Radiomics in Cross-Sectional Adrenal Imaging: A Systematic Review and Quality Assessment Study.

adrenal imaging evidence-based medicine methodological quality radiomics

Journal

Diagnostics (Basel, Switzerland)
ISSN: 2075-4418
Titre abrégé: Diagnostics (Basel)
Pays: Switzerland
ID NLM: 101658402

Informations de publication

Date de publication:
24 Feb 2022
Historique:
received: 03 02 2022
revised: 19 02 2022
accepted: 21 02 2022
entrez: 25 3 2022
pubmed: 26 3 2022
medline: 26 3 2022
Statut: epublish

Résumé

In this study, we aimed to systematically review the current literature on radiomics applied to cross-sectional adrenal imaging and assess its methodological quality. Scopus, PubMed and Web of Science were searched to identify original research articles investigating radiomics applications on cross-sectional adrenal imaging (search end date February 2021). For qualitative synthesis, details regarding study design, aim, sample size and imaging modality were recorded as well as those regarding the radiomics pipeline (e.g., segmentation and feature extraction strategy). The methodological quality of each study was evaluated using the radiomics quality score (RQS). After duplicate removal and selection criteria application, 25 full-text articles were included and evaluated. All were retrospective studies, mostly based on CT images (17/25, 68%), with manual (19/25, 76%) and two-dimensional segmentation (13/25, 52%) being preferred. Machine learning was paired to radiomics in about half of the studies (12/25, 48%). The median total and percentage RQS scores were 2 (interquartile range, IQR = -5-8) and 6% (IQR = 0-22%), respectively. The highest and lowest scores registered were 12/36 (33%) and -5/36 (0%). The most critical issues were the absence of proper feature selection, the lack of appropriate model validation and poor data openness. The methodological quality of radiomics studies on adrenal cross-sectional imaging is heterogeneous and lower than desirable. Efforts toward building higher quality evidence are essential to facilitate the future translation into clinical practice.

Identifiants

pubmed: 35328133
pii: diagnostics12030578
doi: 10.3390/diagnostics12030578
pmc: PMC8947112
pii:
doi:

Types de publication

Journal Article Review

Langues

eng

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Auteurs

Arnaldo Stanzione (A)

Department of Advanced Biomedical Sciences, University of Naples "Federico II", 80131 Naples, Italy.

Roberta Galatola (R)

Department of Advanced Biomedical Sciences, University of Naples "Federico II", 80131 Naples, Italy.

Renato Cuocolo (R)

Department of Clinical Medicine and Surgery, University of Naples "Federico II", 80131 Naples, Italy.
Interdepartmental Research Center on Management and Innovation in Healthcare-CIRMIS, University of Naples "Federico II", 80100 Naples, Italy.
Laboratory of Augmented Reality for Health Monitoring (ARHeMLab), Department of Electrical Engineering and Information Technology, University of Naples "Federico II", 80100 Naples, Italy.

Valeria Romeo (V)

Department of Advanced Biomedical Sciences, University of Naples "Federico II", 80131 Naples, Italy.

Francesco Verde (F)

Department of Advanced Biomedical Sciences, University of Naples "Federico II", 80131 Naples, Italy.

Pier Paolo Mainenti (PP)

Institute of Biostructures and Bioimaging of the National Research Council, 80131 Naples, Italy.

Arturo Brunetti (A)

Department of Advanced Biomedical Sciences, University of Naples "Federico II", 80131 Naples, Italy.

Simone Maurea (S)

Department of Advanced Biomedical Sciences, University of Naples "Federico II", 80131 Naples, Italy.

Classifications MeSH