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Propagation of Aß pathology: hypotheses, discoveries, and yet unresolved questions from experimental and human brain
Yvonne S Eisele1, Charles Duyckaerts2,3
1Department of Molecular and Experimental Medicine, The Scripps Research Institute, La Jolla, CA, 92037, USA. yvonne.s.eisele@gmail.com.
Abstract:
In brains of patients with Alzheimer's disease (AD), Aβ peptides accumulate in parenchyma and, almost invariably, also in the vascular walls. Although Aβ aggregation is, by definition, present in AD, its impact is only incompletely understood. It occurs in a stereotypical spatiotemporal distribution within neuronal networks in the course of the disease. This suggests a role for synaptic connections in propagating Aβ pathology, and possibly of axonal transport in an antero- or retrograde way-although, there is also evidence for passive, extracellular diffusion. Striking, in AD, is the conjunction of tau and Aβ pathology. Tau pathology in the cell body of neurons precedes Aβ deposition in their synaptic endings in several circuits such as the entorhino-dentate, cortico-striatal or subiculo-mammillary connections. However, genetic evidence suggests that Aβ accumulation is the first step in AD pathogenesis. To model the complexity and consequences of Aβ aggregation in vivo, various transgenic (tg) rodents have been generated. In rodents tg for the human Aβ precursor protein, focal injections of preformed Aβ aggregates can induce Aβ deposits in the vicinity of the injection site, and over time in more distant regions of the brain. This suggests that Aβ shares with α-synuclein, tau and other proteins the property to misfold and aggregate homotypic molecules. We propose to group those proteins under the term "propagons". Propagons may lack the infectivity of prions. We review findings from neuropathological examinations of human brains in different stages of AD and from studies in rodent models of Aβ aggregation and discuss putative mechanisms underlying the initiation and spread of Aβ pathology.
Insights
Alzheimer's disease involves amyloid-beta (Aβ) peptide aggregation in the brain and blood vessels. This review explores how Aβ pathology spreads through neuronal networks and proposes a new term, "propagons," for misfolding proteins.
Area of Science:
- Neuroscience
- Neuropathology
- Molecular Biology
Background:
- Alzheimer's disease (AD) is characterized by amyloid-beta (Aβ) peptide accumulation in brain parenchyma and vasculature.
- The spatiotemporal spread of Aβ pathology within neuronal networks suggests roles for synaptic connections and axonal transport.
- The interplay between tau and Aβ pathology is a hallmark of AD, with tau pathology often preceding Aβ deposition in specific neuronal circuits.
Purpose of the Study:
- To review neuropathological findings in human AD brains and rodent models of Aβ aggregation.
- To discuss potential mechanisms driving the initiation and propagation of Aβ pathology.
- To introduce the concept of
Main Methods:
- Review of neuropathological examinations of human brains at various stages of Alzheimer's disease.
- Analysis of studies using transgenic rodent models for amyloid-beta precursor protein.
- Examination of focal injection studies in rodents to induce and track Aβ deposition.
Main Results:
- Amyloid-beta (Aβ) peptides aggregate in brain parenchyma and vascular walls in Alzheimer's disease (AD).
- Aβ pathology spreads in a stereotypical pattern within neuronal networks, suggesting propagation mechanisms.
- Transgenic rodent models demonstrate that focal Aβ aggregate injections can induce widespread Aβ deposition.
Conclusions:
- Amyloid-beta (Aβ) aggregation is a critical early event in Alzheimer's disease pathogenesis.
- Proteins like Aβ, tau, and α-synuclein share the ability to misfold and aggregate, a property termed "propagons".
- Understanding the mechanisms of Aβ initiation and spread is crucial for developing effective AD therapies.
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