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Correlative cryo super-resolution light and electron microscopy on mammalian cells using fluorescent proteins

机译:使用荧光蛋白对哺乳动物细胞进行相关的低温超分辨率光电子显微镜

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Sample fixation by vitrification is critical for the optimal structural preservation of biomolecules and subsequent high-resolution imaging by cryo-correlative light and electron microscopy (cryoCLEM). There is a large resolution gap between cryo fluorescence microscopy (cryoFLM), ~400-nm, and the sub-nanometre resolution achievable with cryo-electron microscopy (cryoEM), which hinders interpretation of cryoCLEM data. Here, we present a general approach to increase the resolution of cryoFLM using cryo-super-resolution (cryoSR) microscopy that is compatible with successive cryoEM investigation in the same region. We determined imaging parameters to avoid devitrification of the cryosamples without the necessity for cryoprotectants. Next, we examined the applicability of various fluorescent proteins (FPs) for single-molecule localisation cryoSR microscopy and found that all investigated FPs display reversible photoswitchable behaviour, and demonstrated cryoSR on lipid nanotubes labelled with rsEGFP2 and rsFastLime. Finally, we performed SR-cryoCLEM on mammalian cells expressing microtubule-associated protein-2 fused to rsEGFP2 and performed 3D cryo-electron tomography on the localised areas. The method we describe exclusively uses commercially available equipment to achieve a localisation precision of 30-nm. Furthermore, all investigated FPs displayed behaviour compatible with cryoSR microscopy, making this technique broadly available without requiring specialised equipment and will improve the applicability of this emerging technique for cellular and structural biology.
机译:通过玻璃化固定样品对于生物分子的最佳结构保存以及随后通过冷冻相关光和电子显微镜(cryoCLEM)进行的高分辨率成像至关重要。冷冻荧光显微镜(cryoFLM)〜400 nm与冷冻电子显微镜(cryoEM)可达到的亚纳米分辨率之间存在较大的分辨率差距,这阻碍了cryoCLEM数据的解释。在这里,我们提出了一种通用的方法,可使用低温超分辨率(cryoSR)显微镜提高cryoFLM的分辨率,该显微镜可与同一区域的连续cryoEM研究兼容。我们确定了成像参数以避免冷冻样品的失透,而无需使用冷冻保护剂。接下来,我们检查了各种荧光蛋白(FPs)在单分子定位cryoSR显微镜下的适用性,发现所有研究过的FPs均显示可逆的光开关行为,并在标有rsEGFP2和rsFastLime的脂质纳米管上显示了cryoSR。最后,我们对表达与rsEGFP2融合的微管相关蛋白2的哺乳动物细胞进行了SR-cryoCLEM,并在局部区域进行了3D冷冻电子断层扫描。我们描述的方法专门使用商用设备来实现30纳米的定位精度。此外,所有研究过的FP均显示出与cryoSR显微镜兼容的行为,从而使该技术可广泛使用而无需专用设备,并且将改善这种新兴技术在细胞和结构生物学中的适用性。

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