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Updated: Nov 3, 2025

An In Vitro Model for Studying Tau Aggregation Using Lentiviral-mediated Transduction of Human Neurons
Published on: May 23, 2019
Exosomal and vesicle-free tau seeds-propagation and convergence in endolysosomal permeabilization
Juan Carlos Polanco1, Jürgen Götz1
1Clem Jones Centre for Ageing Dementia Research (CJCADR), Queensland Brain Institute (QBI), The University of Queensland, Brisbane, QLD, Australia.
Abstract:
In Alzheimer's disease (AD), β-amyloid peptides aggregate to form amyloid plaques, and the microtubule-associated protein tau forms neurofibrillary tangles. However, severity and duration of AD correlate with the stereotypical emergence of tau tangles throughout the brain, suggestive of a gradual region-to-region spreading of pathological tau. The current notion in the field is that misfolded tau seeds propagate transsynaptically and corrupt the proper folding of soluble tau in recipient neurons. This is supported by accumulating evidence showing that in AD, functional connectivity and not proximity predicts the spreading of tau pathology. Tau seeds can be found in two flavors, vesicle-free, that is, naked as in oligomers and fibrils, or encapsulated by membranes of secreted vesicles known as exosomes. Both types of seeds have been shown to propagate between interconnected neurons. Here, we describe potential ways of how their propagation can be controlled in several subcellular compartments by manipulating mechanisms affecting production, neuron-to-neuron transmission, internalization, endosomal escape, and autophagy. We emphasize that although vesicle-free tau seeds and exosomes differ, they share the ability to trigger endolysosomal permeabilization. Such a mechanistic convergence in endolysosomal permeabilization presents itself as a unique opportunity to target both types of tau seeding. We discuss the cellular response to endolysosomal damage that might be key to control permeabilization, and the significant overlap in the seeding mechanism of proteopathic agents other than tau, which suggests that targeting the endolysosomal pathway could pave the way toward developing broad-spectrum treatments for neurodegenerative diseases.
Insights
Pathological tau seeds spread between neurons in Alzheimer's disease (AD). Targeting endolysosomal permeabilization offers a potential strategy to control tau propagation and treat neurodegenerative diseases.
Area of Science:
- Neuroscience
- Cell Biology
- Pathology
Background:
- Alzheimer's disease (AD) is characterized by amyloid plaques and tau neurofibrillary tangles.
- Pathological tau spreads progressively through the brain, suggesting a region-to-region propagation mechanism.
- Misfolded tau seeds are believed to spread transsynaptically, corrupting tau in connected neurons.
Purpose of the Study:
- To explore mechanisms for controlling pathological tau seed propagation.
- To identify common pathways targeted by different tau seed types.
- To investigate the potential of targeting endolysosomal pathways for neurodegenerative disease treatment.
Main Methods:
- Review of current literature on tau seed propagation.
- Analysis of subcellular compartments involved in tau seeding.
- Examination of mechanisms like exosome secretion, endocytosis, and autophagy.
- Investigation of endolysosomal permeabilization as a common mechanism.
Main Results:
- Tau seeds exist as vesicle-free aggregates or within exosomes, both propagating between neurons.
- Both tau seed types can trigger endolysosomal permeabilization.
- Cellular responses to endolysosomal damage may be key to controlling propagation.
- Tau seeding mechanisms share overlaps with other proteopathic agents.
Conclusions:
- Targeting endolysosomal permeabilization presents a unified strategy for both vesicle-free and exosomal tau seeds.
- Interfering with the endolysosomal pathway could offer broad-spectrum treatments for neurodegenerative diseases.
- Understanding cellular responses to endolysosomal damage is crucial for therapeutic development.
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