Signalling mechanisms in epilepsy and synaptic scaling
Access status:
Open Access
Type
ThesisThesis type
Doctor of PhilosophyAuthor/s
Hurtado Silva, Mariella IngeAbstract
Background: Neuroplasticity enables the brain to alter its electrophysiological activity depending on stimuli. Neuroplasticity mechanisms often intersect with disease mechanisms. One type is Hebbian plasticity, which is a positive feedback mechanism serving to strengthen or weaken ...
See moreBackground: Neuroplasticity enables the brain to alter its electrophysiological activity depending on stimuli. Neuroplasticity mechanisms often intersect with disease mechanisms. One type is Hebbian plasticity, which is a positive feedback mechanism serving to strengthen or weaken synaptic transmission and is central to learning and memory. Another type is synaptic scaling, which is a negative feedback mechanism that adjusts Hebbian modifications to ensure that net neuronal activity remains at a homeostatic set point. Excessive or reduced neuronal activity triggers synaptic scaling and these activity states induce down or upscaling of synaptic strength to revert to the activity setpoint. Synaptic scaling mechanisms are not yet fully revealed. However, scaling is likely to be highly relevant to disease since malfunction would result in neuronal activity that is excessive or inhibited. Epilepsy is characterised by excessive neuronal activity. In theory, seizures arising from excessive excitation should invoke synaptic downscaling. So the question arises as to whether a malfunctioning downscaling mechanism is involved. Epilepsy develops over time in a process known as epileptogenesis but mechanistic information is lacking to understand the most relevant biological processes. Method: With our capacity to explore the phosphoproteome and proteome in-depth using mass spectrometry, key phospho-signalling and protein expression events that drive synaptic downscaling and epileptogenesis were determined in mouse models. Findings: Comparing the phosphoproteomic and proteomic data from both the early epileptogenesis and synaptic downscaling screens we found that down-regulation of synaptic proteins induced synaptic weakening in both models, with subtle differences. Major differences related to broader phospho-regulation of translation in early epileptogenesis, likely driven by activation of additional protein kinases.
See less
See moreBackground: Neuroplasticity enables the brain to alter its electrophysiological activity depending on stimuli. Neuroplasticity mechanisms often intersect with disease mechanisms. One type is Hebbian plasticity, which is a positive feedback mechanism serving to strengthen or weaken synaptic transmission and is central to learning and memory. Another type is synaptic scaling, which is a negative feedback mechanism that adjusts Hebbian modifications to ensure that net neuronal activity remains at a homeostatic set point. Excessive or reduced neuronal activity triggers synaptic scaling and these activity states induce down or upscaling of synaptic strength to revert to the activity setpoint. Synaptic scaling mechanisms are not yet fully revealed. However, scaling is likely to be highly relevant to disease since malfunction would result in neuronal activity that is excessive or inhibited. Epilepsy is characterised by excessive neuronal activity. In theory, seizures arising from excessive excitation should invoke synaptic downscaling. So the question arises as to whether a malfunctioning downscaling mechanism is involved. Epilepsy develops over time in a process known as epileptogenesis but mechanistic information is lacking to understand the most relevant biological processes. Method: With our capacity to explore the phosphoproteome and proteome in-depth using mass spectrometry, key phospho-signalling and protein expression events that drive synaptic downscaling and epileptogenesis were determined in mouse models. Findings: Comparing the phosphoproteomic and proteomic data from both the early epileptogenesis and synaptic downscaling screens we found that down-regulation of synaptic proteins induced synaptic weakening in both models, with subtle differences. Major differences related to broader phospho-regulation of translation in early epileptogenesis, likely driven by activation of additional protein kinases.
See less
Date
2023Licence
Copyright All Rights ReservedRights statement
The author retains copyright of this thesis. It may only be used for the purposes of research and study. It must not be used for any other purposes and may not be transmitted or shared with others without prior permission.Faculty/School
Faculty of Medicine and Health, The University of Sydney School of MedicineDepartment, Discipline or Centre
Children's Medical Research InstituteAwarding institution
The University of SydneyShare