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Roelleke, U.

Publications and source records attributed to Roelleke, U..

2 recordsLinked to original sources

Correlative X-ray imaging and fluorescence microscopy

Imaging the structural organization inside cells in their native state is essential for understanding how the arrangement and interactions among molecular components give rise to biological function. Fluorescence microscopy is one of the pivotal techniques that provides molecular specificity for imaging in real space, however, the technique is limited to labeled components. X-rays, on the contrary, are sensitive to electron density contrast and therefore to label-free samples, and probe structure in reciprocal space. In particular, scanning small-angle X-ray scattering (SAXS) combines information from real and reciprocal space and enables access to intact cells, owing to the high penetration power of the X-rays. Combining both imaging modalities in a synergistic manner promises powerful tools for cellular imaging, but remains challenging, because of the differing requirements the complementary methods introduce. Here we present a correlative imaging platform that integrates a modular, compact and beamline-compatible fluorescence microscope with scanning SAXS, to enable fast sequential imaging of the identical cellular regions. We developed a dedicated microfluidics flow chamber enabling measurements under hydrated, near-native conditions. We demonstrate the utility of our methodology by investigating two different relevant cellular components, i.e., thick keratin bundles in epithelial cells that contribute to cell mechanics, and force-generating actomyosin in cardiomyocytes. Employing adapted data analysis methods, we find a good agreement between the fluorescence-derived and the SAXS-derived orientation maps. This result demonstrates that the label-free approach with SAXS captures cytoskeletal organization through-out the cell, and can be directly linked to specific molecular information provided by the complementary fluorescence imaging, in a physiologically relevant cellular environment. Our work establishes a general strategy for multimodal imaging of cellular architecture and opens ways to investigate living cells under the influence of drugs and chemical manipulation experiments.

biophysics↗

Fast scanning small angle X-ray scattering of hydrated biological cells

Due to their high penetration depth, X-rays enable us to obtain information from the interior of whole, unsliced cells. Scanning small angle X-ray scattering (SAXS), in particular, reveals real-space images in dark field representation as well as structural information in reciprocal space. However, obtaining information on anisotropy and orientation from cells in an aqueous, close-to-physiological environment remains challenging. Here, we extend the recently introduced fast scanning SAXS mode with short exposure times of few milliseconds to such hydrated samples by combining a newly developed, X-ray compatible microfluidic sample chamber and innovative data analysis that includes an effective noise-filtering method. This strategy enables the systematic analysis of radiation damage by quantifying the SAXS signal. Our results demonstrate that scanning SAXS can be used to obtain intracellular information of fixed-hydrated cells and the approach may in the future be applicable to living cells as well. SynopsisFast scanning SAXS on biological cells in aqueous environment reveals intracellular anisotropy and orientation and allows for systematic assessment of radiation damage caused by the measurements.

biophysics↗