| Literature DB >> 31601196 |
Qiang Zhang1, Zexing Yu2, Song Zeng1, Lu Liang3, Yue Xu1, Zijian Zhang1, Hao Tang1, Wenjiao Jiao1, Wenrui Xue4, Wei Wang1, Xiaodong Zhang1, Tao Jiang5, Xiaopeng Hu6.
Abstract
BACKGROUND: Chronic allograft damage (CAD) is the leading cause of long-term graft dysfunction. A noninvasive method that can diagnose CAD early and monitor its development is needed.Entities:
Keywords: Chronic allograft damage; Diffusion-weighted imaging; Graft fibrosis; Intravoxel incoherent motion imaging
Year: 2019 PMID: 31601196 PMCID: PMC6785891 DOI: 10.1186/s12882-019-1545-1
Source DB: PubMed Journal: BMC Nephrol ISSN: 1471-2369 Impact factor: 2.388
Fig. 2Locations of the transplanted kidneys and selection of the ROI in coronal and axial T2-weighted MRI. The transplanted kidneys were located in the original location and showed relative fixation. The regions of interest were chosen from the renal cortex randomly after avoiding blood vessels, the renal pelvis and the calyx
Fig. 1Creatinine levels at different time points in the different groups. Creatinine was measured once every 2 weeks during the experiment. The experimental group is marked in black and the control group in gray. Data are presented as the mean ± standard deviation. The creatinine level in both the experimental and control groups increased after modeling. The creatinine level in the two groups showed no significant differences until 8 weeks after modeling. (*P<0.05, **P<0.01)
Fig. 3Representative T2-weighted images, IVIM and the gross appearance of the transplanted kidneys at different time points in each group. Typical coronal and axial T2-weighted images, axial IVIM (D map) and the coronal gross appearance 4, 12 and 20 weeks after modeling. In the experimental group, the signals of the cortex and medulla gradually strengthened over time, the distribution of signals in the cortex and medulla was disordered, and the boundary became vaguer. In contrast, the control group showed no significant changes over time (scale bar: 5 mm)
DWI and IVIM parameters of 2 groups at different stages
| Time points | Parameters | Experimental group | Control group | |
|---|---|---|---|---|
| 4 weeks ( | ADC (10−3 mm2/s) | 1.46 ± 0.11 | 2.09 ± 0.32 | 0.000 |
| D* (10−3 mm2/s) | 20.95 ± 2.27 | 21.42 ± 1.60 | 0.459 | |
| D (10−3 mm2/s) | 1.44 ± 0.10 | 1.97 ± 0.31 | 0.000 | |
| f (%) | 26.53 ± 2.09 | 32.25 ± 4.01 | 0.000 | |
| 12 weeks ( | ADC (10−3 mm2/s) | 1.11 ± 0.08 | 2.11 ± 0.33 | 0.000 |
| D* (10−3 mm2/s) | 20.65 ± 0.80 | 21.16 ± 1.26 | 0.589 | |
| D (10−3 mm2/s) | 1.12 ± 0.32 | 1.83 ± 0.41 | 0.002 | |
| f (%) | 13.32 ± 2.67 | 32.04 ± 2.93 | 0.000 | |
| 20 weeks ( | ADC (10−3 mm2/s) | 0.70 ± 0.23 | 1.89 ± 0.31 | 0.000 |
| D* (10−3 mm2/s) | 19.73 ± 0.92 | 20.85 ± 0.82 | 0.019 | |
| D (10−3 mm2/s) | 0.47 ± 0.12 | 1.71 ± 0.30 | 0.000 | |
| f (%) | 6.68 ± 1.36 | 31.00 ± 2.05 | 0.000 |
Fig. 4Changes in the DWI and IVIM parameters in the experimental and control groups. The ADC, D and f parameters in the experimental group decreased gradually over time (P<0.05). All parameters in the control group and D* in the experimental group showed no significant differences with the increasing postoperative time (P>0.05)
Fig. 5Histopathological changes in the transplanted kidneys at different postoperative time periods. a Pathological changes at different postoperative time periods in the control group (HE and Masson staining 200 × magnification, PASM staining 400 × magnification; scale bar: 50 μm). b Pathological changes at different postoperative time periods in the experimental group. The experimental group presented CAD features rather than those of the control group at 4 weeks after modeling. Additionally, the experimental group rats exhibited gradual deterioration of CAD features at different time points after surgery. c CADI changes in the control group. The CADI scores of the control group showed no significant differences over time (#P > 0.05). d CADI changes in the experimental group. The CADI score of the experimental group increased over time (**P<0.01)
Fig. 6Postoperative α-SMA and vimentin expression in the control group. a α-SMA and vimentin expression in the transplanted kidneys at different postoperative time points in the experimental group (400× magnification, scale bar: 50 μm). b α-SMA expression levels at different postoperative time points in the experimental group. c Vimentin expression levels at different postoperative time points in the experimental group. (**P<0.01)
Association of renal cortical MRI parameters with CADI and fibrosis markers
| ADC (10−3 mm2/s) | D* (10−3 mm2/s) | D (10− 3 mm2/s) | f (%) | |
|---|---|---|---|---|
| correlation coefficient with CADI | −0.849** | −0.339 | −0.665** | −0.941** |
| correlation coefficient with α-SMA | −0.874** | − 0.335 | − 0.702** | −0.905** |
| correlation coefficient with vimentin | −0.875** | −0.033 | − 0.764** | −0.853** |
**P < 0.01