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PMID: 20347044 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Predicting clinical scores from magnetic resonance scans in Alzheimer's disease.

NeuroImage ·Vol. 51 ·No. 4 ·2010-07-15 ·Pages 1405-13

Stonnington CM, Chu C, Klöppel S, Jack CR, Ashburner J, Frackowiak RS, Alzheimer Disease Neuroimaging Initiative

Abstract

Machine learning and pattern recognition methods have been used to diagnose Alzheimer's disease (AD) and mild cognitive impairment (MCI) from individual MRI scans. Another application of such methods is to predict clinical scores from individual scans. Using relevance vector regression (RVR), we predicted individuals' performances on established tests from their MRI T1 weighted image in two independent data sets. From Mayo Clinic, 73 probable AD patients and 91 cognitively normal (CN) controls completed the Mini-Mental State Examination (MMSE), Dementia Rating Scale (DRS), and Auditory Verbal Learning Test (AVLT) within 3months of their scan. Baseline MRI's from the Alzheimer's disease Neuroimaging Initiative (ADNI) comprised the other data set; 113 AD, 351 MCI, and 122 CN subjects completed the MMSE and Alzheimer's Disease Assessment Scale-Cognitive subtest (ADAS-cog) and 39 AD, 92 MCI, and 32 CN ADNI subjects completed MMSE, ADAS-cog, and AVLT. Predicted and actual clinical scores were highly correlated for the MMSE, DRS, and ADAS-cog tests (P<0.0001). Training with one data set and testing with another demonstrated stability between data sets. DRS, MMSE, and ADAS-Cog correlated better than AVLT with whole brain grey matter changes associated with AD. This result underscores their utility for screening and tracking disease. RVR offers a novel way to measure interactions between structural changes and neuropsychological tests beyond that of univariate methods. In clinical practice, we envision using RVR to aid in diagnosis and predict clinical outcome.

MeSH Terms
Aged Alzheimer Disease/pathology,psychology Cognition/physiology Data Interpretation, Statistical Female Humans Image Processing, Computer-Assisted Likelihood Functions Magnetic Resonance Imaging Male Middle Aged Neuropsychological Tests Predictive Value of Tests Psychomotor Performance/physiology Regression Analysis Reproducibility of Results Verbal Learning/physiology
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Stonnington Cynthia M
Department of Psychiatry and Psychology, Mayo Clinic, Scottsdale, AZ , USA. [email protected]
Chu Carlton
Klöppel Stefan
Jack Clifford R
Ashburner John
Frackowiak Richard S J
Alzheimer Disease Neuroimaging Initiative
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Article Info
Journal
NeuroImage
Abbr.
Neuroimage
ISSN
1095-9572
Published
2010-07-15
Epub
2010-00-25
Pages
1405-13
Language
English
Region
United States
NLM ID
9215515
PMCID
PMC2871976
Subset
IM
Grants
NIA NIH HHS · P50 AG16574 · United States
NIA NIH HHS · U01 AG024904-01 · United States
NIA NIH HHS · P50 AG016574 · United States
NIA NIH HHS · R01 AG011378 · United States
NIA NIH HHS · U01 AG06786 · United States
NIA NIH HHS · AG11378 · United States
NIA NIH HHS · R01 AG011378-07 · United States
NIA NIH HHS · P50 AG016574-01 · United States
NIA NIH HHS · U01 AG006786 · United States
NIA NIH HHS · U01 AG024904 · United States
NIA NIH HHS · U19 AG010483 · United States
Wellcome Trust · 075696 2/04/2 · United Kingdom
NIA NIH HHS · U01 AG006786-14 · United States
NIA NIH HHS · R37 AG011378 · United States
Wellcome Trust · United Kingdom
Wellcome Trust · 075696 · United Kingdom
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