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Published on: December 18, 2016
Regional brain hypometabolism is unrelated to regional amyloid plaque burden
Andre Altmann1, Bernard Ng1, Susan M Landau2
11 FIND Lab, Department of Neurology and Neurological Sciences, Stanford University, Stanford California, USA.
Abstract:
In its original form, the amyloid cascade hypothesis of Alzheimer's disease holds that fibrillar deposits of amyloid are an early, driving force in pathological events leading ultimately to neuronal death. Early clinicopathological investigations highlighted a number of inconsistencies leading to an updated hypothesis in which amyloid plaques give way to amyloid oligomers as the driving force in pathogenesis. Rather than focusing on the inconsistencies, amyloid imaging studies have tended to highlight the overlap between regions that show early amyloid plaque signal on positron emission tomography and that also happen to be affected early in Alzheimer's disease. Recent imaging studies investigating the regional dependency between metabolism and amyloid plaque deposition have arrived at conflicting results, with some showing regional associations and other not. We extracted multimodal neuroimaging data from the Alzheimer's disease neuroimaging database for 227 healthy controls and 434 subjects with mild cognitive impairment. We analysed regional patterns of amyloid deposition, regional glucose metabolism and regional atrophy using florbetapir ((18)F) positron emission tomography, (18)F-fluordeoxyglucose positron emission tomography and T1-weighted magnetic resonance imaging, respectively. Specifically, we derived grey matter density and standardized uptake value ratios for both positron emission tomography tracers in 404 functionally defined regions of interest. We examined the relation between regional glucose metabolism and amyloid plaques using linear models. For each region of interest, correcting for regional grey matter density, age, education and disease status, we tested the association of regional glucose metabolism with (i) cortex-wide florbetapir uptake; (ii) regional (i.e. in the same region of interest) florbetapir uptake; and (iii) regional florbetapir uptake while correcting in addition for cortex-wide florbetapir uptake. P-values for each setting were Bonferroni corrected for 404 tests. Regions showing significant hypometabolism with increasing cortex-wide amyloid burden were classic Alzheimer's disease-related regions: the medial and lateral parietal cortices. The associations between regional amyloid burden and regional metabolism were more heterogeneous: there were significant hypometabolic effects in posterior cingulate, precuneus, and parietal regions but also significant positive associations in bilateral hippocampus and entorhinal cortex. However, after correcting for global amyloid burden, few of the negative associations remained and the number of positive associations increased. Given the wide-spread distribution of amyloid plaques, if the canonical cascade hypothesis were true, we would expect wide-spread, cortical hypometabolism. Instead, cortical hypometabolism appears to be linked to global amyloid burden. Thus we conclude that regional fibrillar amyloid deposition has little to no association with regional hypometabolism.
Insights
Alzheimer's disease research questions the amyloid cascade hypothesis. Global amyloid burden, not regional deposits, correlates with brain hypometabolism, suggesting a revised understanding of Alzheimer's pathogenesis.
Area of Science:
- Neuroscience
- Neurology
- Medical Imaging
Background:
- The amyloid cascade hypothesis posits that amyloid deposits drive Alzheimer's disease (AD) pathology.
- Updated hypotheses suggest amyloid oligomers, rather than plaques, are the primary drivers.
- Previous imaging studies show overlap between amyloid plaque distribution and early AD-affected regions.
Purpose of the Study:
- To investigate the relationship between regional amyloid deposition and regional glucose metabolism in Alzheimer's disease.
- To test the association between regional amyloid burden and regional hypometabolism, considering global amyloid levels.
- To evaluate the validity of the amyloid cascade hypothesis using multimodal neuroimaging data.
Main Methods:
- Utilized multimodal neuroimaging data from the Alzheimer's Disease Neuroimaging Initiative (ADNI) database.
- Analyzed positron emission tomography (PET) data for amyloid deposition (florbetapir) and glucose metabolism (FDG) in 434 mild cognitive impairment (MCI) subjects and 227 healthy controls.
- Employed linear models to examine associations between regional metabolism and amyloid burden, correcting for grey matter density, age, education, and disease status.
Main Results:
- Significant hypometabolism was observed in parietal regions with increasing cortex-wide amyloid burden.
- Associations between regional amyloid and metabolism were heterogeneous, with some regions showing hypometabolism and others positive associations (e.g., hippocampus).
- After correcting for global amyloid burden, few negative associations remained, and positive associations increased, challenging regional amyloid-metabolism links.
Conclusions:
- Cortical hypometabolism in Alzheimer's disease is linked to global amyloid burden, not necessarily regional fibrillar amyloid deposition.
- The findings suggest that regional amyloid plaque accumulation has minimal association with regional hypometabolism.
- This study necessitates a re-evaluation of the direct role of regional amyloid in driving localized metabolic decline in Alzheimer's disease.

