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Updated: Jun 17, 2026

Multiplexed Fluorescent Immunohistochemical Staining, Imaging, and Analysis in Histological Samples of Lymphoma
Published on: January 9, 2019
Multiplexed high-content imaging uncovers morphological diversity of lymphocyte activation and dysfunction
Julie C Matte1, Olivier B Bakker1, Madeline A Ohl1
1Wellcome Sanger Institute, Wellcome Genome Campus, Hinxton, CB10 1RQ, UK.
Insights
TGlow is a new imaging platform for detailed single-cell analysis of human T cells. It reveals how cell structure changes during activation, drug treatment, and exhaustion, advancing immune cell research.
Area of Science:
- Immunology
- Cell Biology
- Bioimaging
Background:
- Current single-cell technologies like transcriptomics and proteomics offer limited insight into immune cell phenotypes influenced by spatial organization, organelle structure, and cytoskeleton.
- Understanding these physical cellular characteristics is crucial for a comprehensive view of immune cell function.
Purpose of the Study:
- To introduce TGlow, a scalable high-content imaging platform designed for systematic single-cell phenotyping of primary human lymphocytes.
- To enable joint quantification of cellular morphology, organelle organization, and immune activation states.
Main Methods:
- TGlow integrates cyclic immunofluorescence and deep z-stack confocal imaging.
- Utilizes open-source data processing pipelines with classical and self-supervised vision transformer-based feature extraction.
- Analyzed over 400,000 primary human T cells (CD4+ and CD8+).
Main Results:
- TGlow resolved distinct and reproducible phenotypic states across T cell activation, drug perturbations, CRISPR knockouts, and CD8+ T cell exhaustion.
- Identified mechanism-specific drug phenotypes, including defective endoplasmic reticulum polarization.
- Revealed mitochondrial clustering linked to activation and cell cycle, gene-specific phenotypes from CRISPR, and cytoskeletal collapse in exhausted CD8+ T cells.
Conclusions:
- TGlow offers a scalable framework for high-dimensional phenotyping of lymphocyte states.
- It advances functional genomics, perturbation screening, and immune profiling by linking genetic/pharmacological perturbations to cellular function.
- Resolves morphological and functional heterogeneity in lymphocytes.
Abstract:
Single-cell transcriptomic and proteomic technologies enable molecular profiling of immune cells at scale but provide limited access to cellular phenotypes shaped by spatial organisation, organelle architecture and cytoskeletal remodelling. Here we present TGlow, a scalable high-content imaging platform optimized for systematic single-cell phenotyping of primary human lymphocytes. TGlow integrates cyclic immunofluorescence, deep z-stack confocal imaging, and open-source data processing pipelines, including both classical and self-supervised vision transformer-based feature extraction, to jointly quantify cellular morphology, organelle organization, and immune activation states. Applied across over 400,000 primary human T cells spanning CD4+ activation time courses, drug perturbations, CRISPR knockouts and CD8+ T-cell exhaustion, TGlow resolves distinct and reproducible phenotypic states. We uncover dose-dependent and mechanism-specific drug phenotypes, such as defective endoplasmic reticulum polarisation under mycophenolic acid and tofacitinib. We show that mitochondrial clustering reveals activation- and cell-cycle-linked remodelling programs, CRISPR perturbations map gene-specific phenotypes that reposition cells along activation trajectories, and we identify a previously unrecognised collapse of cytoskeletal architecture in exhausted CD8+ T cells. TGlow provides a scalable framework for high-dimensional phenotyping of lymphocyte states advancing functional genomics, perturbation screening and population-level immune profiling by resolving the morphological and functional heterogeneity of lymphocytes and enabling systematic linkage of genetic and pharmacological perturbations to cellular function.
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