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Diagnostic Performance of Automated MRI Volumetry by icobrain dm for Alzheimer’s Disease in a Clinical Setting: A REMEMBER Study
BACKGROUND: Magnetic resonance imaging (MRI) has become important in the diagnostic work-up of neurodegenerative diseases. icobrain dm, a CE-labeled and FDA-cleared automated brain volumetry software, has shown potential in differentiating cognitively healthy controls (HC) from Alzheimer’s disease (...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
IOS Press
2021
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8543261/ https://www.ncbi.nlm.nih.gov/pubmed/34334402 http://dx.doi.org/10.3233/JAD-210450 |
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author | Wittens, Mandy Melissa Jane Sima, Diana Maria Houbrechts, Ruben Ribbens, Annemie Niemantsverdriet, Ellis Fransen, Erik Bastin, Christine Benoit, Florence Bergmans, Bruno Bier, Jean-Christophe De Deyn, Peter Paul Deryck, Olivier Hanseeuw, Bernard Ivanoiu, Adrian Lemper, Jean-Claude Mormont, Eric Picard, Gaëtane de la Rosa, Ezequiel Salmon, Eric Segers, Kurt Sieben, Anne Smeets, Dirk Struyfs, Hanne Thiery, Evert Tournoy, Jos Triau, Eric Vanbinst, Anne-Marie Versijpt, Jan Bjerke, Maria Engelborghs, Sebastiaan |
author_facet | Wittens, Mandy Melissa Jane Sima, Diana Maria Houbrechts, Ruben Ribbens, Annemie Niemantsverdriet, Ellis Fransen, Erik Bastin, Christine Benoit, Florence Bergmans, Bruno Bier, Jean-Christophe De Deyn, Peter Paul Deryck, Olivier Hanseeuw, Bernard Ivanoiu, Adrian Lemper, Jean-Claude Mormont, Eric Picard, Gaëtane de la Rosa, Ezequiel Salmon, Eric Segers, Kurt Sieben, Anne Smeets, Dirk Struyfs, Hanne Thiery, Evert Tournoy, Jos Triau, Eric Vanbinst, Anne-Marie Versijpt, Jan Bjerke, Maria Engelborghs, Sebastiaan |
author_sort | Wittens, Mandy Melissa Jane |
collection | PubMed |
description | BACKGROUND: Magnetic resonance imaging (MRI) has become important in the diagnostic work-up of neurodegenerative diseases. icobrain dm, a CE-labeled and FDA-cleared automated brain volumetry software, has shown potential in differentiating cognitively healthy controls (HC) from Alzheimer’s disease (AD) dementia (ADD) patients in selected research cohorts. OBJECTIVE: This study examines the diagnostic value of icobrain dm for AD in routine clinical practice, including a comparison to the widely used FreeSurfer software, and investigates if combined brain volumes contribute to establish an AD diagnosis. METHODS: The study population included HC (n = 90), subjective cognitive decline (SCD, n = 93), mild cognitive impairment (MCI, n = 357), and ADD (n = 280) patients. Through automated volumetric analyses of global, cortical, and subcortical brain structures on clinical brain MRI T1w (n = 820) images from a retrospective, multi-center study (REMEMBER), icobrain dm’s (v.4.4.0) ability to differentiate disease stages via ROC analysis was compared to FreeSurfer (v.6.0). Stepwise backward regression models were constructed to investigate if combined brain volumes can differentiate between AD stages. RESULTS: icobrain dm outperformed FreeSurfer in processing time (15–30 min versus 9–32 h), robustness (0 versus 67 failures), and diagnostic performance for whole brain, hippocampal volumes, and lateral ventricles between HC and ADD patients. Stepwise backward regression showed improved diagnostic accuracy for pairwise group differentiations, with highest performance obtained for distinguishing HC from ADD (AUC = 0.914; Specificity 83.0%; Sensitivity 86.3%). CONCLUSION: Automated volumetry has a diagnostic value for ADD diagnosis in routine clinical practice. Our findings indicate that combined brain volumes improve diagnostic accuracy, using real-world imaging data from a clinical setting. |
format | Online Article Text |
id | pubmed-8543261 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2021 |
publisher | IOS Press |
record_format | MEDLINE/PubMed |
spelling | pubmed-85432612021-11-10 Diagnostic Performance of Automated MRI Volumetry by icobrain dm for Alzheimer’s Disease in a Clinical Setting: A REMEMBER Study Wittens, Mandy Melissa Jane Sima, Diana Maria Houbrechts, Ruben Ribbens, Annemie Niemantsverdriet, Ellis Fransen, Erik Bastin, Christine Benoit, Florence Bergmans, Bruno Bier, Jean-Christophe De Deyn, Peter Paul Deryck, Olivier Hanseeuw, Bernard Ivanoiu, Adrian Lemper, Jean-Claude Mormont, Eric Picard, Gaëtane de la Rosa, Ezequiel Salmon, Eric Segers, Kurt Sieben, Anne Smeets, Dirk Struyfs, Hanne Thiery, Evert Tournoy, Jos Triau, Eric Vanbinst, Anne-Marie Versijpt, Jan Bjerke, Maria Engelborghs, Sebastiaan J Alzheimers Dis Research Article BACKGROUND: Magnetic resonance imaging (MRI) has become important in the diagnostic work-up of neurodegenerative diseases. icobrain dm, a CE-labeled and FDA-cleared automated brain volumetry software, has shown potential in differentiating cognitively healthy controls (HC) from Alzheimer’s disease (AD) dementia (ADD) patients in selected research cohorts. OBJECTIVE: This study examines the diagnostic value of icobrain dm for AD in routine clinical practice, including a comparison to the widely used FreeSurfer software, and investigates if combined brain volumes contribute to establish an AD diagnosis. METHODS: The study population included HC (n = 90), subjective cognitive decline (SCD, n = 93), mild cognitive impairment (MCI, n = 357), and ADD (n = 280) patients. Through automated volumetric analyses of global, cortical, and subcortical brain structures on clinical brain MRI T1w (n = 820) images from a retrospective, multi-center study (REMEMBER), icobrain dm’s (v.4.4.0) ability to differentiate disease stages via ROC analysis was compared to FreeSurfer (v.6.0). Stepwise backward regression models were constructed to investigate if combined brain volumes can differentiate between AD stages. RESULTS: icobrain dm outperformed FreeSurfer in processing time (15–30 min versus 9–32 h), robustness (0 versus 67 failures), and diagnostic performance for whole brain, hippocampal volumes, and lateral ventricles between HC and ADD patients. Stepwise backward regression showed improved diagnostic accuracy for pairwise group differentiations, with highest performance obtained for distinguishing HC from ADD (AUC = 0.914; Specificity 83.0%; Sensitivity 86.3%). CONCLUSION: Automated volumetry has a diagnostic value for ADD diagnosis in routine clinical practice. Our findings indicate that combined brain volumes improve diagnostic accuracy, using real-world imaging data from a clinical setting. IOS Press 2021-09-14 /pmc/articles/PMC8543261/ /pubmed/34334402 http://dx.doi.org/10.3233/JAD-210450 Text en © 2021 – The authors. Published by IOS Press https://creativecommons.org/licenses/by-nc/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution Non-Commercial (CC BY-NC 4.0) License (https://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 | Research Article Wittens, Mandy Melissa Jane Sima, Diana Maria Houbrechts, Ruben Ribbens, Annemie Niemantsverdriet, Ellis Fransen, Erik Bastin, Christine Benoit, Florence Bergmans, Bruno Bier, Jean-Christophe De Deyn, Peter Paul Deryck, Olivier Hanseeuw, Bernard Ivanoiu, Adrian Lemper, Jean-Claude Mormont, Eric Picard, Gaëtane de la Rosa, Ezequiel Salmon, Eric Segers, Kurt Sieben, Anne Smeets, Dirk Struyfs, Hanne Thiery, Evert Tournoy, Jos Triau, Eric Vanbinst, Anne-Marie Versijpt, Jan Bjerke, Maria Engelborghs, Sebastiaan Diagnostic Performance of Automated MRI Volumetry by icobrain dm for Alzheimer’s Disease in a Clinical Setting: A REMEMBER Study |
title | Diagnostic Performance of Automated MRI Volumetry by icobrain dm for Alzheimer’s Disease in a Clinical Setting: A REMEMBER Study |
title_full | Diagnostic Performance of Automated MRI Volumetry by icobrain dm for Alzheimer’s Disease in a Clinical Setting: A REMEMBER Study |
title_fullStr | Diagnostic Performance of Automated MRI Volumetry by icobrain dm for Alzheimer’s Disease in a Clinical Setting: A REMEMBER Study |
title_full_unstemmed | Diagnostic Performance of Automated MRI Volumetry by icobrain dm for Alzheimer’s Disease in a Clinical Setting: A REMEMBER Study |
title_short | Diagnostic Performance of Automated MRI Volumetry by icobrain dm for Alzheimer’s Disease in a Clinical Setting: A REMEMBER Study |
title_sort | diagnostic performance of automated mri volumetry by icobrain dm for alzheimer’s disease in a clinical setting: a remember study |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8543261/ https://www.ncbi.nlm.nih.gov/pubmed/34334402 http://dx.doi.org/10.3233/JAD-210450 |
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