4.5 Article

Pneumatic Cell Stretching Chip to Generate Uniaxial Strain Using an Elastomeric Membrane with Ridge Structure

Journal

CHEMOSENSORS
Volume 10, Issue 8, Pages -

Publisher

MDPI
DOI: 10.3390/chemosensors10080302

Keywords

pneumatic cell stretching chip; ridge structure; uniaxial strain; cell orientation; cell mechanosensing

Funding

  1. National Natural Science Foundation of China (NSFC) [12072001, 11902007]

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In this study, a ridge structure was incorporated into the membrane surface of a traditional pneumatic cavity stretching chip to regulate the strain mode. The results showed that the ridge structure could change the equiaxial stretching mode to the standard uniaxial strain, and it was independent of ridge width. The study also demonstrated the ability to realize multimodal strain fields and achieve high-throughput testing.
Cyclic mechanical stretching, including uniaxial strain, has been manifested to regulate the cell morphology and functions directly. In recent years, many techniques have been developed to apply cyclic mechanical stretching to cells in vitro. Pneumatically actuated stretching is one of the extensively used methods owing to its advantages of integration, miniaturization, and long-term stretching. However, the intrinsic difficulty in fabrication and adjusting the strain mode also impedes its development and application. In this study, inspired by the topological defects principle, we incorporated a ridge structure into the membrane surface of a traditional pneumatic cavity stretching chip to regulate the strain mode. Our results showed that the surface ridge structure can directly change the equiaxial stretching mode to the standard uniaxial strain, and it is ridge width-independent. The uniaxial strain mode was further proved by the cell orientation behavior under cyclic stretching stimulation. Moreover, it is easy to realize the multimodal strain fields by controlling the width and height of the ridge and to achieve high-throughput testing by creating a cavity array using microfabrication. Together, we propose a smart method to change the surface strain field and introduce a simple, yet effective, high-throughput pneumatically actuated uniaxial stretching platform, which can not only realize the multimodal mechanical stimulation but also achieve multiscale mechanosensing behaviors of single-cell or multi-cell (tissue and/or organoid) mechanobiology applications.

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