A comparison of parametric and integrative approaches for X-ray fluorescence analysis applied to a Stroke model

Author:

Crawford Andrew M.ORCID,Sylvain Nicole J.,Hou Huishu,Hackett Mark J.,Pushie M. JakeORCID,Pickering Ingrid J.,George Graham N.,Kelly Michael E.

Abstract

Synchrotron X-ray fluorescence imaging enables visualization and quantification of microscopic distributions of elements. This versatile technique has matured to the point where it is used in a wide range of research fields. The method can be used to quantitate the levels of different elements in the image on a pixel-by-pixel basis. Two approaches to X-ray fluorescence image analysis are commonly used, namely, (i) integrative analysis, or window binning, which simply sums the numbers of all photons detected within a specific energy region of interest; and (ii) parametric analysis, or fitting, in which emission spectra are represented by the sum of parameters representing a series of peaks and other contributing factors. This paper presents a quantitative comparison between these two methods of image analysis using X-ray fluorescence imaging of mouse brain-tissue sections; it is shown that substantial errors can result when data from overlapping emission lines are binned rather than fitted. These differences are explored using two different digital signal processing data-acquisition systems with different count-rate and emission-line resolution characteristics. Irrespective of the digital signal processing electronics, there are substantial differences in quantitation between the two approaches. Binning analyses are thus shown to contain significant errors that not only distort the data but in some cases result in complete reversal of trends between different tissue regions.

Funder

Saskatchewan Health Research Foundation Establishment Grant

Heart & Stroke Foundation

Canadian Institutes of Health Research, Heart and Stroke Foundation Synchrotron Medical Imaging Team

Natural Sciences and Engineering Research Council of Canada

Government of Saskatchewan Innovation and Science Fund

University of Saskatchewan, Saskatchewan Research Chair in Clinical Stroke Research

Government of Saskatchewan

U.S. Department of Energy, Office of Science

U.S. Department of Energy, Office of Biological and Environmental Research

National Institutes of Health, National Center for Research Resources

Publisher

International Union of Crystallography (IUCr)

Subject

Instrumentation,Nuclear and High Energy Physics,Radiation

Reference47 articles.

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