Cortical hypermetabolism in MCI subjects: a compensatory mechanism?

被引:111
作者
Ashraf, A. [1 ]
Fan, Z. [1 ]
Brooks, D. J. [1 ]
Edison, P. [1 ]
机构
[1] Univ London Imperial Coll Sci Technol & Med, Div Brain Sci, Neurol Imaging Unit, London W12 0NN, England
基金
英国医学研究理事会;
关键词
MCI; Amyloid-positive; Amyloid-negative; Neuroplasticity; Compensatory hypermetabolism; MILD COGNITIVE IMPAIRMENT; BRAIN GLUCOSE-METABOLISM; ALZHEIMERS-DISEASE; AMYLOID DEPOSITION; MOUSE MODEL; FDG-PET; A-BETA; HIPPOCAMPAL HYPERACTIVITY; DEMENTIA; RESERVE;
D O I
10.1007/s00259-014-2919-z
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
100231 [临床病理学]; 100902 [航空航天医学];
摘要
Alzheimer's disease (AD) is associated with amyloid accumulation that takes place decades before symptoms appear. Cognitive impairment in AD is associated with reduced glucose metabolism. However, neuronal plasticity/compensatory mechanisms might come into play before the onset of dementia. The aim of this study was to determine whether there is evidence of cortical hypermetabolism as a compensatory mechanism before amyloid deposition takes place in subjects with amnestic mild cognitive impairment (aMCI). Nine AD subjects and ten aMCI subjects had both [C-11]PIB and [F-18]FDG PET scans with arterial input in order to quantify the amyloid deposition and glucose metabolism in vivo in comparison with healthy control subjects who underwent either [C-11]PIB or [F-18]FDG PET scans. The [C-11]PIB PET scans were quantified using [C-11]PIB target region to cerebellum uptake ratio images created by integrating the activity collected from 60 to 90 min, and regional cerebral glucose metabolism was quantified using spectral analysis. In MCI subjects, cortical hypermetabolism was observed in four amyloid-negative subjects and one amyloid-positive subject, while hypometabolism was seen in five other MCI subjects with high amyloid load. Subjects with hypermetabolism and low amyloid did not convert to AD during clinical follow-up for 18 months in contrast to four amyloid-positive hypometabolic subjects who did convert to AD. This preliminary study suggests that compensatory hypermetabolism can occur in aMCI subjects, particularly in those who are amyloid-negative. The increase in metabolic rate in different cortical regions with predominance in the occipital cortex may be a compensatory response to the neuronal damage occurring early in the disease process. It may also reflect recruitment of relatively minimally affected cortical regions to compensate for reduced function in the temporoparietal cortical association areas.
引用
收藏
页码:447 / 458
页数:12
相关论文
共 62 条
[21]
Long-term effects of Aβ42 immunisation in Alzheimer's disease:: follow-up of a randomised, placebo-controlled phase I trial [J].
Holmes, Clive ;
Boche, Delphine ;
Wilkinson, David ;
Yadegarfar, Ghasem ;
Hopkins, Vivienne ;
Bayer, Anthony ;
Jones, Roy W. ;
Bullock, Roger ;
Love, Seth ;
Neal, James W. ;
Zotova, Elina ;
Nicoll, James A. R. .
LANCET, 2008, 372 (9634) :216-223
[22]
Mild Cognitive Impairment and Asymptomatic Alzheimer Disease Subjects: Equivalent β-Amyloid and Tau Loads With Divergent Cognitive Outcomes [J].
Iacono, Diego ;
Resnick, Susan M. ;
O'Brien, Richard ;
Zonderman, Alan B. ;
An, Yang ;
Pletnikova, Olga ;
Rudow, Gay ;
Crain, Barbara ;
Troncoso, Juan C. .
JOURNAL OF NEUROPATHOLOGY AND EXPERIMENTAL NEUROLOGY, 2014, 73 (04) :295-304
[23]
Tracking pathophysiological processes in Alzheimer's disease: an updated hypothetical model of dynamic biomarkers [J].
Jack, Clifford R., Jr. ;
Knopman, David S. ;
Jagust, William J. ;
Petersen, Ronald C. ;
Weiner, Michael W. ;
Aisen, Paul S. ;
Shaw, Leslie M. ;
Vemuri, Prashanthi ;
Wiste, Heather J. ;
Weigand, Stephen D. ;
Lesnick, Timothy G. ;
Pankratz, Vernon S. ;
Donohue, Michael C. ;
Trojanowski, John Q. .
LANCET NEUROLOGY, 2013, 12 (02) :207-216
[24]
Serial PIB and MRI in normal, mild cognitive impairment and Alzheimers disease: implications for sequence of pathological events in Alzheimers disease [J].
Jack, Clifford R., Jr. ;
Lowe, Val J. ;
Weigand, Stephen D. ;
Wiste, Heather J. ;
Senjem, Matthew L. ;
Knopman, David S. ;
Shiung, Maria M. ;
Gunter, Jeffrey L. ;
Boeve, Bradley F. ;
Kemp, Bradley J. ;
Weiner, Michael ;
Petersen, Ronald C. .
BRAIN, 2009, 132 :1355-1365
[25]
Relationships between biomarkers in aging and dementia [J].
Jagust, W. J. ;
Landau, S. M. ;
Shaw, L. M. ;
Trojanowski, J. Q. ;
Koeppe, R. A. ;
Reiman, E. M. ;
Foster, N. L. ;
Petersen, R. C. ;
Weiner, M. W. ;
Price, J. C. ;
Mathis, C. A. .
NEUROLOGY, 2009, 73 (15) :1193-1199
[26]
Lifespan brain activity, β-amyloid, and Alzheimer's disease [J].
Jagust, William J. ;
Mormino, Elizabeth C. .
TRENDS IN COGNITIVE SCIENCES, 2011, 15 (11) :520-526
[27]
Fibrillar Amyloid-β-Activated Human Astroglia Kill Primary Human Neurons via Neutral Sphingomyelinase: Implications for Alzheimer's Disease [J].
Jana, Arundhati ;
Pahan, Kalipada .
JOURNAL OF NEUROSCIENCE, 2010, 30 (38) :12676-12689
[28]
Effects of Age on the Glucose Metabolic Changes in Mild Cognitive Impairment [J].
Kantarci, K. ;
Senjem, M. L. ;
Lowe, V. J. ;
Wiste, H. J. ;
Weigand, S. D. ;
Kemp, B. J. ;
Frank, A. R. ;
Shiung, M. M. ;
Boeve, B. F. ;
Knopman, D. S. ;
Petersen, R. C. ;
Jack, C. R., Jr. .
AMERICAN JOURNAL OF NEURORADIOLOGY, 2010, 31 (07) :1247-1253
[29]
The Role of Apolipoprotein E in Alzheimer's Disease [J].
Kim, Jungsu ;
Basak, Jacob M. ;
Holtzman, David M. .
NEURON, 2009, 63 (03) :287-303
[30]
Klunk WE, 2003, J NEUROSCI, V23, P2086