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Differentiation of Endometriomas from Ovarian Hemorrhagic Cysts at Magnetic Resonance: The Role of Texture Analysis.
Lupean, Roxana-Adelina; Ștefan, Paul-Andrei; Csutak, Csaba; Lebovici, Andrei; Maluțan, Andrei Mihai; Buiga, Rares; Melincovici, Carmen Stanca; Mihu, Carmen Mihaela.
Affiliation
  • Lupean RA; Histology, Morphological Sciences Department, "Iuliu Hațieganu" University of Medicine and Pharmacy, Louis Pasteur Street, Number 4, Cluj-Napoca, 400349 Cluj, Romania.
  • Ștefan PA; Obstetrics and Gynecology Clinic "Dominic Stanca", County Emergency Hospital, 21 Decembrie 1989 Boulevard, Number 55, Cluj-Napoca, 400094 Cluj, Romania.
  • Csutak C; Anatomy and Embryology, Morphological Sciences Department, "Iuliu Hatieganu" University of Medicine and Pharmacy, Victor Babeș Street, Number 8, Cluj-Napoca, 400012 Cluj, Romania.
  • Lebovici A; Radiology and Imaging Department, County Emergency Hospital, Cluj-Napoca, Clinicilor Street, Number 5, Cluj-Napoca, 400006 Cluj, Romania.
  • Maluțan AM; Radiology and Imaging Department, County Emergency Hospital, Cluj-Napoca, Clinicilor Street, Number 5, Cluj-Napoca, 400006 Cluj, Romania.
  • Buiga R; Radiology, Surgical Specialties Department, "Iuliu Hatieganu" University of Medicine and Pharmacy, Clinicilor Street, Number 3-5, Cluj-Napoca, 400006 Cluj, Romania.
  • Melincovici CS; Radiology and Imaging Department, County Emergency Hospital, Cluj-Napoca, Clinicilor Street, Number 5, Cluj-Napoca, 400006 Cluj, Romania.
  • Mihu CM; Radiology, Surgical Specialties Department, "Iuliu Hatieganu" University of Medicine and Pharmacy, Clinicilor Street, Number 3-5, Cluj-Napoca, 400006 Cluj, Romania.
Medicina (Kaunas) ; 56(10)2020 Sep 23.
Article in En | MEDLINE | ID: mdl-32977428
ABSTRACT
Background and

Objectives:

To assess ovarian cysts with texture analysis (TA) in magnetic resonance (MRI) images for establishing a differentiation criterion for endometriomas and functional hemorrhagic cysts (HCs) that could potentially outperform their classic MRI diagnostic features. Materials and

Methods:

Forty-three patients with known ovarian cysts who underwent MRI were retrospectively included (endometriomas, n = 29; HCs, n = 14). TA was performed using dedicated software based on T2-weighted images, by incorporating the whole lesions in a three-dimensional region of interest. The most discriminative texture features were highlighted by three selection methods (Fisher, probability of classification error and average correlation coefficients, and mutual information). The absolute values of these parameters were compared through univariate, multivariate, and receiver operating characteristic analyses. The ability of the two classic diagnostic signs ("T2 shading" and "T2 dark spots") to diagnose endometriomas was assessed by quantifying their sensitivity (Se) and specificity (Sp), following their conventional assessment on T1-and T2-weighted images by two radiologists.

Results:

The diagnostic power of the one texture parameter that was an independent predictor of endometriomas (entropy, 75% Se and 100% Sp) and of the predictive model composed of all parameters that showed statistically significant results at the univariate analysis (100% Se, 100% Sp) outperformed the ones shown by the classic MRI endometrioma features ("T2 shading", 75.86% Se and 35.71% Sp; "T2 dark spots", 55.17% Se and 64.29% Sp).

Conclusion:

Whole-lesion MRI TA has the potential to offer a superior discrimination criterion between endometriomas and HCs compared to the classic evaluation of the two lesions' MRI signal behaviors.
Subject(s)
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Ovarian Cysts / Cysts / Endometriosis Type of study: Observational_studies / Prognostic_studies / Risk_factors_studies Limits: Female / Humans Language: En Journal: Medicina (Kaunas) Journal subject: MEDICINA Year: 2020 Document type: Article Affiliation country: Romania

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Ovarian Cysts / Cysts / Endometriosis Type of study: Observational_studies / Prognostic_studies / Risk_factors_studies Limits: Female / Humans Language: En Journal: Medicina (Kaunas) Journal subject: MEDICINA Year: 2020 Document type: Article Affiliation country: Romania