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A Spotlight on the Role of Radiomics and Machine-Learning Applications in the Management of Intracranial Meningiomas: A New Perspective in Neuro-Oncology: A Review

Background: In recent decades, the application of machine learning technologies to medical imaging has opened up new perspectives in neuro-oncology, in the so-called radiomics field. Radiomics offer new insight into glioma, aiding in clinical decision-making and patients’ prognosis evaluation. Altho...

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Autores principales: Brunasso, Lara, Ferini, Gianluca, Bonosi, Lapo, Costanzo, Roberta, Musso, Sofia, Benigno, Umberto E., Gerardi, Rosa M., Giammalva, Giuseppe R., Paolini, Federica, Umana, Giuseppe E., Graziano, Francesca, Scalia, Gianluca, Sturiale, Carmelo L., Di Bonaventura, Rina, Iacopino, Domenico G., Maugeri, Rosario
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9026541/
https://www.ncbi.nlm.nih.gov/pubmed/35455077
http://dx.doi.org/10.3390/life12040586
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author Brunasso, Lara
Ferini, Gianluca
Bonosi, Lapo
Costanzo, Roberta
Musso, Sofia
Benigno, Umberto E.
Gerardi, Rosa M.
Giammalva, Giuseppe R.
Paolini, Federica
Umana, Giuseppe E.
Graziano, Francesca
Scalia, Gianluca
Sturiale, Carmelo L.
Di Bonaventura, Rina
Iacopino, Domenico G.
Maugeri, Rosario
author_facet Brunasso, Lara
Ferini, Gianluca
Bonosi, Lapo
Costanzo, Roberta
Musso, Sofia
Benigno, Umberto E.
Gerardi, Rosa M.
Giammalva, Giuseppe R.
Paolini, Federica
Umana, Giuseppe E.
Graziano, Francesca
Scalia, Gianluca
Sturiale, Carmelo L.
Di Bonaventura, Rina
Iacopino, Domenico G.
Maugeri, Rosario
author_sort Brunasso, Lara
collection PubMed
description Background: In recent decades, the application of machine learning technologies to medical imaging has opened up new perspectives in neuro-oncology, in the so-called radiomics field. Radiomics offer new insight into glioma, aiding in clinical decision-making and patients’ prognosis evaluation. Although meningiomas represent the most common primary CNS tumor and the majority of them are benign and slow-growing tumors, a minor part of them show a more aggressive behavior with an increased proliferation rate and a tendency to recur. Therefore, their treatment may represent a challenge. Methods: According to PRISMA guidelines, a systematic literature review was performed. We included selected articles (meta-analysis, review, retrospective study, and case–control study) concerning the application of radiomics method in the preoperative diagnostic and prognostic algorithm, and planning for intracranial meningiomas. We also analyzed the contribution of radiomics in differentiating meningiomas from other CNS tumors with similar radiological features. Results: In the first research stage, 273 papers were identified. After a careful screening according to inclusion/exclusion criteria, 39 articles were included in this systematic review. Conclusions: Several preoperative features have been identified to increase preoperative intracranial meningioma assessment for guiding decision-making processes. The development of valid and reliable non-invasive diagnostic and prognostic modalities could have a significant clinical impact on meningioma treatment.
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spelling pubmed-90265412022-04-23 A Spotlight on the Role of Radiomics and Machine-Learning Applications in the Management of Intracranial Meningiomas: A New Perspective in Neuro-Oncology: A Review Brunasso, Lara Ferini, Gianluca Bonosi, Lapo Costanzo, Roberta Musso, Sofia Benigno, Umberto E. Gerardi, Rosa M. Giammalva, Giuseppe R. Paolini, Federica Umana, Giuseppe E. Graziano, Francesca Scalia, Gianluca Sturiale, Carmelo L. Di Bonaventura, Rina Iacopino, Domenico G. Maugeri, Rosario Life (Basel) Systematic Review Background: In recent decades, the application of machine learning technologies to medical imaging has opened up new perspectives in neuro-oncology, in the so-called radiomics field. Radiomics offer new insight into glioma, aiding in clinical decision-making and patients’ prognosis evaluation. Although meningiomas represent the most common primary CNS tumor and the majority of them are benign and slow-growing tumors, a minor part of them show a more aggressive behavior with an increased proliferation rate and a tendency to recur. Therefore, their treatment may represent a challenge. Methods: According to PRISMA guidelines, a systematic literature review was performed. We included selected articles (meta-analysis, review, retrospective study, and case–control study) concerning the application of radiomics method in the preoperative diagnostic and prognostic algorithm, and planning for intracranial meningiomas. We also analyzed the contribution of radiomics in differentiating meningiomas from other CNS tumors with similar radiological features. Results: In the first research stage, 273 papers were identified. After a careful screening according to inclusion/exclusion criteria, 39 articles were included in this systematic review. Conclusions: Several preoperative features have been identified to increase preoperative intracranial meningioma assessment for guiding decision-making processes. The development of valid and reliable non-invasive diagnostic and prognostic modalities could have a significant clinical impact on meningioma treatment. MDPI 2022-04-14 /pmc/articles/PMC9026541/ /pubmed/35455077 http://dx.doi.org/10.3390/life12040586 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Systematic Review
Brunasso, Lara
Ferini, Gianluca
Bonosi, Lapo
Costanzo, Roberta
Musso, Sofia
Benigno, Umberto E.
Gerardi, Rosa M.
Giammalva, Giuseppe R.
Paolini, Federica
Umana, Giuseppe E.
Graziano, Francesca
Scalia, Gianluca
Sturiale, Carmelo L.
Di Bonaventura, Rina
Iacopino, Domenico G.
Maugeri, Rosario
A Spotlight on the Role of Radiomics and Machine-Learning Applications in the Management of Intracranial Meningiomas: A New Perspective in Neuro-Oncology: A Review
title A Spotlight on the Role of Radiomics and Machine-Learning Applications in the Management of Intracranial Meningiomas: A New Perspective in Neuro-Oncology: A Review
title_full A Spotlight on the Role of Radiomics and Machine-Learning Applications in the Management of Intracranial Meningiomas: A New Perspective in Neuro-Oncology: A Review
title_fullStr A Spotlight on the Role of Radiomics and Machine-Learning Applications in the Management of Intracranial Meningiomas: A New Perspective in Neuro-Oncology: A Review
title_full_unstemmed A Spotlight on the Role of Radiomics and Machine-Learning Applications in the Management of Intracranial Meningiomas: A New Perspective in Neuro-Oncology: A Review
title_short A Spotlight on the Role of Radiomics and Machine-Learning Applications in the Management of Intracranial Meningiomas: A New Perspective in Neuro-Oncology: A Review
title_sort spotlight on the role of radiomics and machine-learning applications in the management of intracranial meningiomas: a new perspective in neuro-oncology: a review
topic Systematic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9026541/
https://www.ncbi.nlm.nih.gov/pubmed/35455077
http://dx.doi.org/10.3390/life12040586
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