Swiss Center for Electronics and Microtechnology, CSEM SA, Neuchâtel, Switzerland.
Lab Chip. 2019 Jun 11;19(12):2138-2146. doi: 10.1039/c9lc00075e.
Cells in the body collectively sustain mechanical deformations in almost all physiological functions. From the morphogenesis stage, cells' ability to sustain stress is essential for the body's well-being. Several pathologies have been associated with abnormal mechanical properties, thus suggesting the Young's modulus as a biomarker to diagnose diseases and determine their progression. Advancements in the field are quite slow because current techniques for measuring cell and tissue mechanics rely on complex and bulky measurement platforms that have low repeatability rates and limited measurement time-scales. We present the first miniaturized system that allows accurate quantification of the Young's modulus of adherent cell monolayers over a longer time (1-2 days). Our approach is based on tensile testing and optical read-out. Thanks to a thoughtful design and material choice, we are able to miniaturize tensile testing platforms into a 1 cm × 2 cm device. We provide highly repeatable Young's modulus measurements in the relevant range between 3 kPa and 300 kPa, over time and under physiological conditions, thus representing an interesting alternative to existing measurement platforms. Furthermore, the compatibility with standard biological equipment, continuous optical imaging and measurements on all types of adherent cells make this device highly versatile. Measurements on human sarcoma osteogenic (SaOS2) and Madin-Darby canine kidney cells (MDCK) are reported. The demonstrated capability to measure real-time changes in mechanical properties, such as after chemical treatment, opens the door for investigating the effects of drugs on cell mechanics.
在几乎所有生理功能中,体内细胞都会共同承受机械变形。从形态发生阶段开始,细胞承受压力的能力对于身体的健康至关重要。几种病理学与异常的机械性能有关,因此杨氏模量被认为是诊断疾病和确定其进展的生物标志物。该领域的进展相当缓慢,因为目前测量细胞和组织力学的技术依赖于复杂且庞大的测量平台,这些平台的重复性率低,测量时间范围有限。我们提出了第一个允许长时间(1-2 天)准确量化贴壁细胞单层杨氏模量的微型系统。我们的方法基于拉伸测试和光学读出。得益于深思熟虑的设计和材料选择,我们能够将拉伸测试平台微型化为 1 cm × 2 cm 的设备。我们提供了在相关范围内高度可重复的杨氏模量测量值,范围在 3 kPa 到 300 kPa 之间,随时间推移和在生理条件下,因此代表了现有测量平台的有趣替代方案。此外,与标准生物设备的兼容性、对所有类型贴壁细胞的连续光学成像和测量,使该设备具有高度的多功能性。报告了对人骨肉瘤成骨细胞(SaOS2)和犬肾细胞(MDCK)的测量。证明了能够测量化学处理后机械性能的实时变化的能力,为研究药物对细胞力学的影响开辟了道路。