Department of Cellular and Molecular Pharmacology, University of California, San Francisco, San Francisco, CA, USA.
Department of Bioengineering, University of Pennsylvania, Philadelphia, PA, USA.
Nat Protoc. 2019 Jul;14(7):2205-2228. doi: 10.1038/s41596-019-0178-y. Epub 2019 Jun 24.
Optogenetic probes can be powerful tools for dissecting complexity in cell biology, but there is a lack of instrumentation to exploit their potential for automated, high-information-content experiments. This protocol describes the construction and use of the optoPlate-96, a platform for high-throughput three-color optogenetics experiments that allows simultaneous manipulation of common red- and blue-light-sensitive optogenetic probes. The optoPlate-96 enables illumination of individual wells in 96-well microwell plates or in groups of wells in 384-well plates. Its design ensures that there will be no cross-illumination between microwells in 96-well plates, and an active cooling system minimizes sample heating during light-intensive experiments. This protocol details the steps to assemble, test, and use the optoPlate-96. The device can be fully assembled without specialized equipment beyond a 3D printer and a laser cutter, starting from open-source design files and commercially available components. We then describe how to perform a typical optogenetics experiment using the optoPlate-96 to stimulate adherent mammalian cells. Although optoPlate-96 experiments are compatible with any plate-based readout, we describe analysis using quantitative single-cell immunofluorescence. This workflow thus allows complex optogenetics experiments (independent control of stimulation colors, intensity, dynamics, and time points) with high-dimensional outputs at single-cell resolution. Starting from 3D-printed and laser-cut components, assembly and testing of the optoPlate-96 can be accomplished in 3-4 h, at a cost of ~$600. A full optoPlate-96 experiment with immunofluorescence analysis can be performed within ~24 h, but this estimate is variable depending on the cell type and experimental parameters.
光遗传学探针可以成为解析细胞生物学复杂性的有力工具,但缺乏能够充分发挥其潜力的自动化、高信息量实验仪器。本方案描述了 optoPlate-96 的构建和使用方法,这是一种用于高通量三色光遗传学实验的平台,可以同时操纵常见的红光和蓝光敏感的光遗传学探针。optoPlate-96 可以对 96 孔微孔板中的单个孔或 384 孔板中的孔组进行照明。其设计确保了在 96 孔板中,微孔之间不会发生交叉照明,主动冷却系统可最大限度地减少在高强度光照实验期间的样品加热。本方案详细介绍了组装、测试和使用 optoPlate-96 的步骤。该设备无需专用设备(除 3D 打印机和激光切割机外)即可完全组装,从开源设计文件和市售组件开始。然后,我们描述了如何使用 optoPlate-96 进行典型的光遗传学实验,以刺激贴壁哺乳动物细胞。虽然 optoPlate-96 实验与任何基于平板的读出兼容,但我们描述了使用定量单细胞免疫荧光的分析方法。因此,该工作流程允许进行复杂的光遗传学实验(刺激颜色、强度、动力学和时间点的独立控制),并具有单细胞分辨率的高维输出。从 3D 打印和激光切割组件开始,组装和测试 optoPlate-96 可以在 3-4 小时内完成,成本约为 600 美元。完整的 optoPlate-96 实验和免疫荧光分析可以在 24 小时内完成,但此估计值因细胞类型和实验参数而异。