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Stayte, S.

Publications and source records attributed to Stayte, S..

2 recordsLinked to original sources

Novel PSD95 reporter mice reveal medium spiny neuron subtype-specific synapse loss in PD and L-dopa induced dyskinesia and identify microglia mediated synapse removal as a therapeutic target for dyskinesia

BackgroundL-Dopa remains the primary treatment for Parkinsons disease (PD), but chronic administration frequently leads to L-Dopa-induced dyskinesia (LID). While D1 and D2 medium spiny neuron (MSN) specific structural changes on the spine level have been observed in the striatum of PD and LID, studying microglia mediated synapse loss has not been done to date. MethodsHere we generated novel reporter mice by crossing floxed PSD95c(mCherry/eGFP) mice with D1-Cre and D2-Cre lines, producing D1-PSD95-EGFP and D2-PSD95-EGFP strains for MSN-specific synapse visualization. Using the 6-OHDA mouse model of PD and LID we assessed microglia mediated MSN subtype specific synapse loss in these mice while PLX3397 was used to investigate effects of microglia depletion and repopulation on LID development and synapse loss. ResultsBoth D1- and D2-MSNs exhibited significant PSD95 synapse loss in PD, with D1-MSN loss further exacerbated in LID. Microglia displayed increased phagocytic activity and accumulated PSD95 material within lysosomes, particularly in LID. PLX3397-mediated microglial depletion reduced LID severity and preserved D1-MSN synapses. A depletion and repopulation paradigm attenuated LID severity, preserved D1-MSN synapses, and reduced synaptic material within microglia. ConclusionsMicroglia-mediated synapse loss in MSN subtypes contributes to PD and LID pathogenesis. Pharmacological microglial depletion and repopulation mitigate synapse loss and dyskinesia, highlighting microglial turnover as a promising therapeutic strategy for LID.

neuroscience↗

Wnt-3a exacerbates production of TNF-α in LPS stimulated microglia independent of the β-catenin canonical pathway

BackgroundNeuroinflammatory pathways are emerging therapeutic targets for neurological conditions such as Parkinsons disease (PD). Studies have indicated Wnt-3a, a member of the wingless type MMTV integration (Wnt) signalling cascade, may exert anti-inflammatory effects via canonical pathway activation and {beta}-catenin stabilisation. Furthermore, dysregulation of the Wnt/{beta}-catenin pathway has been implicated in the degeneration of dopamine neurons in PD, however, stimulation of the canonical pathway via application of Wnt-3a to protect against inflammation and dopaminergic degeneration has not been explored. MethodsPrimary microglial cultures were stimulated with lipopolysaccharide (LPS) for 24 hours with or without Wnt-3a. TNF- levels were measured via ELISA while changes in NFkB inflammatory pathway proteins and phosphorylated and non-phosphorylated {beta}-catenin were analysed via capillary western blot. To assess Wnt pathway involvement, cultures were treated with DKK1 ({beta}-catenin canonical pathway inhibitor), SP600125 (Wnt/Pcp pathway inhibitor) or U73122 (Wnt/Ca2+ pathway inhibitor). Finally, C57BL/6 mice received continuous intracerebroventricular infusion of Wnt-3a via osmotic pumps to investigate the effects of Wnt-3a on dopaminergic neuron survival and on microglial numbers in the MPTP model of PD. ResultsWnt-3a alone had no effect on TNF- release from microglia. However, when co-administered with LPS, there was a significant increase in cytokine release beyond that seen with LPS alone. Protein analysis revealed that this exacerbation in TNF- levels was not due to alterations in the NFkB pathway or differences in activation of {beta}-catenin. Furthermore, DKK1 treated cells showed no changes in TNF- levels, however both SP600125 and U723122 were able to block Wnt-3a + LPS induced TNF- release, implicating the non-canonical pathways. Meanwhile Wnt-3a in vivo did not alter dopaminergic or microglial populations in the substantia nigra in MPTP lesioned animals. ConclusionTogether, these results suggest a pro-inflammatory response to Wnt-3a in an inflammatory context with little or no effect on resting microglia. Importantly, this outcome was independent of the {beta}-catenin canonical pathway, revealing that Wnt-3a can increase pro-inflammatory TNF- release via non-canonical signaling in an inflammatory environment. This demonstrates the importance of cellular context when identifying potential therapies for neurodegenerative diseases where neuroinflammation is a critical mediator of pathology.

neuroscience↗