Single-Molecule Localization Microscopy (SMLM) has traditionally faced challenges to optimize signal-to-noise ratio, penetration depth, field-of-view (FOV), and spatial resolution simultaneously. Here, we show that DNA-PAINT imaging on a Spinning Disk Confocal with Optical Photon Reassignment (SDC-OPR) system overcomes these trade-offs, enabling high-resolution imaging across multiple cellular layers and large FOVs. We demonstrate the system's capability with DNA origami constructs and biological samples, including nuclear pore complexes, mitochondria, and microtubules, achieving a spatial resolution of 6ânm in the basal plane and sub-10 nm localization precision at depths of 9âµm within a 53âÃâ53âµm² FOV. Additionally, imaging of the developing Drosophila eye epithelium at depths up to 9âµm with sub-13ânm average localization precision, reveals distinct E-cadherin populations in adherens junctions. Quantitative analysis of Collagen IV deposition in this epithelium indicated an average of 46â±â27 molecules per secretory vesicle. These results underscore the versatility of DNA-PAINT on an SDC-OPR for advancing super-resolution imaging in complex biological systems.
Super-resolution imaging in whole cells and tissues via DNA-PAINT on a spinning disk confocal with optical photon reassignment.
利用旋转盘共聚焦显微镜上的 DNA-PAINT 技术,结合光学光子重分配,实现对整个细胞和组织的超分辨率成像
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作者:Zaza Cecilia, Joseph Megan D, Dalby Olivia P L, Walther Rhian F, KoÅÄ taj Karol, Chiarelli Germán, Pichaud Franck, Acuna Guillermo P, Simoncelli Sabrina
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2025 | 起止号: | 2025 May 29; 16(1):4991 |
| doi: | 10.1038/s41467-025-60263-w | 研究方向: | 细胞生物学 |
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