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The Diagnostic Value of Pituitary MRI Radiomics Combined with Clinical Features for Central Precocious Puberty in Girls.

Created on 29 Jul 2026

Authors

Yan Li, Wan Chen, Fangying Liu, Qiang Wang, Lijuan Xu, Yulei Zhai, Xuechao Liu, Fan Yang, Shujing Li

Published in

Current medical imaging. Jul 25, 2026. Epub Jul 25, 2026.

Abstract

To evaluate the diagnostic value of pituitary magnetic resonance imaging (MRI) radiomics features combined with clinical parameters in distinguishing idiopathic central precocious puberty (ICPP) from isolated premature thelarche (PT), and to establish a practical and effective predictive model.
A retrospective analysis was conducted on 316 girls presenting with breast development, including 231 with ICPP and 85 with PT, from Hebei Children's Hospital (internal dataset), and 47 girls (26 with ICPP and 21 with PT) from Shijiazhuang Children's Hospital (external validation dataset). Clinical models, pituitary MRI radiomics models, and combined clinical-radiomics models were developed. Model performance was evaluated using ROC curves, calibration analysis, and decision curve analysis.
Significant differences were observed between the ICPP and isolated PT groups in body mass index (BMI), bone age index (BAI), folliclestimulating hormone (FSH), luteinizing hormone (LH), and estradiol (E2) (all P < 0.01). The pituitary gland was more frequently protruding in the ICPP group than in the PT group (80.5% vs. 49.5%, P < 0.05). In radiomics models, texture features contributed most significantly, with sagittal anterior pituitary features showing the greatest discriminative value. The clinical-radiomics fusion model outperformed individual clinical or radiomics models in predictive performance.
Key clinical and radiomics factors for differentiating idiopathic central precocious puberty (ICPP) from premature thelarche (PT) were identified: baseline BMI, BAI, FSH, LH, E2, and PRL are critical clinical indicators (with baseline LH exhibiting superior specificity as an independent diagnostic marker), and multimodal pituitary MRI radiomics analysis (predominantly the RAD-Total model) highlights the anterior pituitary as a dominant predictive feature, with ICPP-related pituitary enlargement attributed to premature hypothalamic-pituitary-gonadal axis (HPGA) activation. Notably, the clinical-radiomics fusion model (Clinical+RAD-Total) outperforms standalone clinical or radiomics models in diagnostic accuracy, achieving an AUC of 0.944 and considerable clinical net benefit, despite limitations including low sensitivity due to sample imbalance and slightly diminished performance in external validation cohorts.
Clinical-radiomics models demonstrated excellent predictive performance in both internal and external datasets. Among these, the Clinical+RADTotal model provided the highest diagnostic accuracy and clinical utility.

PMID:
42522316
Bibliographic data and abstract were imported from PubMed on 29 Jul 2026.

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