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用于高速荧光成像和靶向光遗传学刺激的超广角显微镜。

Ultrawidefield microscope for high-speed fluorescence imaging and targeted optogenetic stimulation.

作者信息

Werley Christopher A, Chien Miao-Ping, Cohen Adam E

机构信息

Howard Hughes Medical Institute, Department of Chemistry and Chemical Biology, Harvard University, 12 Oxford St, Cambridge, MA 02138, USA.

Department of Physics, Harvard University, 17 Oxford St, Cambridge, MA 02138, USA.

出版信息

Biomed Opt Express. 2017 Nov 29;8(12):5794-5813. doi: 10.1364/BOE.8.005794. eCollection 2017 Dec 1.

Abstract

The rapid increase in the number and quality of fluorescent reporters and optogenetic actuators has yielded a powerful set of tools for recording and controlling cellular state and function. To achieve the full benefit of these tools requires improved optical systems with high light collection efficiency, high spatial and temporal resolution, and patterned optical stimulation, in a wide field of view (FOV). Here we describe our 'Firefly' microscope, which achieves these goals in a Ø6 mm FOV. The Firefly optical system is optimized for simultaneous photostimulation and fluorescence imaging in cultured cells. All but one of the optical elements are commercially available, yet the microscope achieves 10-fold higher light collection efficiency at its design magnification than the comparable commercially available microscope using the same objective. The Firefly microscope enables all-optical electrophysiology ('Optopatch') in cultured neurons with a throughput and information content unmatched by other neuronal phenotyping systems. This capability opens possibilities in disease modeling and phenotypic drug screening. We also demonstrate applications of the system to voltage and calcium recordings in human induced pluripotent stem cell derived cardiomyocytes.

摘要

荧光报告基因和光遗传学激活器在数量和质量上的迅速增加,产生了一套强大的用于记录和控制细胞状态及功能的工具。要充分利用这些工具,需要在大视场(FOV)中具备高光收集效率、高空间和时间分辨率以及图案化光刺激的改进光学系统。在此,我们描述我们的“萤火虫”显微镜,它在直径6毫米的视场中实现了这些目标。萤火虫光学系统针对培养细胞中的同时光刺激和荧光成像进行了优化。除了一个光学元件外,所有光学元件均为市售产品,但该显微镜在其设计放大倍数下的光收集效率比使用相同物镜的同类市售显微镜高10倍。萤火虫显微镜能够在培养的神经元中实现全光学电生理(“光片钳”),其通量和信息含量是其他神经元表型分析系统无法比拟的。这种能力为疾病建模和表型药物筛选开辟了可能性。我们还展示了该系统在人类诱导多能干细胞衍生的心肌细胞中的电压和钙记录应用。

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