首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Breaking the diffraction barrier in fluorescence microscopy at low light intensities by using reversibly photoswitchable proteins.
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Breaking the diffraction barrier in fluorescence microscopy at low light intensities by using reversibly photoswitchable proteins.

机译:通过使用可逆光开关蛋白,在低光强度下打破了荧光显微镜中的衍射障碍。

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Fluorescence microscopy is indispensable in many areas of science, but until recently, diffraction has limited the resolution of its lens-based variant. The diffraction barrier has been broken by a saturated depletion of the marker's fluorescent state by stimulated emission, but this approach requires picosecond laser pulses of GW/cm2 intensity. Here, we demonstrate the surpassing of the diffraction barrier in fluorescence microscopy with illumination intensities that are eight orders of magnitude smaller. The subdiffraction resolution results from reversible photoswitching of a marker protein between a fluorescence-activated and a nonactivated state, whereby one of the transitions is accomplished by means of a spatial intensity distribution featuring a zero. After characterizing the switching kinetics of the used marker protein asFP595, we demonstrate the current capability of this RESOLFT (reversible saturable optical fluorescence transitions) type of concept to resolve 50-100 nm in the focal plane. The observed resolution is limited only by the photokinetics of the protein and the perfection of the zero. Our results underscore the potential to finally achieve molecular resolution in fluorescence microscopy by technical optimization.
机译:荧光显微镜在许多科学领域都是必不可少的,但是直到最近,衍射技术仍限制了其基于透镜的变体的分辨率。衍射屏障已被受激发射光对标记荧光状态的饱和消耗所破坏,但是这种方法需要GW / cm2强度的皮秒激光脉冲。在这里,我们证明了在荧光显微镜下,照明强度要小八个数量级,从而超越了衍射屏障。亚衍射分辨率是由标记蛋白在荧光激活状态和非激活状态之间的可逆光开关导致的,其中一种过渡是通过特征为零的空间强度分布实现的。在表征了所用标记蛋白as FP595的转换动力学特性之后,我们证明了该RESOLFT(可逆饱和光学荧光跃迁)类型的概念目前能够解决焦平面中的50-100 nm的能力。观察到的分辨率仅受蛋白质的光动力学和零的完善所限制。我们的结果强调了通过技术优化最终在荧光显微镜中实现分子分辨率的潜力。

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