Centre for the Cellular Microenvironment, James Watt School of Engineering, University of Glasgow;
Optics 11 life.
J Vis Exp. 2022 Jan 18(179). doi: 10.3791/63401.
Nanoindentation refers to a class of experimental techniques where a micrometric force probe is used to quantify the local mechanical properties of soft biomaterials and cells. This approach has gained a central role in the fields of mechanobiology, biomaterials design and tissue engineering, to obtain a proper mechanical characterization of soft materials with a resolution comparable to the size of single cells (μm). The most popular strategy to acquire such experimental data is to employ an atomic force microscope (AFM); while this instrument offers an unprecedented resolution in force (down to pN) and space (sub-nm), its usability is often limited by its complexity that prevents routine measurements of integral indicators of mechanical properties, such as Young's Modulus (E). A new generation of nanoindenters, such as those based on optical fiber sensing technology, has recently gained popularity for its ease of integration while allowing to apply sub-nN forces with µm spatial resolution, therefore being suitable to probe local mechanical properties of hydrogels and cells. In this protocol, a step-by-step guide detailing the experimental procedure to acquire nanoindentation data on hydrogels and cells using a commercially available ferrule-top optical fiber sensing nanoindenter is presented. Whereas some steps are specific to the instrument used herein, the proposed protocol can be taken as a guide for other nanoindentation devices, granted some steps are adapted according to the manufacturer's guidelines. Further, a new open-source Python software equipped with a user-friendly graphical user interface for the analysis of nanoindentation data is presented, which allows for screening of incorrectly acquired curves, data filtering, computation of the contact point through different numerical procedures, the conventional computation of E, as well as a more advanced analysis particularly suited for single-cell nanoindentation data.
纳米压痕是一类实验技术,其中使用微尺度力探针来量化软生物材料和细胞的局部力学性能。这种方法在力学生物学、生物材料设计和组织工程领域中具有核心作用,可对具有与单细胞相当的分辨率(μm)的软材料进行适当的力学特性表征。获取此类实验数据的最流行策略是采用原子力显微镜(AFM);虽然该仪器在力(低至 pN)和空间(亚纳米)方面具有前所未有的分辨率,但由于其复杂性限制了其可用性,无法对杨氏模量(E)等力学性能综合指标进行常规测量。最近,一种基于光纤传感技术的新型纳米压痕仪因其易于集成而受到欢迎,同时允许以亚纳牛顿的力和微米的空间分辨率进行测量,因此适用于探测水凝胶和细胞的局部力学性能。本方案详细介绍了使用市售的套圈式光纤传感纳米压痕仪在水凝胶和细胞上获取纳米压痕数据的实验步骤,其中一些步骤是针对本文所用仪器的。虽然有些步骤是特定于所用仪器的,但所提出的方案可作为其他纳米压痕设备的指南,只要根据制造商的指南进行适当的调整即可。此外,还介绍了一种新的开源 Python 软件,该软件配备了用户友好的图形用户界面,用于分析纳米压痕数据,它可以筛选不正确获取的曲线、数据过滤、通过不同的数值程序计算接触点、常规计算 E,以及更适合单细胞纳米压痕数据的高级分析。