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Fast 3-D Imaging of Brain Organoids With a New Single-Objective Planar-Illumination Two-Photon Microscope

机译:新型单目标平面照明双光子显微镜对脑器官的快速3D成像

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摘要

Human inducible pluripotent stem cells (hiPSCs) hold a large potential for disease modeling. hiPSC-derived human astrocyte and neuronal cultures permit investigations of neural signaling pathways with subcellular resolution. Combinatorial cultures, and three-dimensional (3-D) embryonic bodies (EBs) enlarge the scope of investigations to multi-cellular phenomena. The highest level of complexity, brain organoids that—in many aspects—recapitulate anatomical and functional features of the developing brain permit the study of developmental and morphological aspects of human disease. An ideal microscope for 3-D tissue imaging at these different scales would combine features from both confocal laser-scanning and light-sheet microscopes: a micrometric optical sectioning capacity and sub-micrometric spatial resolution, a large field of view and high frame rate, and a low degree of invasiveness, i.e., ideally, a better photon efficiency than that of a confocal microscope. In the present work, we describe such an instrument that uses planar two-photon (2P) excitation. Its particularity is that—unlike two- or three-lens light-sheet microscopes—it uses a single, low-magnification, high-numerical aperture objective for the generation and scanning of a virtual light sheet. The microscope builds on a modified Nipkow-Petráň spinning-disk scheme for achieving wide-field excitation. However, unlike the Yokogawa design that uses a tandem disk, our concept combines micro lenses, dichroic mirrors and detection pinholes on a single disk. This new design, advantageous for 2P excitation, circumvents problems arising with the tandem disk from the large wavelength difference between the infrared excitation light and visible fluorescence. 2P fluorescence excited by the light sheet is collected with the same objective and imaged onto a fast sCMOS camera. We demonstrate 3-D imaging of TO-PRO3-stained EBs and of brain organoids, uncleared and after rapid partial transparisation with triethanolamine formamide (RTF) and we compare the performance of our instrument to that of a confocal laser-scanning microscope (CLSM) having a similar numerical aperture. Our large-field 2P-spinning disk microscope permits one order of magnitude faster imaging, affords less photobleaching and permits better depth penetration than a confocal microscope with similar spatial resolution.
机译:人诱导型多能干细胞(hiPSC)在疾病建模方面具有巨大潜力。 hiPSC衍生的人星形胶质细胞和神经元培养物可研究具有亚细胞分辨率的神经信号通路。组合文化和三维(3-D)胚胎体(EB)扩大了对多细胞现象的研究范围。高度复杂的大脑类器官在许多方面可以概括发育中的大脑的解剖和功能特征,因此可以研究人类疾病的发育和形态方面。理想的显微镜可以在这些不同的尺度上进行3-D组织成像,并结合了共聚焦激光扫描和光片显微镜的功能:微米级光学切片能力和亚微米级空间分辨率,大视野和高帧频,具有低的侵入性,即理想地比共聚焦显微镜具有更高的光子效率。在当前的工作中,我们描述了一种使用平面两光子(2P)激发的仪器。它的独特之处在于,与两透镜或三透镜的光片显微镜不同,它使用单个低倍率高数值孔径的物镜来生成和扫描虚拟光片。该显微镜建立在改良的Nipkow-Petráň旋转盘方案的基础上,可实现宽视野激发。但是,与使用串联磁盘的横河电机设计不同,我们的概念在单个磁盘上结合了微透镜,二向色镜和检测针孔。这种新的设计有利于2P激发,它避免了串联盘因红外激发光和可见荧光之间的大波长差异而引起的问题。由光片激发的2P荧光以相同的物镜收集并成像到快速sCMOS相机上。我们展示了TO-PRO3染色的EB和大脑类器官的3D成像,未清除,并用三乙醇胺甲酰胺(RTF)快速部分转化后,我们将本仪器的性能与共聚焦激光扫描显微镜(CLSM)进行了比较具有相似的数值孔径。与具有类似空间分辨率的共聚焦显微镜相比,我们的大视野2P旋转圆盘显微镜可以使成像速度快一个数量级,提供更少的光致漂白效果,并且可以更好地穿透深度。

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