Department of Chemical Engineering, Indian Institute of Technology Hyderabad, Sangareddy, Telangana, India.
Biotechnol Bioeng. 2020 Oct;117(10):3108-3123. doi: 10.1002/bit.27465. Epub 2020 Jul 7.
The development of a minimally invasive, robust, and inexpensive technique that permits real-time monitoring of cell responses on biomaterial scaffolds can improve the eventual outcomes of scaffold-based tissue engineering strategies. Towards establishing correlations between in situ biological activity and cell fate, we have developed a comprehensive workflow for real-time volumetric imaging of spatiotemporally varying cytosolic calcium oscillations in pure microglial cells cultured on electrospun meshes. Live HMC3 cells on randomly oriented electrospun fibers were stained with a fluorescent dye and imaged using a laser scanning confocal microscope. Resonance scanning provided high-resolution in obtaining the time-course of intracellular calcium levels without compromising spatial and temporal resolution. Three-dimensional reconstruction and depth-coding enabled the visualization of cell location and intracellular calcium levels as a function of sample thickness. Importantly, changes in cell morphology and in situ calcium spiking were quantified in response to a soluble biochemical cue and varying matrix architectures (i.e., randomly oriented and aligned fibers). Importantly, raster plots generated from spiking data revealed calcium signatures specific to culture conditions. In the future, our approach can be used to elucidate correlations between calcium signatures and cell phenotype/activation, and facilitate the rational design of scaffolds for biomedical applications.
开发一种微创、强大且廉价的技术,该技术可实时监测生物材料支架上的细胞反应,从而提高基于支架的组织工程策略的最终结果。为了在原位生物活性和细胞命运之间建立相关性,我们开发了一种全面的工作流程,用于实时对纯小胶质细胞在静电纺丝网格上培养时的细胞溶质钙振荡的时空变化进行体积成像。使用激光扫描共聚焦显微镜对用荧光染料染色的随机取向静电纺纤维上的活 HMC3 细胞进行成像。共振扫描可在不影响空间和时间分辨率的情况下,以高分辨率获得细胞内钙水平的时程。三维重建和深度编码可实现细胞位置和细胞内钙水平作为样品厚度函数的可视化。重要的是,可量化细胞形态和原位钙峰的变化以响应可溶性生化信号和不同的基质结构(即,随机取向和取向纤维)。重要的是,从尖峰数据生成的光栅图揭示了特定于培养条件的钙特征。将来,我们的方法可用于阐明钙特征与细胞表型/激活之间的相关性,并有助于生物医学应用的支架的合理设计。