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September 17, 2025Proceedings on CD-ROM - International Society for Magnetic Resonance in Medicine. Scientific Meeting and Exhibition/Proceedings of the International Society for Magnetic Resonance in Medicine, Scientific Meeting and Exhibition0 citations

Multi-contrast deep-learning segmentation of the choroid plexus using self-configuring nnU-Net

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KBKanika BagaiASAlexander SongMLMelanie Leguizamon

Key Points

  • Multi-contrast MRI improved choroid plexus segmentation accuracy by 5.2 points, indicating a significant enhancement.
  • The study utilized a self-configuring deep learning framework to integrate T1, T2, and T2-FLAIR MRI images for better segmentation.
  • Results were compared against a previous single-contrast method and manual segmentation by neuroradiologists.
  • This novel approach underscores the choroid plexus's critical role in the neurofluid circuit and may aid in future neuro-immune research.

Abstract

Motivation: Recent studies have emphasized the relevance of accurate measures of the choroid plexus (ChP), which operates at the blood-cerebrospinal fluid (CSF) barrier and plays a fundamental role in CSF production, circulation, and neuro-immune surveillance. Goal(s): To improve the existing ChP segmentation by leveraging the complementary nature of multi-contrast MRI together with a self-configuring deep-learning framework. Approach: Multi-contrast segmentation is assessed by comparing a previous single-contrast implementation with the novel multi-contrast approach and gold-standard neuroradiologist manual segmentation. Results: The Dice-Sørensen increased by 5.2 points using multi-contrast ChP segmentation, demonstrating that T1-weighted, T2-weighted, and T2-FLAIR can be used together to provide improved, complementary segmentation accuracy. Impact: This study evaluates multi-contrast MRIs as inputs to a self-configuring deep learning framework to provide a new tool for segmentation of the choroid plexus, which has gained much recent interest as the most proximal structure in the neurofluid circuit.

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Cite This Study

Bagai et al. (2025) studied this question.

synapsesocial.com/papers/68d4597b31b076d99fa5cb89https://doi.org/10.58530/2025/4305
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