细胞骨架空间排列上诱导变化能力的初步证据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1fdc/6997204/30991747242a/fbioe-08-00022-g001.jpg

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