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Troyano-Rodriguez, E.

Publications and source records attributed to Troyano-Rodriguez, E..

2 recordsLinked to original sources

Tau conveys intrinsic hyperactivity of VTA dopamine neurons but an inability to sustain burst firing

INTRODUCTIONVentral tegmental area (VTA) dopamine has been implicated in neuropsychiatric symptoms observed in Alzheimers disease (AD) patients. Dopaminergic dysfunction and aberrant firing are observed in mouse AD models, but the specific roles of A{beta} and tau have not been determined. METHODSWe performed electrophysiological recordings of single VTA dopamine neuron firing in the 3xTg-AD model, followed by recordings in amyloid (APPNL-G-F)- and human tau (hTau)-based models to determine the pathological triggers of impaired firing. RESULTSIn vivo dopamine neuron recordings showed fewer spikes in defined bursts in 3xTg-AD mice versus controls. Ex vivo studies showed an impaired ability to sustain firing during depolarization, which was mimicked with depolarized current in wild type neurons. Dopamine neurons transduced with hTau reflected firing aberrations and impaired bursting, but the effects were not recapitulated in the APPNL-G-F model, DISCUSSIONThese results suggest that hTau specifically induces hyperexcitable states within individual dopamine neurons, disrupting burst firing. This dopaminergic dysfunction could compromise reward learning and contribute to the psychiatric symptoms observed in AD.

neuroscience↗

Effects of age and sex on dendritic D2 autoreceptor inhibition in substantia nigra dopamine neurons

Substantia nigra pars compacta (SNc) dopamine neurons are required for voluntary movement and reward learning, and advanced age is associated with motor and cognitive decline. In the midbrain, D2-type autoreceptors located on dendrodendritic synapses between dopamine neurons control cell firing through G protein-activated potassium (GIRK) channels. We previously showed that aging disrupts dopamine neuron pacemaker firing in mice, but only in males. Here we show that D2-receptor inhibitory postsynaptic currents (D2-IPSCs) in aged male mice are moderately smaller compared to young males as well as females, regardless of age. Local application of dopamine revealed a reduction in the amplitude of the D2-receptor currents in old males compared to young, pointing to a postsynaptic mechanism that could not be explained by impairment of the GIRK channels or degeneration of the dendritic arbor. Kinetic analysis showed no differences in D2-IPSCs in old versus young mice or between sexes. Potentiation of D2-IPSCs by corticotropin releasing factor (CRF) is also conserved in aging, indicating preservation of plasticity mechanisms. These findings have implications for understanding dopamine transmission in aging in both sexes and could explain in part the increased susceptibility of males to SNc degeneration of dopamine neurons in neurodegenerative disorders such as Parkinsons disease (PD).

neuroscience↗