Cargando…

Comparison of Monoexponential, Biexponential, Stretched-Exponential, and Kurtosis Models of Diffusion-Weighted Imaging in Differentiation of Renal Solid Masses

OBJECTIVE: To compare various models of diffusion-weighted imaging including monoexponential apparent diffusion coefficient (ADC), biexponential (fast diffusion coefficient [D(f)], slow diffusion coefficient [D(s)], and fraction of fast diffusion), stretched-exponential (distributed diffusion coeffi...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Jianjian, Suo, Shiteng, Liu, Guiqin, Zhang, Shan, Zhao, Zizhou, Xu, Jianrong, Wu, Guangyu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Korean Society of Radiology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6470087/
https://www.ncbi.nlm.nih.gov/pubmed/30993930
http://dx.doi.org/10.3348/kjr.2018.0474
_version_ 1783411722110894080
author Zhang, Jianjian
Suo, Shiteng
Liu, Guiqin
Zhang, Shan
Zhao, Zizhou
Xu, Jianrong
Wu, Guangyu
author_facet Zhang, Jianjian
Suo, Shiteng
Liu, Guiqin
Zhang, Shan
Zhao, Zizhou
Xu, Jianrong
Wu, Guangyu
author_sort Zhang, Jianjian
collection PubMed
description OBJECTIVE: To compare various models of diffusion-weighted imaging including monoexponential apparent diffusion coefficient (ADC), biexponential (fast diffusion coefficient [D(f)], slow diffusion coefficient [D(s)], and fraction of fast diffusion), stretched-exponential (distributed diffusion coefficient and anomalous exponent term [α]), and kurtosis (mean diffusivity and mean kurtosis [MK]) models in the differentiation of renal solid masses. MATERIALS AND METHODS: A total of 81 patients (56 men and 25 women; mean age, 57 years; age range, 30–69 years) with 18 benign and 63 malignant lesions were imaged using 3T diffusion-weighted MRI. Diffusion model selection was investigated in each lesion using the Akaike information criteria. Mann-Whitney U test and receiver operating characteristic (ROC) analysis were used for statistical evaluations. RESULTS: Goodness-of-fit analysis showed that the stretched-exponential model had the highest voxel percentages in benign and malignant lesions (90.7% and 51.4%, respectively). ADC, D(s), and MK showed significant differences between benign and malignant lesions (p < 0.05) and between low- and high-grade clear cell renal cell carcinoma (ccRCC) (p < 0.05). α was significantly lower in the benign group than in the malignant group (p < 0.05). All diffusion measures showed significant differences between ccRCC and non-ccRCC (p < 0.05) except D(f) and α (p = 0.143 and 0.112, respectively). α showed the highest diagnostic accuracy in differentiating benign and malignant lesions with an area under the ROC curve of 0.923, but none of the parameters from these advanced models revealed significantly better performance over ADC in discriminating subtypes or grades of renal cell carcinoma (RCC) (p > 0.05). CONCLUSION: Compared with conventional diffusion parameters, α may provide additional information for differentiating benign and malignant renal masses, while ADC remains the most valuable parameter for differentiation of RCC subtypes and for ccRCC grading.
format Online
Article
Text
id pubmed-6470087
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher The Korean Society of Radiology
record_format MEDLINE/PubMed
spelling pubmed-64700872019-05-01 Comparison of Monoexponential, Biexponential, Stretched-Exponential, and Kurtosis Models of Diffusion-Weighted Imaging in Differentiation of Renal Solid Masses Zhang, Jianjian Suo, Shiteng Liu, Guiqin Zhang, Shan Zhao, Zizhou Xu, Jianrong Wu, Guangyu Korean J Radiol Genitourinary Imaging OBJECTIVE: To compare various models of diffusion-weighted imaging including monoexponential apparent diffusion coefficient (ADC), biexponential (fast diffusion coefficient [D(f)], slow diffusion coefficient [D(s)], and fraction of fast diffusion), stretched-exponential (distributed diffusion coefficient and anomalous exponent term [α]), and kurtosis (mean diffusivity and mean kurtosis [MK]) models in the differentiation of renal solid masses. MATERIALS AND METHODS: A total of 81 patients (56 men and 25 women; mean age, 57 years; age range, 30–69 years) with 18 benign and 63 malignant lesions were imaged using 3T diffusion-weighted MRI. Diffusion model selection was investigated in each lesion using the Akaike information criteria. Mann-Whitney U test and receiver operating characteristic (ROC) analysis were used for statistical evaluations. RESULTS: Goodness-of-fit analysis showed that the stretched-exponential model had the highest voxel percentages in benign and malignant lesions (90.7% and 51.4%, respectively). ADC, D(s), and MK showed significant differences between benign and malignant lesions (p < 0.05) and between low- and high-grade clear cell renal cell carcinoma (ccRCC) (p < 0.05). α was significantly lower in the benign group than in the malignant group (p < 0.05). All diffusion measures showed significant differences between ccRCC and non-ccRCC (p < 0.05) except D(f) and α (p = 0.143 and 0.112, respectively). α showed the highest diagnostic accuracy in differentiating benign and malignant lesions with an area under the ROC curve of 0.923, but none of the parameters from these advanced models revealed significantly better performance over ADC in discriminating subtypes or grades of renal cell carcinoma (RCC) (p > 0.05). CONCLUSION: Compared with conventional diffusion parameters, α may provide additional information for differentiating benign and malignant renal masses, while ADC remains the most valuable parameter for differentiation of RCC subtypes and for ccRCC grading. The Korean Society of Radiology 2019-05 2019-04-11 /pmc/articles/PMC6470087/ /pubmed/30993930 http://dx.doi.org/10.3348/kjr.2018.0474 Text en Copyright © 2019 The Korean Society of Radiology http://creativecommons.org/licenses/by-nc/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Genitourinary Imaging
Zhang, Jianjian
Suo, Shiteng
Liu, Guiqin
Zhang, Shan
Zhao, Zizhou
Xu, Jianrong
Wu, Guangyu
Comparison of Monoexponential, Biexponential, Stretched-Exponential, and Kurtosis Models of Diffusion-Weighted Imaging in Differentiation of Renal Solid Masses
title Comparison of Monoexponential, Biexponential, Stretched-Exponential, and Kurtosis Models of Diffusion-Weighted Imaging in Differentiation of Renal Solid Masses
title_full Comparison of Monoexponential, Biexponential, Stretched-Exponential, and Kurtosis Models of Diffusion-Weighted Imaging in Differentiation of Renal Solid Masses
title_fullStr Comparison of Monoexponential, Biexponential, Stretched-Exponential, and Kurtosis Models of Diffusion-Weighted Imaging in Differentiation of Renal Solid Masses
title_full_unstemmed Comparison of Monoexponential, Biexponential, Stretched-Exponential, and Kurtosis Models of Diffusion-Weighted Imaging in Differentiation of Renal Solid Masses
title_short Comparison of Monoexponential, Biexponential, Stretched-Exponential, and Kurtosis Models of Diffusion-Weighted Imaging in Differentiation of Renal Solid Masses
title_sort comparison of monoexponential, biexponential, stretched-exponential, and kurtosis models of diffusion-weighted imaging in differentiation of renal solid masses
topic Genitourinary Imaging
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6470087/
https://www.ncbi.nlm.nih.gov/pubmed/30993930
http://dx.doi.org/10.3348/kjr.2018.0474
work_keys_str_mv AT zhangjianjian comparisonofmonoexponentialbiexponentialstretchedexponentialandkurtosismodelsofdiffusionweightedimagingindifferentiationofrenalsolidmasses
AT suoshiteng comparisonofmonoexponentialbiexponentialstretchedexponentialandkurtosismodelsofdiffusionweightedimagingindifferentiationofrenalsolidmasses
AT liuguiqin comparisonofmonoexponentialbiexponentialstretchedexponentialandkurtosismodelsofdiffusionweightedimagingindifferentiationofrenalsolidmasses
AT zhangshan comparisonofmonoexponentialbiexponentialstretchedexponentialandkurtosismodelsofdiffusionweightedimagingindifferentiationofrenalsolidmasses
AT zhaozizhou comparisonofmonoexponentialbiexponentialstretchedexponentialandkurtosismodelsofdiffusionweightedimagingindifferentiationofrenalsolidmasses
AT xujianrong comparisonofmonoexponentialbiexponentialstretchedexponentialandkurtosismodelsofdiffusionweightedimagingindifferentiationofrenalsolidmasses
AT wuguangyu comparisonofmonoexponentialbiexponentialstretchedexponentialandkurtosismodelsofdiffusionweightedimagingindifferentiationofrenalsolidmasses