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校正像差的 cryoimmersion 光显微镜。

Aberration-corrected cryoimmersion light microscopy.

机构信息

Biological Micro- and Nanotechnology, Max Planck Institute for Biophysical Chemistry, Göttingen 37073, Germany.

Structure and Dynamics of Mitochondria, Max Planck Institute for Biophysical Chemistry, Göttingen 37073, Germany.

出版信息

Proc Natl Acad Sci U S A. 2018 Feb 6;115(6):1204-1209. doi: 10.1073/pnas.1717282115. Epub 2018 Jan 22.

Abstract

Cryogenic fluorescent light microscopy of flash-frozen cells stands out by artifact-free fixation and very little photobleaching of the fluorophores used. To attain the highest level of resolution, aberration-free immersion objectives with accurately matched immersion media are required, but both do not exist for imaging below the glass-transition temperature of water. Here, we resolve this challenge by combining a cryoimmersion medium, HFE-7200, which matches the refractive index of room-temperature water, with a technological concept in which the body of the objective and the front lens are not in thermal equilibrium. We implemented this concept by replacing the metallic front-lens mount of a standard bioimaging water immersion objective with an insulating ceramic mount heated around its perimeter. In this way, the objective metal housing can be maintained at room temperature, while creating a thermally shielded cold microenvironment around the sample and front lens. To demonstrate the range of potential applications, we show that our method can provide superior contrast in and yeast cells expressing fluorescent proteins and resolve submicrometer structures in multicolor immunolabeled human bone osteosarcoma epithelial (U2OS) cells at [Formula: see text]C.

摘要

用于快速冷冻细胞的低温荧光显微镜具有无伪影固定和所用荧光团光漂白少的特点。为了达到最高分辨率,需要使用无像差的浸液物镜和准确匹配的浸液介质,但在水的玻璃化转变温度以下成像时,这两者都不存在。在这里,我们通过结合一种与室温下水的折射率相匹配的 cryoimmersion 介质 HFE-7200,并利用一种技术概念来解决这一挑战,该技术概念中物镜的主体和前透镜不在热平衡状态。我们通过用加热周边的绝缘陶瓷安装座来代替标准生物成像水浸物镜的金属前透镜安装座,实现了这一概念。通过这种方式,可以将物镜金属外壳保持在室温,同时在样品和前透镜周围形成一个热屏蔽的低温微环境。为了展示潜在应用的范围,我们表明,我们的方法可以在 [Formula: see text]C 下为表达荧光蛋白的 和酵母细胞提供更好的对比度,并解析多色免疫标记的人骨肉瘤上皮(U2OS)细胞中的亚微米结构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f4f/5819432/d14d64a10815/pnas.1717282115fig01.jpg

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