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利用静态激基缔合物的自发闪烁实现超快超分辨率成像。

Ultrafast Super-Resolution Imaging Exploiting Spontaneous Blinking of Static Excimer Aggregates.

机构信息

School of Chemistry and Chemical Engineering, New Cornerstone Science Laboratory, Frontiers Science Center for Transformative Molecules and National Center for Translational Medicine, Shanghai Jiao Tong University, Shanghai 200240, China.

Shanghai Synchrotron Radiation Facility, Shanghai Advanced Research Institute, Chinese Academy of Sciences, No. 239 Zhangheng Road, Shanghai 201204, China.

出版信息

J Am Chem Soc. 2024 Jul 17;146(28):18948-18957. doi: 10.1021/jacs.4c01084. Epub 2024 Jul 3.

Abstract

Single-molecule localization methods have been popularly exploited to obtain super-resolved images of biological structures. However, the low blinking frequency of randomly switching emission states of individual fluorophores greatly limits the imaging speed of single-molecule localization microscopy (SMLM). Here we present an ultrafast SMLM technique exploiting spontaneous fluorescence blinking of cyanine dye aggregates confined to DNA framework nanostructures. The DNA template guides the formation of static excimer aggregates as a "light-harvesting nanoantenna", whereas intermolecular excitation energy transfer (EET) between static excimers causes collective ultrafast fluorescence blinking of fluorophore aggregates. This DNA framework-based strategy enables the imaging of DNA nanostructures with 12.5-fold improvement in speed compared to conventional SMLM. Further, we demonstrate the use of this strategy to track the movement of super-resolved DNA nanostructures for over 20 min in a microfluidic system. Thus, this ultrafast SMLM holds great potential for revealing the dynamic processes of biomacromolecules in living cells.

摘要

单分子定位方法已被广泛用于获取生物结构的超分辨率图像。然而,单个荧光团的随机开关发射状态的低闪烁频率极大地限制了单分子定位显微镜(SMLM)的成像速度。在这里,我们提出了一种超快 SMLM 技术,利用束缚在 DNA 框架纳米结构中的花青染料聚集体的自发荧光闪烁。DNA 模板引导形成静态激基聚集体作为“光捕获纳米天线”,而静态激基之间的分子间激发能量转移(EET)导致荧光团聚集体的集体超快荧光闪烁。与传统 SMLM 相比,这种基于 DNA 框架的策略使 DNA 纳米结构的成像速度提高了 12.5 倍。此外,我们证明了该策略可用于在微流控系统中跟踪超分辨 DNA 纳米结构的运动超过 20 分钟。因此,这种超快 SMLM 非常有潜力用于揭示活细胞中生物大分子的动态过程。

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