Physical Measurement Laboratory, National Institute of Standards and Technology, Gaithersburg, MD 20899, USA.
SEU-FEI Nano-Pico Center, Key Laboratory of MEMS of Ministry of Education, Southeast University, Nanjing 210096, P. R. China.
Lab Chip. 2021 Nov 25;21(23):4618-4628. doi: 10.1039/d1lc00440a.
Label-free spectromicroscopy methods offer the capability to examine complex cellular phenomena. Electron and X-ray based spectromicroscopy methods, though powerful, have been hard to implement with hydrated objects due to the vacuum incompatibility of the samples and due to the parasitic signals from (or drastic attenuation by) the liquid matrix surrounding the biological object of interest. Similarly, for many techniques that operate at ambient pressure, such as Fourier transform infrared spectromicroscopy (FTIRM), the aqueous environment imposes severe limitations due to the strong absorption of liquid water in the infrared regime. Here we propose a microfabricated multi-compartmental and reusable hydrated sample platform suitable for use with several analytical techniques, which employs the conformal encapsulation of biological specimens by a few layers of atomically thin graphene. Such an electron, X-ray, and infrared transparent, molecularly impermeable and mechanically robust enclosure preserves the hydrated environment around the object for a sufficient time to allow examination of hydrated bio-objects with techniques operating under both ambient and high vacuum conditions. An additional hydration source, provided by hydrogel pads lithographically patterned in the liquid state near/around the specimen and co-encapsulated, has been added to further extend the hydration lifetime. Note that the in-liquid lithographic electron beam-induced gelation procedure allows for addressable capture and immobilization of the biological cells from the solution. Scanning electron microscopy and optical fluorescence microscopy, as well as synchrotron radiation based FTIR and X-ray fluorescence microscopy, have been used to test the applicability of the platform and for its validation with yeast, A549 human carcinoma lung cells and micropatterned gels as biological object phantoms.
无标记光谱显微镜方法具有检查复杂细胞现象的能力。电子和 X 射线基光谱显微镜方法虽然功能强大,但由于样品的真空不兼容性以及周围液体基质对感兴趣的生物对象的寄生信号(或剧烈衰减),很难与水合物体一起实施。同样,对于许多在环境压力下运行的技术,如傅里叶变换红外光谱显微镜 (FTIRM),由于在红外区域液体水的强烈吸收,水合环境也会造成严重的限制。在这里,我们提出了一种适用于多种分析技术的微制造多隔室和可重复使用的水合样品平台,该平台采用几层原子薄的石墨烯对生物标本进行保形封装。这种电子、X 射线和红外透明、分子不可渗透且机械坚固的外壳可在足够长的时间内保持对象周围的水合环境,以允许在环境和高真空条件下使用多种技术检查水合生物对象。还增加了一个水合来源,由在靠近/围绕标本的液态下光刻图案化的水凝胶垫提供,并共同封装,以进一步延长水合寿命。值得注意的是,在液态中进行的电子束诱导凝胶化程序允许从溶液中对生物细胞进行可寻址捕获和固定。扫描电子显微镜和光学荧光显微镜以及基于同步辐射的 FTIR 和 X 射线荧光显微镜已被用于测试平台的适用性,并使用酵母、A549 人肺癌细胞和微图案化凝胶作为生物对象幻影对其进行验证。