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DNA-PAINT 超高分辨率显微镜技术

Super-resolution microscopy with DNA-PAINT.

机构信息

Department of Physics and Center for Nanoscience, Ludwig Maximilian University, Munich, Germany.

Max Planck Institute of Biochemistry, Martinsried, Germany.

出版信息

Nat Protoc. 2017 Jun;12(6):1198-1228. doi: 10.1038/nprot.2017.024. Epub 2017 May 18.

Abstract

Super-resolution techniques have begun to transform biological and biomedical research by allowing researchers to observe structures well below the classic diffraction limit of light. DNA points accumulation for imaging in nanoscale topography (DNA-PAINT) offers an easy-to-implement approach to localization-based super-resolution microscopy, owing to the use of DNA probes. In DNA-PAINT, transient binding of short dye-labeled ('imager') oligonucleotides to their complementary target ('docking') strands creates the necessary 'blinking' to enable stochastic super-resolution microscopy. Using the programmability and specificity of DNA molecules as imaging and labeling probes allows researchers to decouple blinking from dye photophysics, alleviating limitations of current super-resolution techniques, making them compatible with virtually any single-molecule-compatible dye. Recent developments in DNA-PAINT have enabled spectrally unlimited multiplexing, precise molecule counting and ultra-high, molecular-scale (sub-5-nm) spatial resolution, reaching ∼1-nm localization precision. DNA-PAINT can be applied to a multitude of in vitro and cellular applications by linking docking strands to antibodies. Here, we present a protocol for the key aspects of the DNA-PAINT framework for both novice and expert users. This protocol describes the creation of DNA origami test samples, in situ sample preparation, multiplexed data acquisition, data simulation, super-resolution image reconstruction and post-processing such as drift correction, molecule counting (qPAINT) and particle averaging. Moreover, we provide an integrated software package, named Picasso, for the computational steps involved. The protocol is designed to be modular, so that individual components can be chosen and implemented per requirements of a specific application. The procedure can be completed in 1-2 d.

摘要

超分辨率技术通过使研究人员能够观察低于经典光衍射极限的结构,开始改变生物和生物医学研究。DNA 点积累用于纳米级形貌成像(DNA-PAINT)由于使用 DNA 探针,为基于定位的超分辨率显微镜提供了一种易于实施的方法。在 DNA-PAINT 中,短染料标记的(“成像剂”)寡核苷酸与它们的互补靶(“对接”)链的短暂结合创建了必要的“闪烁”,从而实现随机超分辨率显微镜。利用 DNA 分子的可编程性和特异性作为成像和标记探针,可以使研究人员将闪烁与染料光物理分离,缓解当前超分辨率技术的限制,使它们与几乎任何单分子兼容的染料兼容。DNA-PAINT 的最新进展使得能够进行光谱上无限制的多重化、精确的分子计数以及超高、分子尺度(亚 5nm)的空间分辨率,达到约 1nm 的定位精度。通过将对接链与抗体连接,DNA-PAINT 可以应用于多种体外和细胞应用。在这里,我们为新手和专家用户提供了 DNA-PAINT 框架的关键方面的协议。该协议描述了 DNA 折纸测试样品的创建、原位样品制备、多路复用数据采集、数据模拟、超分辨率图像重建以及后处理,如漂移校正、分子计数(qPAINT)和粒子平均。此外,我们提供了一个名为 Picasso 的集成软件包,用于处理涉及的计算步骤。该协议旨在模块化,以便可以根据特定应用的要求选择和实施各个组件。该过程可以在 1-2 天内完成。

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