| Literature DB >> 32719802 |
Jiali Li1, Yang Xun2, Cong Li2, Yunfeng Han3, Yaqi Shen1, Xuemei Hu1, Daoyu Hu1, Zheng Liu2, Shaogang Wang2, Zhen Li1.
Abstract
Objectives: The aim of this study was to determine whether unenhanced computed tomography (CT) imaging can estimate differential renal function (DRF) in patients with chronic unilateral obstructive upper urinary tract stones. Materials andEntities:
Keywords: CT texture analysis; differential renal function; residual parenchymal volume; unenhanced CT; upper urinary tract stones
Year: 2020 PMID: 32719802 PMCID: PMC7347744 DOI: 10.3389/fmed.2020.00309
Source DB: PubMed Journal: Front Med (Lausanne) ISSN: 2296-858X
Figure 1(A) Axial non-enhanced CT image. (B) The percentage of CT renal volume for right and left kidney were 77.62 and 22.38%, respectively. (C) The differential renal function from RG of right and left kidney were 74.04 and 25.96%, respectively.
Baseline cohort characteristics, n = 76.
| Age in years–mean ± SD | 51.14 ± 10.61 |
| Serum creatinine–mean ± SD | 76.05 ± 15.4 |
| Gender–no. (%) | |
| Male | 31 (40.8%) |
| Female | 45 (59.2%) |
| Preoperative drainage–no. (%) | |
| Yes | 13 (17.1%) |
| No | 63 (82.9%) |
| Drainage type–no. (%) | |
| Drainage type | 6 (46.2%) |
| Double J ureteral stents | 4 (30.8%) |
| Drainage type + double J ureteral stents | 3 (23.0%) |
| Stone side–no. (%) | |
| Right | 45 (59.2%) |
| Left | 31 (40.8%) |
| Hypertension–no. (%) | |
| Yes | 8 (10.5%) |
| No | 68 (80.5%) |
| Diabetes–no. (%) | |
| Yes | 5 (6.6%) |
| No | 71 (93.4%) |
| Operation for stone–no. (%) | |
| Ureteroscopic lithotripsy | 16 (21.1%) |
| Percutaneous nephrolithotomy | 33 (43.4%) |
| Laparoscopic nephrectomy | 27 (35.5%) |
SD, standard deviation.
Evaluating differential CT measurements and their correlation to DRF on RG.
| CT Texture: | ||
| Skewness | 0.282 | 0.013 |
| Kurtosis | 0.297 | 0.009 |
| Entrophy | −0.22 | 0.849 |
| HU | 0.198 | 0.086 |
| Parenchymal Voxel | 0.956 | <0.001 |
| Volume | ||
| Parenchymal Volume | 0.957 | <0.001 |
| Combinations | ||
| Parenchymal Volume × HU | 0.957 | <0.001 |
| Parenchymal Volume × skewness | 0.887 | <0.001 |
| Parenchymal Volume × Kurtosis | 0.815 | <0.001 |
| Parenchymal Volume × Entropy | 0.956 | <0.001 |
| Parenchymal Voxel x HU | 0.957 | <0.001 |
| Parenchymal Volume × Parenchymal Voxel x HU | 0.951 | <0.001 |
Parenchyma defined as both renal cortex and medulla. HU, Hounsfield Units.
P < 0.05,
P < 0.01,
P < 0.001.
Gender subgroup analysis of the correlation between differential CT measurements and DRF on RG.
| HU | 0.673 | <0.001 | 0.249 | 0.099 |
| Parenchymal Voxel | 0.948 | <0.001 | 0.962 | <0.001 |
| Parenchymal Volume | 0.950 | <0.001 | 0.962 | <0.001 |
| Parenchymal Volume × HU | 0.950 | <0.001 | 0.962 | <0.001 |
| Parenchymal Voxel × HU | 0.949 | <0.001 | 0.962 | <0.001 |
| Parenchymal Volume × Parenchymal Voxel × HU | 0.941 | <0.001 | 0.958 | <0.001 |
Parenchyma defined as both renal cortex and medulla. HU, Hounsfield Units.
Figure 2Linear regression of unenhanced computerized tomography (CT) percent left residual parenchymal volume (RPV) estimating left differential renal function (DRF) on nuclear renography (RG).