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Digital Histopathology by Infrared Spectroscopic Imaging

Rohit Bhargava

2023Annual Review of Analytical Chemistry56 citationsDOIOpen Access PDF

Abstract

Infrared (IR) spectroscopic imaging records spatially resolved molecular vibrational spectra, enabling a comprehensive measurement of the chemical makeup and heterogeneity of biological tissues. Combining this novel contrast mechanism in microscopy with the use of artificial intelligence can transform the practice of histopathology, which currently relies largely on human examination of morphologic patterns within stained tissue. First, this review summarizes IR imaging instrumentation especially suited to histopathology, analyses of its performance, and major trends. Second, an overview of data processing methods and application of machine learning is given, with an emphasis on the emerging use of deep learning. Third, a discussion on workflows in pathology is provided, with four categories proposed based on the complexity of methods and the analytical performance needed. Last, a set of guidelines, termed experimental and analytical specifications for spectroscopic imaging in histopathology, are proposed to help standardize the diversity of approaches in this emerging area.

Topics & Concepts

HistopathologyComputer scienceChemical imagingInstrumentation (computer programming)Digital pathologyArtificial intelligenceWorkflowMedical physicsPattern recognition (psychology)PathologyHyperspectral imagingMedicineDatabaseOperating systemSpectroscopy Techniques in Biomedical and Chemical ResearchMolecular Biology Techniques and ApplicationsSpectroscopy and Chemometric Analyses
Digital Histopathology by Infrared Spectroscopic Imaging | Litcius