Antibody-Based Multiplex Image Analysis: Standard Analytical Workflows and Artificial Intelligence Tools for
Mohamed Omar1, Giuseppe Nicolo' Fanelli2, Fabio Socciarelli3
1Department of Computational Biomedicine, Cedars-Sinai Medical Center, Los Angeles, California; Cancer Therapeutics Program, Samuel Oschin Comprehensive Cancer Institute, Cedars-Sinai Medical Center, Los Angeles, California.
Insights
Multiplex imaging in pathology allows simultaneous visualization of multiple biomarkers, offering a comprehensive view of tissue complexity. This review details digital image analysis workflows and open-source tools for multiplex IHC/IF, aiding pathologists in integrating these advanced techniques.
Area of Science:
- Pathology
- Digital Pathology
- Biomedical Imaging
Background:
- Conventional histopathology relies on visual inspection, while singleplex IHC is limited to single biomarkers.
- Multiplexed imaging technologies (multiplex IHC/IF) enable simultaneous visualization of multiple biomarkers in a single tissue section.
- These advanced methods provide quantitative multimarker data and spatial context, enhancing understanding of cellular interactions and disease mechanisms.
Purpose of the Study:
- To review the standard digital image analysis workflow for multiplex imaging in pathology.
- To discuss common open-source tools supporting each step of the analysis pipeline.
- To provide practical guidance for pathologists and researchers integrating multiplex image analysis into routine workflows and translational research.
Main Methods:
- Image acquisition and preprocessing
- Cell segmentation techniques
- Biomarker quantification strategies
- Utilizing open-source software solutions
Main Results:
- Detailed outline of an end-to-end digital image analysis pipeline for multiplex imaging.
- Discussion of common challenges and solutions in processing large multichannel images.
- Identification of open-source tools to support various stages of the workflow.
Conclusions:
- Multiplex imaging offers a more comprehensive view of tissue pathology compared to conventional methods.
- Standardized digital image analysis workflows and accessible open-source tools are crucial for adopting these technologies.
- This review bridges the gap between advanced multiplex imaging and practical application in pathology and research.
Abstract:
Conventional histopathology has traditionally been the cornerstone of disease diagnosis, relying on qualitative or semiquantitative visual inspection of tissue sections to detect pathological changes. Singleplex immunohistochemistry (IHC), although effective in detecting specific biomarkers, is often limited by its single-marker focus, which constrains its ability to capture the complexity of the tissue environment. The introduction of multiplexed imaging technologies, such as multiplex IHC and multiplex immunofluorescence, has been transformative, enabling the simultaneous visualization of multiple biomarkers within a single tissue section. These approaches complement morphology with quantitative multimarker data and spatial context, providing a more comprehensive view of cellular interactions and disease mechanisms. However, the rich data from multiplex IHC/multiplex immunofluorescence experiments come with significant analytical challenges, as large multichannel images require comprehensive processing to transform raw imaging data into quantitative and meaningful information. This review focuses on the standard digital image analysis workflow for multiplex imaging in pathology, covering each step from image acquisition and preprocessing to cell segmentation and biomarker quantification. We discuss the common open-source tools that support each step to guide users in selecting appropriate solutions. By outlining an end-to-end pipeline with concrete examples, this review is intended for practicing pathologists and researchers with limited computational expertise. It provides practical guidance and best practices to help integrate multiplex image analysis into routine pathology workflows and translational research, bridging the gap between advanced imaging technology and day-to-day diagnostic practice.
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