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Updated: Dec 13, 2025

Analyses of Proteinuria, Renal Infiltration of Leukocytes, and Renal Deposition of Proteins in Lupus-prone MRL/lpr Mice
Published on: June 8, 2022
Detection of water-molecular-motion configuration in patients with lupus nephritis: a primary study using
Huilan Shi1, Yanyan Wang2, Tiekun Yan2
1Department of Radiology, Tianjin Medical University General Hospital, Tianjin, China.
Background:
Lupus nephritis (LN) is one of most common types of secondary glomerulonephritis, which is characterized by longitudinal pathological changes. Microstructural lesions of LN will impact the motion of water molecules, which can be detected by diffusion-weighted imaging (DWI). There are few reported measurements of water diffusion in patients with LN, and the nature of water diffusion across the entire depth of the renal parenchyma remains largely unknown.
Methods:
Twenty adult patients with LN and 11 healthy volunteers underwent DWI inspection. Renal biopsy samples were characterized based on the revised ISN/RPS 2003 classification. The apparent-diffusion coefficient (ADC) was calculated via fitting into a mono-exponential model. To compare the ADC level across the entire renal parenchyma between the two groups, repeated-measures analysis of variance (RM-ANOVA) was performed. ADC data derived from DWI pictures were transformed into tridimensional maps by MATLAB software.
Results:
Compared with data from healthy volunteers, lower average ADC values with major undulatory magnitudes were found in patients with LN, especially in the cortical zone. Tridimensional maps of patients with LN displayed geographic terrain-like canyons and/or valleys that were different from the corresponding terrain-like flatlands and/or plateaus in healthy volunteers. A heterogeneity of ADC values was found in bilateral kidneys. Left kidneys predominated higher ADC values in patients with LN. The ADC values across the entire renal parenchyma exhibited statistically significant differences among the three identified pathological subclasses (P < 0.001).
Conclusions:
Analysis of the motion of water molecules across the entire renal parenchyma may be helpful for better understanding the pathological conditions of LN, for which microstructural and functional heterogeneity may be detected and visualized via DWI.
Insights
Diffusion-weighted imaging (DWI) reveals distinct water diffusion patterns in lupus nephritis (LN) kidneys. Lower apparent diffusion coefficient (ADC) values and unique topographical maps in LN patients highlight renal microstructural changes and heterogeneity.
Area of Science:
- Nephrology
- Radiology
- Medical Imaging
Background:
- Lupus nephritis (LN) is a common secondary glomerulonephritis with progressive pathological changes.
- Microstructural damage in LN affects water molecule motion, detectable by diffusion-weighted imaging (DWI).
- Water diffusion characteristics across the renal parenchyma in LN are not well understood.
Purpose of the Study:
- To investigate water diffusion patterns in the renal parenchyma of lupus nephritis patients using DWI.
- To compare diffusion parameters between LN patients and healthy controls.
- To correlate diffusion findings with pathological classifications of LN.
Main Methods:
- Twenty adult LN patients and 11 healthy volunteers underwent DWI.
- Apparent diffusion coefficient (ADC) values were calculated using a mono-exponential model.
- 3D maps of ADC values were generated to visualize diffusion heterogeneity.
Main Results:
- LN patients showed lower average ADC values, particularly in the renal cortex, compared to controls.
- 3D DWI maps revealed terrain-like canyons and valleys in LN kidneys, distinct from controls.
- Significant differences in ADC values were observed across pathological subclasses of LN (P < 0.001).
Conclusions:
- DWI can visualize microstructural and functional heterogeneity in the renal parenchyma of LN patients.
- Analysis of water molecule motion provides insights into the pathological conditions of lupus nephritis.
- DWI may serve as a valuable tool for assessing LN severity and progression.
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