Tauopathy severely disrupts homeostatic set-points in emergent neural dynamics but not the activity of individual neurons.
McGregor, J. N.; Farris, C. A.; Ensley, S.; Schneider, A.; Wang, C.; Liu, Y.; Tu, J.; Elmore, H.; Ronayne, K. D.; Wessel, R.; Dyer, E. L.; Bhaskaran-Nair, K.; Holtzman, D. M.; Hengen, K. B.
Show abstract
The homeostatic regulation of neuronal activity is essential for robust computation; key set-points, such as firing rate, are actively stabilized to compensate for perturbations. From this perspective, the disruption of brain function central to neurodegenerative disease should reflect impairments of computationally essential set-points. Despite connecting neurodegeneration to functional outcomes, the impact of disease on set-points in neuronal activity is unknown. Here we present a comprehensive, theory-driven investigation of the effects of tau-mediated neurodegeneration on homeostatic set-points in neuronal activity. In a mouse model of tauopathy, we examine 27,000 hours of hippocampal recordings during free behavior throughout disease progression. Contrary to our initial hypothesis that tauopathy would impact set-points in spike rate and variance, we found that cell-level set-points are resilient to even the latest stages of disease. Instead, we find that tauopathy disrupts neuronal activity at the network-level, which we quantify using both pairwise measures of neuron interactions as well as measurement of the networks nearness to criticality, an ideal computational regime that is known to be a homeostatic set-point. We find that shifts in network criticality 1) track with symptoms, 2) predict underlying anatomical and molecular pathology, 3) occur in a sleep/wake dependent manner, and 4) can be used to reliably classify an animals genotype. Our data suggest that the critical set-point is intact, but that homeostatic machinery is progressively incapable of stabilizing hippocampal networks, particularly during waking. This work illustrates how neurodegenerative processes can impact the computational capacity of neurobiological systems, and suggest an important connection between molecular pathology, circuit function, and animal behavior.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Genetic Disruption of WASHC4 Drives Endo-lysosomal Dysfunction and Cognitive-Movement Impairments in Mice and Humans 95%
- Homeostatic regulation of REM sleep by the preoptic area of the hypothalamus 95%
- Age-associated changes to neuronal dynamics involve a disruption of excitatory/inhibitory balance in C. elegans 95%
Similar papers in this journal
- Inhibitory parvalbumin basket cell activity is selectively reduced during hippocampal sharp wave ripples in a mouse model of familial Alzheimer's disease 95%
- Amyloid pathology impairs experience-dependent inhibitory synaptic plasticity 94%
- Efficient propagation of misfolded tau between individual neurons occurs in absence of degeneration 94%
Similar papers in this journal
- Spread of pathological human Tau from neurons to oligodendrocytes and loss of high-firing pyramidal neurons in ageing mice 97%
- Pathological tau alters head direction signaling and induces spatial disorientation 95%
- Identification of protein aggregates in the aging vertebrate brain with prion-like andphase separation properties 94%
"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.