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Three-dimensional biological imaging by confocal and two-photon laser scanning microscopy

机译:共聚焦和双光子激光扫描显微镜进行三维生物成像

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Abstract: The commercial confocal laser scanning microscope (CLSM) has made 3D imaging with submicron resolution broadly available. CLSM combines focused illumination and spatially filtered detection to reject out-of-focus light, yielding images of thin optical sections within thick specimens. Images taken at different focal planes are combined to form a 3D reconstruction. Using this technique, fluorescent biological indicators are now quantified within volumes of approximately 0.1 $mu@m$+3$/. Live cell fluorescence imaging is limited by photodynamic properties of the fluorophores. Finite fluorophore excited state lifetimes limit imaging speed, and multiple spots in the specimen must be illuminated to increase temporal resolution. However, multiple illuminated spots decrease 3D image quality. The trade-off between imaging speed and quality is presented for several microscope designs. Fluorophore photobleaching limits the total signal available for 3D imaging, and photobleaching in out-of- focus planes limits the quality of 3D reconstructions. Femtosecond laser pulses focused to a diffraction limited spot can excite fluorophores by a 2-photon absorption that occurs only in the focal spot. Two-photon excitation limits photobleaching to the plane of focus and allows extended viewing of thick samples. Two-photon absorption can also locally release biologically active `caged' molecules and indicators. !28
机译:摘要:商业共焦激光扫描显微镜(CLSM)使亚微米分辨率的3D成像广泛可用。 CLSM将聚焦照明和空间滤波检测相结合,以抑制散焦光,从而产生厚样本中薄光学部分的图像。将在不同焦平面上拍摄的图像合并以形成3D重建。使用这种技术,现在可以将荧光生物指示剂定量在约0.1 µm @ m $ + 3 $ /的范围内。活细胞荧光成像受荧光团的光动力特性限制。有限的荧光团激发态寿命限制了成像速度,必须照亮样品中的多个斑点以增加时间分辨率。但是,多个照明点会降低3D图像质量。提出了几种显微镜设计在成像速度和质量之间的权衡。荧光团的光漂白限制了可用于3D成像的总信号,而焦平面上的光漂白限制了3D重建的质量。飞秒激光脉冲聚焦到衍射极限点上,可以通过仅在焦点上发生的2光子吸收来激发荧光团。两光子激发将光漂白限制在焦平面上,并允许扩展查看厚样品。双光子吸收还可以局部释放具有生物活性的“笼中”分子和指示剂。 !28

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