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活细菌细胞的相关原子力显微镜和荧光寿命成像

Correlated atomic force microscopy and fluorescence lifetime imaging of live bacterial cells.

作者信息

Micic Miodrag, Hu Dehong, Suh Yung Doug, Newton Greg, Romine Margaret, Lu H Peter

机构信息

Fundamental Science Division, Pacific Northwest National Laboratory, MSIN K8-88, P.O. Box 999, Richland, WA 99352, USA.

出版信息

Colloids Surf B Biointerfaces. 2004 Apr 15;34(4):205-12. doi: 10.1016/j.colsurfb.2003.10.020.

Abstract

We report on imaging living bacterial cells by using a correlated tapping-mode atomic force microscopy (AFM) and confocal fluorescence lifetime imaging microscopy (FLIM). For optimal imaging of Gram-negative Shewanella oneidensis MR-1 cells, we explored different methods of bacterial sample preparation, such as spreading the cells on poly-L-lysine coated surfaces or agarose gel coated surfaces. We have found that the agarose gel containing 99% ammonium acetate buffer can provide sufficient local aqueous environment for single bacterial cells. Furthermore, the cell surface topography can be characterized by tapping-mode in-air AFM imaging for the single bacterial cells that are partially embedded. Using in-air rather than under-water AFM imaging of the living cells significantly enhanced the contrast and signal-to-noise ratio of the AFM images. Near-field AFM-tip-enhanced fluorescence lifetime imaging (AFM-FLIM) holds high promise on obtaining fluorescence images beyond optical diffraction limited spatial resolution. We have previously demonstrated near-field AFM-FLIM imaging of polymer beads beyond diffraction limited spatial resolution. Here, as the first step of applying AFM-FLIM on imaging bacterial living cells, we demonstrated a correlated and consecutive AFM topographic imaging, fluorescence intensity imaging, and FLIM imaging of living bacterial cells to characterize cell polarity.

摘要

我们报告了使用相关的轻敲模式原子力显微镜(AFM)和共聚焦荧光寿命成像显微镜(FLIM)对活细菌细胞进行成像的研究。为了对革兰氏阴性的奥奈达希瓦氏菌MR-1细胞进行最佳成像,我们探索了不同的细菌样品制备方法,例如将细胞铺展在聚-L-赖氨酸包被的表面或琼脂糖凝胶包被的表面上。我们发现,含有99%醋酸铵缓冲液的琼脂糖凝胶可以为单个细菌细胞提供足够的局部水环境。此外,对于部分嵌入的单个细菌细胞,可以通过空气中轻敲模式AFM成像来表征细胞表面形貌。对活细胞使用空气中而非水下AFM成像显著提高了AFM图像的对比度和信噪比。近场AFM针尖增强荧光寿命成像(AFM-FLIM)在获得超越光学衍射极限空间分辨率的荧光图像方面具有很高的前景。我们之前已经证明了对聚合物微珠进行超越衍射极限空间分辨率的近场AFM-FLIM成像。在这里,作为将AFM-FLIM应用于细菌活细胞成像的第一步,我们展示了对活细菌细胞进行相关且连续的AFM形貌成像、荧光强度成像和FLIM成像,以表征细胞极性。

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