首页> 外文期刊>Applied Spectroscopy: Society for Applied Spectroscopy >Transmission Fourier Transform Infrared Spectroscopic Imaging, Mapping, and Synchrotron Scanning Microscopy with Zinc Sulfide Hemispheres on Living Mammalian Cells at Sub-Cellular Resolution
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Transmission Fourier Transform Infrared Spectroscopic Imaging, Mapping, and Synchrotron Scanning Microscopy with Zinc Sulfide Hemispheres on Living Mammalian Cells at Sub-Cellular Resolution

机译:传输傅里叶变换红外光谱成像,测绘和同步扫描显微镜与硫化锌在亚细胞分辨率下的含锌哺乳动物细胞中的半球

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Fourier transform infrared (FT-IR) spectroscopic imaging and microscopy of single living cells are established label-free technique for the study of cell biology. The constant driver to improve the spatial resolution of the technique is due to the diffraction limit given by infrared (IR) wavelength making subcellular study challenging. Recently, we have reported, with the use of a prototype zinc sulfide (ZnS) transmission cell made of two hemispheres, that the spatial resolution is improved by the factor of the refractive index of ZnS, achieving a lambda/2.7 spatial resolution using the synchrotron-IR microscopy with a 36x objective with numerical aperture of 0.5. To refine and to demonstrate that the ZnS hemisphere transmission device can be translated to standard bench-top FT-IR imaging systems, we have, in this work, modified the device to achieve a more precise path length, which has improved the spectral quality of the living cells, and showed for the first time that the device can be applied to study live cells with three different bench-top FT-IR imaging systems. We applied focal plane array (FPA) imaging, linear array, and a synchrotron radiation single-point scanning method and demonstrated that in all cases, subcellular details of individual living cells can be obtained. Results have shown that imaging with the FPA detector can measure the largest area in a given time, while measurements from the scanning methods produced a smoother image. Synchrotron radiation single-point mapping produced the best quality image and has the flexibility to introduce over sampling to produce images of cells with great details, but it is time consuming in scanning mode. In summary, this work has demonstrated that the ZnS hemispheres can be applied in all three spectroscopic approaches to improve the spatial resolution without any modification to the existing microscopes.
机译:傅里叶变换红外(FT-IR)光谱成像和单一活细胞的显微镜是对细胞生物学研究的无标签技术。恒定的驱动器来提高该技术的空间分辨率是由于红外(IR)波长给出的衍射极限使亚细胞研究具有挑战性。最近,我们报道了,通过使用由两个半球制成的原型锌硫化锌(ZnS)传输单元,通过ZnS的折射率因子改善了空间分辨率,实现了使用SynchRotron的Lambda / 2.7空间分辨率 - 带有36倍的显微镜,具有0.5的数值孔径。为了改进并证明ZNS半球传输设备可以转换为标准台式FT-IR成像系统,我们在这项工作中修改了设备以实现更精确的路径长度,这提高了频谱质量活细胞,并首次显示该装置可以应用于使用三种不同的台式FT-IR成像系统研究活细胞。我们应用了焦平面阵列(FPA)成像,线性阵列和同步辐射单点扫描方法,并证明了在所有情况下,可以获得各种活细胞的亚细胞细节。结果表明,与FPA检测器的成像可以测量给定时间的最大区域,而来自扫描方法的测量产生了更平滑的图像。同步辐射单点映射产生了最佳质量图像,并具有在采样上引入的灵活性,以产生具有卓越细节的细胞图像,但扫描模式耗时。总之,该工作表明,ZNS半球可以应用于所有三种光谱方法,以改善空间分辨率而没有对现有显微镜进行任何修改。

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