首页> 外文会议>Nanobiophotonics and Biomedical Applications II; Progress in Biomedical Optics and Imaging; vol.6, no.20 >Multiphoton imaging of quantum dot bioconjugates in cultured cells following Nd:YLF laser excitation
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Multiphoton imaging of quantum dot bioconjugates in cultured cells following Nd:YLF laser excitation

机译:Nd:YLF激光激发后培养细胞中量子点生物缀合物的多光子成像

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Quantum dot bioconjugates offer unprecedented opportunities for monitoring biological processes and molecular interactions in cells, tissues, and organs. We are interested in developing applications that permit investigation of physiological processes and cytoskeletal organization in live cells, and allow imaging of complex organs, such as the auditory and vestibular sensory structures of the inner ear. Multiphoton microscopy is a powerful technique for acquiring images from deep within a sample while reducing phototoxic effects of laser light exposure on cells. Previous studies have established that a solid-state Nd:YLF laser can be used to acquire two-photon and three-photon images from live cells while minimizing phototoxic side effects (Wokosin et al., 1996, Bioimaging, 4:208-214; Squirrell et al., 1999, Nature Biotechnology, 8:763-767). We present here the results of experiments using an all-solid-state Nd:YLF 1047 nm femtosecond laser (Microlase DPM1000) source to excite quantum dot bioconjugates. Cells were labeled with Qdot (Quantum Dot Corporation) bioconjugates or with Alexa Fluor (Molecular Probes) bioconjugates and then imaged with a BioRad 1024 confocal microscope configured for multiphoton imaging using internal or external (non-descanned) detectors. Results demonstrate that the Nd:YLF laser can be used to stimulate fluorescence emission of quantum dots and Alexa Fluor bioconjugates in cultured amphibian (Xenopus) and mammalian (rat, Chinese hamster) cells. We conclude that the Nd:YLF laser is a viable excitation source that extends the applicability of quantum dots for investigation of biological processes using multiphoton microscopy.
机译:量子点生物共轭物为监测细胞,组织和器官中的生物过程和分子相互作用提供了前所未有的机会。我们对开发应用程序感兴趣,这些应用程序允许调查活细胞中的生理过程和细胞骨架组织,并允许对复杂器官进行成像,例如内耳的听觉和前庭感觉结构。多光子显微镜技术是一种强大的技术,可从样品深处获取图像,同时减少激光照射对细胞的光毒作用。先前的研究已经确定,固态Nd:YLF激光可用于从活细胞中获取两光子和三光子图像,同时将光毒副作用降至最低(Wokosin等,1996,Bioimaging,4:208-214; Squirrell等,1999,Nature Biotechnology,8:763-767)。我们在这里介绍使用全固态Nd:YLF 1047 nm飞秒激光(Microlase DPM1000)源激发量子点生物共轭物的实验结果。用Qdot(量子点公司)生物缀合物或Alexa Fluor(分子探针)生物缀合物标记细胞,然后使用配置为使用内部或外部(非反扫描)检测器进行多光子成像的BioRad 1024共聚焦显微镜成像。结果表明,Nd:YLF激光可用于刺激两栖(非洲爪蟾)和哺乳动物(大鼠,中国仓鼠)细胞中量子点和Alexa Fluor生物缀合物的荧光发射。我们得出结论,Nd:YLF激光是一种可行的激发源,它扩展了量子点的适用性,可用于研究使用多光子显微镜的生物过程。

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