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Method for high frequency tracking and sub-nm sample stabilization in single molecule fluorescence microscopy

机译:单分子荧光显微镜中高频跟踪和亚纳米样品稳定化的方法

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摘要

While fluorescence microscopes and atomic force microscopes are widely used to visualize, track, and manipulate single biomolecules, the resolution of these methods is limited by sample drift. To minimize drift, active feedback methods have recently been used to stabilize single molecule microscopes on the sub-nanometer scale. However, these methods require high intensity lasers which limits their application in single molecule fluorescence measurements. Furthermore, these feedback methods do not track user-defined regions of the sample, but rather monitor the relative displacement of an unknown point on a fiducial marker, which limits their use in biological force measurements. To overcome these limitations, we have developed a novel method to image, track and stabilize a sample using low laser intensities. We demonstrate the capabilities of our approach by tracking a user-chosen point on a fiducial marker at 8.6 kHz and stabilizing it with sub-nanometer resolution. We further showcase the application of our method in single molecule fluorescence microscopy by imaging and stabilizing individual fluorescently-tagged streptavidin proteins under biologically relevant conditions. We anticipate that our method can be easily used to improve the resolution of a wide range of single molecule fluorescence microscopy and integrated force-fluorescence applications.
机译:尽管荧光显微镜和原子力显微镜广泛用于可视化,跟踪和操纵单个生物分子,但这些方法的分辨率受到样品漂移的限制。为了使漂移最小化,最近已使用主动反馈方法将单分子显微镜稳定在亚纳米级。但是,这些方法需要高强度的激光,这限制了它们在单分子荧光测量中的应用。此外,这些反馈方法不跟踪样品的用户定义区域,而是监视基准标记上未知点的相对位移,这限制了它们在生物力测量中的使用。为了克服这些限制,我们开发了一种使用低激光强度成像,跟踪和稳定样品的新颖方法。通过在8.6 kHz的基准标记上跟踪用户选择的点并以亚纳米分辨率稳定它,我们展示了我们方法的功能。我们通过在生物学相关条件下成像并稳定单个荧光标记的链霉亲和素蛋白,进一步展示了我们的方法在单分子荧光显微镜中的应用。我们期望我们的方法可以轻松地用于提高各种单分子荧光显微镜和集成力荧光应用的分辨率。

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