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Updated: Mar 25, 2026

Hybrid µCT-FMT imaging and image analysis
Published on: June 4, 2015
A preclinical CT and MRI Liver Imaging Dataset with Anatomical, Functional and Segmentation Data
Sarah Schraven1, Catherine Gonzalez2, Ferhan Baskaya1
1RWTH Aachen University, Institute for Experimental Molecular Imaging, Aachen, Germany.
None:
Chronic liver diseases (CLD) account for more than 2% of deaths worldwide. Extensive research has been conducted to better understand CLD, generating vast amounts of data. However, only a small fraction of raw preclinical data are publicly available, posing a significant challenge for transparency, reproducibility, and data reuse. Therefore, we built a preclinical liver imaging dataset, the first of its kind to our knowledge. The database contains longitudinal liver MRI scans from mice with hepatocellular carcinoma, metabolic dysfunction-associated steatohepatitis (MASH, formerly NASH), and fibrosis, as well as CT scans of mice with MASH and mice carrying a dysfunctional ICAM-1 gene. Superimposable MRI and CT scans bridge the gap between the modalities. Some of the 222 murine scans have annotated segmentations. Metadata containing both scan and mouse parameters are organized using a tailored metadata profile in ISA-Tabs. This dataset enables advanced image analysis, such as building tools for automated segmentation, train radiomics analysis tools, or can be used as a reference control dataset.
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