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傅里叶变换红外显微镜研究薄的冻干脑样品中软 X 射线诱导的辐射损伤。

Soft X-ray induced radiation damage in thin freeze-dried brain samples studied by FTIR microscopy.

机构信息

Elettra-Sincrotrone Trieste SCpA, SS 14, km 163.5, Basovizza, TS 34149 Trieste, Italy.

Department of Chemical Engineering, University College London, London, United Kingdom.

出版信息

J Synchrotron Radiat. 2020 Sep 1;27(Pt 5):1218-1226. doi: 10.1107/S1600577520010103. Epub 2020 Aug 21.

Abstract

In order to push the spatial resolution limits to the nanoscale, synchrotron-based soft X-ray microscopy (XRM) experiments require higher radiation doses to be delivered to materials. Nevertheless, the associated radiation damage impacts on the integrity of delicate biological samples. Herein, the extent of soft X-ray radiation damage in popular thin freeze-dried brain tissue samples mounted onto SiN membranes, as highlighted by Fourier transform infrared microscopy (FTIR), is reported. The freeze-dried tissue samples were found to be affected by general degradation of the vibrational architecture, though these effects were weaker than those observed in paraffin-embedded and hydrated systems reported in the literature. In addition, weak, reversible and specific features of the tissue-SiN interaction could be identified for the first time upon routine soft X-ray exposures, further highlighting the complex interplay between the biological sample, its preparation protocol and X-ray probe.

摘要

为了将空间分辨率推至纳米级,基于同步加速器的软 X 射线显微镜(XRM)实验需要将更高的辐射剂量传递到材料上。然而,相关的辐射损伤会影响到脆弱生物样品的完整性。在此,通过傅里叶变换红外显微镜(FTIR)报告了在常见的薄冷冻干燥脑组织样本上安装到 SiN 膜上时软 X 射线辐射损伤的程度。结果发现,冷冻干燥的组织样本受到振动结构普遍降解的影响,但这些影响比文献中报道的石蜡包埋和水合系统中的影响要弱。此外,首次在常规软 X 射线照射下鉴定到组织-SiN 相互作用的微弱、可逆和特定特征,进一步突出了生物样本、其制备方案和 X 射线探针之间的复杂相互作用。

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