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ASCHOPLEX: A generalizable approach for the automatic segmentation of choroid plexus
Valentina Visani1, Mattia Veronese2, Francesca B Pizzini3
1Department of Information Engineering, University of Padova, Padova, Italy.
Computers in Biology and Medicine
|September 26, 2024
Summary
ASCHOPLEX accurately segments the Choroid Plexus (ChP) using deep learning on MRI scans. This tool offers reliable ChP volume estimation, crucial for understanding brain disorders.
Area of Science:
- Neuroimaging
- Artificial Intelligence
- Medical Image Analysis
Background:
- The Choroid Plexus (ChP) is crucial for brain homeostasis and cerebrospinal fluid production.
- Accurate segmentation of the ChP is challenging but vital for studying neurological and psychiatric disorders.
- Existing segmentation methods lack accuracy and reproducibility for large-scale studies.
Purpose of the Study:
- To introduce ASCHOPLEX, a novel deep learning tool for automated Choroid Plexus segmentation.
- To enable accurate and reproducible ChP volume estimation from structural MRI data.
- To improve the analysis of ChP in neurological and psychiatric conditions.
Main Methods:
- ASCHOPLEX utilizes 3D UNet, UNETR, and DynUNet architectures.
- The tool was trained on 128 T1-weighted MRI scans (controls and Multiple Sclerosis patients).
- Fine-tuning (ASCHOPLEXtune) was performed on 77 T1-weighted PET/MRI scans (controls and depressed patients).
Main Results:
- ASCHOPLEX achieved superior performance over FreeSurfer and Gaussian Mixture Model.
- Achieved Dice Coefficients of 0.80 (ASCHOPLEX) and 0.78 (ASCHOPLEXtune).
- Demonstrated low ChP volume error: 9.22% (ASCHOPLEX) and 9.23% (ASCHOPLEXtune).
Conclusions:
- ASCHOPLEX provides highly accurate and reliable Choroid Plexus segmentations.
- The tool ensures reproducible results for ChP volume estimation.
- ASCHOPLEX is a valuable tool for neuroimaging research involving the Choroid Plexus.

