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Updated: Sep 15, 2025

Staining and High-Resolution Imaging of Three-Dimensional Organoid and Spheroid Models
Published on: March 27, 2021
Foreground-aware Virtual Staining for Accurate 3D Cell Morphological Profiling
Alexandr A Kalinin1,2, Paula Llanos1, Theresa Maria Sommer3
1Imaging Platform, Broad Institute of MIT and Harvard, Cambridge, MA 02142, USA.
Abstract:
Microscopy enables direct observation of cellular morphology in 3D, with transmitted-light methods offering low-cost, minimally invasive imaging and fluorescence microscopy providing specificity and contrast. Virtual staining combines these strengths by using machine learning to predict fluorescence images from label-free inputs. However, training of existing methods typically relies on loss functions that treat all pixels equally, thus reproducing background noise and artifacts instead of focusing on biologically meaningful signals. We introduce Spotlight, a simple yet powerful virtual staining approach that guides the model to focus on relevant cellular structures. Spotlight uses histogram-based foreground estimation to mask pixel-wise loss and to calculate a Dice loss on soft-thresholded predictions for shape-aware learning. Applied to a 3D benchmark dataset, Spotlight improves morphological representation while preserving pixel-level accuracy, resulting in virtual stains better suited for downstream tasks such as segmentation and profiling.
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