Selective Molecular and Network Architecture Features Underlie Brain Cortical Atrophy in Dementia with Lewy Bodies
Delva, A.; Joza, S.; Tremblay, C.; Vo, A.; Filiatrault, M.; Carrier, M.; Taylor, J.-P.; O'Brien, J. T.; Firbank, M.; Thomas, A.; Donaghy, P. C.; Camicioli, R.; Chertkow, H.; Dagher, A.; Postuma, R. B.; Rahayel, S.
Show abstract
BACKGROUND: Dementia with Lewy bodies shares clinical and pathological features with both Parkinson's disease and Alzheimer's disease, but the local biological factors that render specific cortical regions vulnerable to atrophy remain poorly defined. In particular, it is unclear whether cortical thinning in dementia with Lewy bodies reflects generic neurodegenerative mechanisms, processes shared with Parkinson's disease and Alzheimer's disease, or dementia with Lewy bodies-specific molecular and network susceptibilities. METHODS: A total of 89 patients with dementia with Lewy bodies and 89 matched controls underwent T1-weighted brain MRI. Scans were processed to generate surface-based cortical thickness maps. Regional cortical thickness estimates, after slice-by-slice manual correction, were mapped to gene expression data from healthy postmortem human brains to identify transcriptomic signatures associated with decreased thickness in dementia with Lewy bodies. We assessed whether genes whose expression was increased with regional thinning converged onto established Parkinson's disease- and Alzheimer's disease-related pathways and isolated genes uniquely implicated in dementia with Lewy bodies. Spatial annotation mapping was then used to test whether patterns of cortical thinning overlapped with in vivo neurotransmitter system distributions and whether the observed thickness pattern was constrained by large-scale structural connectivity, consistent with a network-based propagation process. RESULTS: Cortical thinning predominated in regions that, in the healthy brain, show higher expression of genes involved in mitochondrial function and synaptic transmission. The transcriptomic profile associated with thinning significantly overlapped with genes belonging to Parkinson's disease and Alzheimer's disease pathways, supporting shared pathogenic mechanisms across Lewy body and Alzheimer-type neurodegeneration. However, 90 genes associated with cortical thinning did not overlap with Parkinson's disease or Alzheimer's disease pathways and were enriched for GABAergic signalling. Spatial mapping analyses showed that regions with greatest thickness reductions colocalized with GABAA, serotoninergic 5-HT1A, 5-HT1B, 5-HT4, and dopaminergic D2 receptor distributions, and that the thickness pattern followed structural connectivity. CONCLUSIONS: MRI-derived cortical thickness changes in dementia with Lewy bodies reflect selective molecular and network vulnerabilities rather than a non-specific degenerative process. Mitochondrial and synaptic genes, together with a distinct GABAergic association and connectivity constraints, delineate mechanisms explaining why some cortical territories are more affected in dementia with Lewy bodies.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Glucose metabolism reflects local atrophy and tau pathology in symptomatic Alzheimer’s disease 97%
- Selective vulnerability and resilience to Alzheimer's disease tauopathy as a function of genes and the connectome 97%
- Default mode network tau predicts future clinical decline in atypical early Alzheimer’s disease 96%
Similar papers in this journal
Similar papers in this journal
- Dysregulated coordination of MAPT exon 2 and exon 10 splicing underlies different tau pathologies in PSP and AD 96%
- Rare genetic variation in Fibronectin 1 (FN1) protects against APOEe4 in Alzheimer's disease 96%
- Genome-wide association study and functional validation implicates JADE1 in tauopathy 95%
Similar papers in this journal
- Disease progression modelling reveals heterogeneity in trajectories of Lewy-type alpha-synuclein pathology 97%
- Hemispheric Asymmetry of Tau Pathology is Related to Asymmetric Amyloid Deposition in Alzheimer's Disease 96%
- Molecular Signatures of Resilience to Alzheimer's Disease in Neocortical Layer 4 Neurons 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.