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Cairns, N. J.

Publications and source records attributed to Cairns, N. J..

2 recordsLinked to original sources

Genetic variants associated with Alzheimer's disease confer different cerebral cortex cell-type population structure

Alzheimers disease (AD) is characterized by neuronal loss and astrocytosis in the cerebral cortex. However, the effects of brain cellular composition are often ignored in high-throughput molecular studies. We developed and optimized a cell-type specific expression reference panel and employed digital deconvolution methods to determine brain cellular distribution in three independent transcriptomic studies. We found that neuronal and astrocyte proportions differ between healthy and diseased brains and also among AD cases that carry specific genetic risk variants. Brain carriers of pathogenic mutations in APP, PSEN1 or PSEN2 presented lower neurons and higher astrocytes proportions compared to sporadic AD. Similarly, the APOE {varepsilon}4 allele also showed decreased neurons and increased astrocytes compared to AD non-carriers. On the contrary, carriers of variants in TREM2 risk showed a lower degree of neuronal loss than matched AD cases in multiple independent studies. These findings suggest that genetic risk factors associated with AD etiology have a specific imprinting in the cellular composition of AD brains. Our digital deconvolution reference panel provides an enhanced understanding of the fundamental molecular mechanisms underlying neurodegeneration, enabling the analysis of large bulk RNA-seq studies for cell composition, and suggests that correcting for the cellular structure when performing transcriptomic analysis will lead to novel insights of AD.

genetics

Soluble amyloid-beta buffering by plaques in Alzheimer disease dementia versus high-pathology controls

An unanswered question regarding Alzheimer disease dementia (ADD) is whether amyloid-beta (A{beta}) plaques sequester toxic soluble A{beta} species early in the pathological progression. We previously reported that the concentration of soluble A{beta} aggregates from patients with mild dementia was higher than soluble A{beta} aggregates from patients with modest A{beta} plaque burden but no dementia. The ratio of soluble A{beta} aggregate concentration to A{beta} plaque area fully distinguished these groups of patients. We hypothesized that initially plaques may serve as a reservoir or sink for toxic soluble A{beta} aggregates, sequestering them from other targets in the extracellular space and thereby preventing their toxicity. To initially test a generalized version of this hypothesis, we have performed binding assessments using biotinylated synthetic A{beta}1-42 peptide. A{beta}1-42-biotin peptide was incubated on unfixed frozen sections from non-demented high plaque pathology controls and patients with dementia of the Alzheimer type. The bound peptide was measured using ELISA and confocal microscopy. We observed no quantitative difference in A{beta} binding between the groups using either method. Further testing of the buffering hypothesis using various forms of synthetic and human derived soluble A{beta} aggregates will be required to definitively address the role of plaque buffering as it relates to ADD.

neuroscience