Institut de la Vision, Sorbonne Université, INSERM, CNRS, Paris, France.
Systems, Synthetic, and Physical Biology Program, Rice University, Houston, TX, USA.
Nat Commun. 2024 Jun 14;15(1):5095. doi: 10.1038/s41467-024-49192-2.
Two-photon voltage imaging has long been heralded as a transformative approach capable of answering many long-standing questions in modern neuroscience. However, exploiting its full potential requires the development of novel imaging approaches well suited to the photophysical properties of genetically encoded voltage indicators. We demonstrate that parallel excitation approaches developed for scanless two-photon photostimulation enable high-SNR two-photon voltage imaging. We use whole-cell patch-clamp electrophysiology to perform a thorough characterization of scanless two-photon voltage imaging using three parallel illumination approaches and lasers with different repetition rates and wavelengths. We demonstrate voltage recordings of high-frequency spike trains and sub-threshold depolarizations from neurons expressing the soma-targeted genetically encoded voltage indicator JEDI-2P-Kv. Using a low repetition-rate laser, we perform multi-cell recordings from up to fifteen targets simultaneously. We co-express JEDI-2P-Kv and the channelrhodopsin ChroME-ST and capitalize on their overlapping two-photon absorption spectra to simultaneously evoke and image action potentials using a single laser source. We also demonstrate in vivo scanless two-photon imaging of multiple cells simultaneously up to 250 µm deep in the barrel cortex of head-fixed, anaesthetised mice.
双光子电压成像长期以来一直被誉为一种变革性的方法,能够回答现代神经科学中的许多长期存在的问题。然而,要充分发挥其潜力,需要开发适合遗传编码电压指示剂光物理特性的新型成像方法。我们证明了为无扫描双光子光刺激开发的平行激发方法能够实现高信噪比的双光子电压成像。我们使用全细胞膜片钳电生理学,使用三种平行照明方法和具有不同重复率和波长的激光器,对无扫描双光子电压成像进行了彻底的特性描述。我们展示了表达靶向胞体的遗传编码电压指示剂 JEDI-2P-Kv 的神经元的高频尖峰和亚阈去极化的电压记录。使用低重复率激光,我们可以同时从多达十五个目标进行多细胞记录。我们共表达 JEDI-2P-Kv 和通道视紫红质 ChroME-ST,并利用它们重叠的双光子吸收光谱,使用单个激光源同时引发和成像动作电位。我们还展示了在头部固定、麻醉小鼠的桶状皮层中,深度达 250μm 处的多个细胞的体内无扫描双光子成像。