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Updated: Feb 7, 2026

Author Spotlight: Establishing MASLD Cell Models for Investigating Disease Mechanisms and the Lipid-Lowering Effects of Koumiss
Published on: July 19, 2024
Dual elastography ultrasound for classifying metabolic dysfunction-associated steatotic liver disease: a
Sitong Chen1, Yuejuan Gao1, GuangWen Cheng2
1Department of Interventional Ultrasound, Fifth Medical Center of Chinese PLA General Hospital, Beijing, China.
Background:
The binary diagnostic approach does not reflect the entire spectrum of metabolic dysfunction associated steatotic liver disease (MASLD. We used an elastography technology, dual elastography ultrasound (DEUS), to discriminate the different stages of MASLD.
Method:
This prospective multicenter study was conducted from December 2020 to March 2022. All patients underwent DEUS scan, a liver biopsy, and a liver function laboratory test. The optimal model was developed (ModelDEUSC) with 10 machine learning algorithms by combining DEUS and selected clinical parameters and tested the diagnostic accuracy for distinguishing the three progression stages of MASLD: low-, intermediate-, and high-risk. The diagnostic ability of ModelDEUSC for MASH with advanced fibrosis (≥ F3) was compared with other four non-invasive tests.
Results:
The study included 312 patients in the derivation cohort and 135 in the validation cohort (7:3). Combining DEUS and clinical parameters, a ternary classification of MASLD in the validation cohort achieved a macro-average AUC of 0.858 (95% CI: 0.793, 0.925). The AUC for the diagnosis of MASH with ≥ F3 fibrosis of ModelDEUSC was 0.886 (95% CI: 0.813, 0.824), which was superior to FAST, FIB-4, NFS, and APRI (0.822, 0.657, 0.688, and 0.659). Moreover, ModelDEUSC demonstrated favorable performance for distinguishing stages of liver fibrosis (F1 to F4), inflammation (G1 to G4), and steatosis (S1 to S4). Stratification analysis showed that the ability of ModelDEUSC was not influenced by diabetes and obesity.
Conclusion:
Multicenter data analysis demonstrated DEUS' advanced ability in continuous stratification of MASLD, which will provide a low-cost, easily accessible, and accurate noninvasive tools (NIT) for MASLD.
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