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PMID: 19251758 Published · ppublish English Journal Article Multicenter Study Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

MRI of hippocampal volume loss in early Alzheimer's disease in relation to ApoE genotype and biomarkers.

Brain : a journal of neurology ·Vol. 132 ·No. Pt 4 ·2009-04-00 ·Pages 1067-77

Schuff N, Woerner N, Boreta L, Kornfield T, Shaw LM, Trojanowski JQ, Thompson PM, Jack CR, Weiner MW, Alzheimer's Disease Neuroimaging Initiative

Abstract

Hippocampal volume change over time, measured with MRI, has huge potential as a marker for Alzheimer's disease. The objectives of this study were: (i) to test if constant and accelerated hippocampal loss can be detected in Alzheimer's disease, mild cognitive impairment and normal ageing over short periods, e.g. 6-12 months, with MRI in the large multicentre setting of the Alzheimer's Disease Neuroimaging Initiative (ADNI); (ii) to determine the extent to which the polymorphism of the apolipoprotein E (ApoE) gene modulates hippocampal change; and (iii) to determine if rates of hippocampal loss correlate with cerebrospinal fluid (CSF) biomarkers of Alzheimer's disease, such as the beta-amyloid (Abeta(1-42)) and tau proteins (tau). The MRI multicentre study included 112 cognitive normal elderly individuals, 226 mild cognitive impairment and 96 Alzheimer's disease patients who all had at least three successive MRI scans, involving 47 different imaging centres. The mild cognitive impairment and Alzheimer's disease groups showed hippocampal volume loss over 6 months and accelerated loss over 1 year. Moreover, increased rates of hippocampal loss were associated with presence of the ApoE allele epsilon4 gene in Alzheimer's disease and lower CSF Abeta(1-42) in mild cognitive impairment, irrespective of ApoE genotype, whereas relations with tau were only trends. The power to measure hippocampal change was improved by exploiting correlations statistically between successive MRI observations. The demonstration of considerable hippocampal loss in mild cognitive impairment and Alzheimer's disease patients over only 6 months and accelerated loss over 12 months illustrates the power of MRI to track morphological brain changes over time in a large multisite setting. Furthermore, the relations between faster hippocampal loss in the presence of ApoE allele epsilon4 and decreased CSF Abeta(1-42) supports the concept that increased hippocampal loss is an indicator of Alzheimer's disease pathology and a potential marker for the efficacy of therapeutic interventions in Alzheimer's disease.

MeSH Terms
Aged Aged, 80 and over Alzheimer Disease/genetics,pathology,psychology Amyloid beta-Peptides/cerebrospinal fluid Apolipoproteins E/genetics Biomarkers/cerebrospinal fluid Cognition Disorders/etiology Disease Progression Female Genetic Predisposition to Disease Genotype Hippocampus/pathology Humans Magnetic Resonance Imaging/methods Male Peptide Fragments/cerebrospinal fluid Polymorphism, Genetic/genetics Psychiatric Status Rating Scales Sample Size
Chemicals
Amyloid beta-Peptides Apolipoproteins E Biomarkers Peptide Fragments amyloid beta-protein (1-42)
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Schuff N
Department of Veterans Affairs Medical Center, San Francisco, CA, USA. [email protected]
Woerner N
Boreta L
Kornfield T
Shaw L M
Trojanowski J Q
Thompson P M
Jack C R
Weiner M W
Alzheimer's Disease Neuroimaging Initiative
References (51)
51 references, click to expand
  1. Cerebrospinal fluid tau and beta-amyloid: how well do these biomarkers reflect autopsy-confirmed dementia diagnoses?
    Arch Neurol. 2003 Dec;60(12):1696-702 PMID: 14676043
  2. Trajectories of brain loss in aging and the development of cognitive impairment.
    Neurology. 2008 Mar 11;70(11):828-33 PMID: 18046010
  3. Tracking atrophy progression in familial Alzheimer's disease: a serial MRI study.
    Lancet Neurol. 2006 Oct;5(10):828-34 PMID: 16987729
  4. MRI as a biomarker of disease progression in a therapeutic trial of milameline for AD.
    Neurology. 2003 Jan 28;60(2):253-60 PMID: 12552040
  5. Volumetric transformation of brain anatomy.
    IEEE Trans Med Imaging. 1997 Dec;16(6):864-77 PMID: 9533586
  6. Hippocampal volume change in depression: late- and early-onset illness compared.
    Br J Psychiatry. 2004 Jun;184:488-95 PMID: 15172942
  7. Atrophy rates accelerate in amnestic mild cognitive impairment.
    Neurology. 2008 May 6;70(19 Pt 2):1740-52 PMID: 18032747
  8. Tracking Alzheimer's disease.
    Ann N Y Acad Sci. 2007 Feb;1097:183-214 PMID: 17413023
  9. White matter lesions are associated with cortical atrophy more than entorhinal and hippocampal atrophy.
    Neurobiol Aging. 2005 Apr;26(4):553-9 PMID: 15653183
  10. Longitudinal MRI findings from the vitamin E and donepezil treatment study for MCI.
    Neurobiol Aging. 2008 Sep;29(9):1285-95 PMID: 17452062
  11. Cerebrospinal fluid profile in frontotemporal dementia and Alzheimer's disease.
    Ann Neurol. 2005 May;57(5):721-9 PMID: 15852395
  12. Global prevalence of dementia: a Delphi consensus study.
    Lancet. 2005 Dec 17;366(9503):2112-7 PMID: 16360788
  13. Baseline predictors of rates of hippocampal atrophy in mild cognitive impairment.
    Neurology. 2007 Oct 9;69(15):1491-7 PMID: 17923611
  14. Effects of Abeta immunization (AN1792) on MRI measures of cerebral volume in Alzheimer disease.
    Neurology. 2005 May 10;64(9):1563-72 PMID: 15883317
  15. Volume and number of neurons of the human hippocampal formation in normal aging and Alzheimer's disease.
    J Comp Neurol. 1997 Mar 24;379(4):482-94 PMID: 9067838
  16. Longitudinal CSF and MRI biomarkers improve the diagnosis of mild cognitive impairment.
    Neurobiol Aging. 2006 Mar;27(3):394-401 PMID: 16125823
  17. Longitudinal change in hippocampal volume as a function of apolipoprotein E genotype.
    Neurology. 2000 Jul 12;55(1):134-6 PMID: 10891924
  18. Higher atrophy rate of entorhinal cortex than hippocampus in AD.
    Neurology. 2004 Feb 10;62(3):422-7 PMID: 14872024
  19. Tensor-based morphometry as a neuroimaging biomarker for Alzheimer's disease: an MRI study of 676 AD, MCI, and normal subjects.
    Neuroimage. 2008 Nov 15;43(3):458-69 PMID: 18691658
  20. "Mini-mental state". A practical method for grading the cognitive state of patients for the clinician.
    J Psychiatr Res. 1975 Nov;12(3):189-98 PMID: 1202204
  21. Regionally specific loss of neurons in the aging human hippocampus.
    Neurobiol Aging. 1993 Jul-Aug;14(4):287-93 PMID: 8367010
  22. Changes in premorbid brain volume predict Alzheimer's disease pathology.
    Neurology. 2003 Aug 26;61(4):487-92 PMID: 12939422
  23. Correlation of cerebrospinal fluid levels of tau protein phosphorylated at threonine 231 with rates of hippocampal atrophy in Alzheimer disease.
    Arch Neurol. 2005 May;62(5):770-3 PMID: 15883264
  24. Development of cognitive instruments for use in clinical trials of antidementia drugs: additions to the Alzheimer's Disease Assessment Scale that broaden its scope. The Alzheimer's Disease Cooperative Study.
    Alzheimer Dis Assoc Disord. 1997;11 Suppl 2:S13-21 PMID: 9236948
  25. Comparison of automated and manual MRI volumetry of hippocampus in normal aging and dementia.
    J Magn Reson Imaging. 2002 Sep;16(3):305-10 PMID: 12205587
  26. Evolution of neuronal changes in the course of Alzheimer's disease.
    J Neural Transm Suppl. 1998;53:127-40 PMID: 9700651
  27. Does donepezil treatment slow the progression of hippocampal atrophy in patients with Alzheimer's disease?
    Am J Psychiatry. 2005 Apr;162(4):676-82 PMID: 15800138
  28. Rates of hippocampal atrophy correlate with change in clinical status in aging and AD.
    Neurology. 2000 Aug 22;55(4):484-89 PMID: 10953178
  29. Cerebrospinal fluid biomarker signature in Alzheimer's disease neuroimaging initiative subjects.
    Ann Neurol. 2009 Apr;65(4):403-13 PMID: 19296504
  30. Morphometric changes in the episodic memory network and tau pathologic features correlate with memory performance in patients with mild cognitive impairment.
    AJNR Am J Neuroradiol. 2008 Jun;29(6):1183-9 PMID: 18544670
  31. Brain atrophy rates predict subsequent clinical conversion in normal elderly and amnestic MCI.
    Neurology. 2005 Oct 25;65(8):1227-31 PMID: 16247049
  32. Biomarkers of neurodegeneration for diagnosis and monitoring therapeutics.
    Nat Rev Drug Discov. 2007 Apr;6(4):295-303 PMID: 17347655
  33. Hippocampal atrophy on MRI in frontotemporal lobar degeneration and Alzheimer's disease.
    J Neurol Neurosurg Psychiatry. 2006 Apr;77(4):439-42 PMID: 16306153
  34. Biomarkers for early detection of Alzheimer pathology.
    Neurosignals. 2008;16(1):11-8 PMID: 18097155
  35. The Alzheimer's Disease Neuroimaging Initiative (ADNI): MRI methods.
    J Magn Reson Imaging. 2008 Apr;27(4):685-91 PMID: 18302232
  36. Longitudinal volumetric MRI change and rate of cognitive decline.
    Neurology. 2005 Aug 23;65(4):565-71 PMID: 16116117
  37. The Alzheimer's disease neuroimaging initiative.
    Neuroimaging Clin N Am. 2005 Nov;15(4):869-77, xi-xii PMID: 16443497
  38. Commentary on "Optimal design of clinical trials for drugs designed to slow the course of Alzheimer's disease." Biochemical biomarkers of late-life dementia.
    Alzheimers Dement. 2006 Oct;2(4):287-93 PMID: 19595902
  39. Longitudinal stability of MRI for mapping brain change using tensor-based morphometry.
    Neuroimage. 2006 Jun;31(2):627-40 PMID: 16480900
  40. Hippocampus in Alzheimer's disease: a 3-year follow-up MRI study.
    Biol Psychiatry. 2000 Mar 15;47(6):557-61 PMID: 10715362
  41. Development and validation of a geriatric depression screening scale: a preliminary report.
    J Psychiatr Res. 1982-1983;17(1):37-49 PMID: 7183759
  42. Mild cognitive impairment: risk of Alzheimer disease and rate of cognitive decline.
    Neurology. 2006 Aug 8;67(3):441-5 PMID: 16894105
  43. Clinical diagnosis of Alzheimer's disease: report of the NINCDS-ADRDA Work Group under the auspices of Department of Health and Human Services Task Force on Alzheimer's Disease.
    Neurology. 1984 Jul;34(7):939-44 PMID: 6610841
  44. Change in rates of cerebral atrophy over time in early-onset Alzheimer's disease: longitudinal MRI study.
    Lancet. 2003 Oct 4;362(9390):1121-2 PMID: 14550701
  45. Imaging cerebral atrophy: normal ageing to Alzheimer's disease.
    Lancet. 2004 Jan 31;363(9406):392-4 PMID: 15074306
  46. Biological markers for therapeutic trials in Alzheimer's disease. Proceedings of the biological markers working group; NIA initiative on neuroimaging in Alzheimer's disease.
    Neurobiol Aging. 2003 Jul-Aug;24(4):521-36 PMID: 12714109
  47. Comparison of different MRI brain atrophy rate measures with clinical disease progression in AD.
    Neurology. 2004 Feb 24;62(4):591-600 PMID: 14981176
  48. Hippocampal and cortical atrophy predict dementia in subcortical ischemic vascular disease.
    Neurology. 2000 Dec 12;55(11):1626-35 PMID: 11113215
  49. Increased hippocampal atrophy rates in AD over 6 months using serial MR imaging.
    Neurobiol Aging. 2008 Aug;29(8):1199-203 PMID: 17368654
  50. The Clinical Dementia Rating (CDR): current version and scoring rules.
    Neurology. 1993 Nov;43(11):2412-4 PMID: 8232972
  51. Effect of apolipoprotein E genotype on hippocampal volume loss in aging healthy women.
    Neurology. 2001 Dec 26;57(12):2223-8 PMID: 11756601
Article Info
Journal
Brain : a journal of neurology
Abbr.
Brain
ISSN
1460-2156
Published
2009-04-00
Epub
2009-00-27
Pages
1067-77
Language
English
Region
England
NLM ID
0372537
PMCID
PMC2668943
Subset
IM
Grants
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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