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PMID: 19437497 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Fully automatic hippocampus segmentation and classification in Alzheimer's disease and mild cognitive impairment applied on data from ADNI.

Hippocampus ·Vol. 19 ·No. 6 ·2009-06-00 ·Pages 579-87

Chupin M, Gérardin E, Cuingnet R, Boutet C, Lemieux L, Lehéricy S, Benali H, Garnero L, Colliot O, Alzheimer's Disease Neuroimaging Initiative

Abstract

The hippocampus is among the first structures affected in Alzheimer's disease (AD). Hippocampal magnetic resonance imaging volumetry is a potential biomarker for AD but is hindered by the limitations of manual segmentation. We proposed a fully automatic method using probabilistic and anatomical priors for hippocampus segmentation. Probabilistic information is derived from 16 young controls and anatomical knowledge is modeled with automatically detected landmarks. The results were previously evaluated by comparison with manual segmentation on data from the 16 young healthy controls, with a leave-one-out strategy, and eight patients with AD. High accuracy was found for both groups (volume error 6 and 7%, overlap 87 and 86%, respectively). In this article, the method was used to segment 145 patients with AD, 294 patients with mild cognitive impairment (MCI), and 166 elderly normal subjects from the Alzheimer's Disease Neuroimaging Initiative database. On the basis of a qualitative rating protocol, the segmentation proved acceptable in 94% of the cases. We used the obtained hippocampal volumes to automatically discriminate between AD patients, MCI patients, and elderly controls. The classification proved accurate: 76% of the patients with AD and 71% of the MCI converting to AD before 18 months were correctly classified with respect to the elderly controls, using only hippocampal volume.

MeSH Terms
Age Factors Aged Algorithms Alzheimer Disease/diagnosis,pathology Automation Cognition Disorders/diagnosis,pathology Databases, Factual Hippocampus/pathology Humans Imaging, Three-Dimensional Magnetic Resonance Imaging Models, Anatomic Organ Size Probability
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Chupin Marie
Université Pierre et Marie Curie-Paris6, CNRS, UMR-S7225, Paris, France. [email protected]
Gérardin Emilie
Cuingnet Rémi
Boutet Claire
Lemieux Louis
Lehéricy Stéphane
Benali Habib
Garnero Line
Colliot Olivier
Alzheimer's Disease Neuroimaging Initiative
Investigators
35 investigators, click to expand
Weiner Michael
Aisen Paul
Alexander Gene
Bandy Daniel
Beckett Laural
Bernstein Matthew
Cardenas-Nicolson Valerie
Chen Kewei
Dale Anders
DeCarli Charles
Dinov Ivo
Felmlee Joel
Foster Norman
Fox Nicholas
Gustavson Andrew
Harvey Danielle
Jack Clifford
Jagust William
Koeppe Robert
Kornak John
Liao Alexia
Nanji Amin
Nichols Thomas
Petersen Ronald
Reiman Eric
Schuff Norbert
Shattuck David
Shaw Leslie
Studholme Colin
Thompson Paul
Toga Arthur
Trojanowski John
Valentino Daniel
Van der Kouwe Andre
Xu Meihe
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Article Info
Journal
Hippocampus
Abbr.
Hippocampus
ISSN
1098-1063
Published
2009-06-00
Pages
579-87
Language
English
Region
United States
NLM ID
9108167
PMCID
PMC2837195
Subset
IM
Grants
Medical Research Council · G0601846 · United Kingdom
NIA NIH HHS · U01 AG024904 · United States
NIA NIH HHS · U01 AG024904-01 · United States
NIA NIH HHS · U19 AG010483 · United States
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