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Updated: Jun 13, 2026

Preparing Adherent Cells for X-ray Fluorescence Imaging by Chemical Fixation
Published on: March 12, 2015
Multifunctional bending magnet beamline with a capillary optic for X-ray fluorescence studies of metals in tissue
Benjamin Roter1, Andrew M Crawford2,3, Qiaoling Jin4,5
1Applied Physics, Northwestern University, Evanston, IL 60208, USA.
Abstract:
Scanning fluorescence X-ray microscopy lets one non-destructively and quantitatively map the distribution of most biologically-important metals in cells and tissues. For studies on large-scale tissues and organs, a spatial resolution of several micrometers is often sufficient; in this case, bending magnets at synchrotron light sources provide abundant X-ray flux. We describe here the use of bending magnet beamline 8-BM-B at the Advanced Photon Source (APS) with two distinct microscopy stations: a pre-existing one with Kirkpatrick-Baez (KB) mirror optics for slightly higher throughput and the ability to accommodate samples tens of centimeters across, and a new prototype station with an axially-symmetric, single-bounce, capillary optic with slightly less flux, but slightly higher fluence (which affects achievable resolution at low metal concentration) and higher spatial resolution. The KB station provides spatial resolution at a per-pixel exposure time of and a fluence per time of 5.8 × 107 photons/(μm2 · s), while the prototype capillary station provides at and a fluence per time of 6.1 × 107 photons/(μm2 · s). We used image power spectral density to estimate the achieved spatial resolution from individually acquired images, with depending-on the optic, the fluorescence signal strength of the sample being imaged, and the method used to process raw fluorescence spectral data.

