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Application of Ultrasound and Shear Wave Elastography Imaging in a Rat Model of NAFLD/NASH
Published on: April 20, 2021
Stratifying non-alcoholic fatty liver disease using diffusion-weighted imaging-based habitat imaging: A rabbit model
Jiale Hang1, Wenjian Wang1, Furong Wan1
1Department of Radiology, Northern Jiangsu People's Hospital, Northern Jiangsu People's Hospital Affiliated to Yangzhou University, Yangzhou 225001, China.
Purpose:
Habitat imaging integrated multiparametric biomarkers, enabling precise quantification and visualization of hepatic tissue characteristics. This work evaluated DWI-based habitat imaging for stratifying Non-alcoholic Fatty Liver Disease (NAFLD) stages to enable early detection of Nonalcoholic Steatohepatitis (NASH).
Methods:
Using existing DWI data from 32 male New Zealand rabbits randomized to high-fat/cholesterol or standard diets (NAFLD model), we applied a novel habitat imaging framework integrating mono-exponential diffusion-weighted imaging (DWI), intravoxel incoherent motion (IVIM), stretched exponential model (SEM), and diffusion kurtosis imaging (DKI) models. This identified four hepatic habitats reflecting perfusion, diffusion heterogeneity, and microstructural complexity. Unlike prior diffusion analyses, habitat fractions (H1 - H4) and heterogeneity (HH) indices were derived via spatial multiparametric pattern recognition. Diagnostic performance for NASH was assessed by AUC.
Results:
NASH was characterized by a significantly lower fraction of habitat 1 (H1) and higher fraction of habitat 4 (H4) (p < 0.05). Habitat heterogeneity (HH) was markedly reduced in NASH versus normal histology and simple steatosis (p < 0.05). For distinguishing NASH, H1 demonstrated a numerically higher AUC (0.931) compared to H1 + H4 (AUC = 0.922) and perfusion fraction (f, AUC = 0.909). However, the DeLong test confirmed no statistically significant differences among these AUC values.
Conclusion:
DWI habitat imaging is a promising tool for NAFLD monitoring, detecting tissue heterogeneity with diagnostic performance comparable to conventional diffusion metrics.
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