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Cotter, R.

Publications and source records attributed to Cotter, R..

2 recordsLinked to original sources

Central Presynapses Regulate Spontaneous Synaptic Vesicle Exocytosis Rate by Constraining Recycling Pool Density

Synapses represent a fundamental unit of information transfer during cognition. They accomplish this via presynaptic vesicle exocytosis, which can occur either spontaneously or by an action potential leading to evoked release. It has been well established that evoked release is probabilistic in nature, but it has been less clear what mechanisms mediate spontaneous release. Understanding spontaneous release is important because it is an essential maintenance mechanism for synaptic connections. We propose a mechanistic framework and model of spontaneous release based on immobile vesicles in the reserve pool geometrically constraining mobile vesicles in the recycling pool, which provides a force leading to a spontaneous release rate. We experimentally support this framework using a combination of Scanning Electron Microscopy (SEM), high-resolution fluorescence microscopy techniques using pHluorin-VGlut1 and a single vesicle SGC5 reporter, and a computational model. We observe that the spontaneous release rate increases linearly with the number of vesicles but is constant in the absence of presynaptic actin. We then use an acute agent, Forskolin, to further constrain the volume of the recycling pool, leading to an increased spontaneous release rate. We show that our framework predicts the increasing spontaneous release rate experimentally observed. These results suggest that synapses constrain the density of the recycling pool to mediate spontaneous release rate via the entropic force.

neuroscience↗

Mitochondria Exhibit Changes in Morphology/Function to Support Increased Glutamate Release in TauP301L Neurons Prior to Reduction in Presynaptic Vesicle Release

We have shown that tauopathy models display early-stage hyperexcitability due to increased presynaptic glutamate release that is mediated by an increase in vesicular glutamate transporter-1 (VGlut1). This hyperexcitability increases energy demand which in turn would increase demand on mitochondria. It is unclear, however, how early-stage presynaptic changes in glutamate release are supported by or influence the function of mitochondria. Using Large Area Scanning Electron Microscopy (LA-SEM) and fluorescence microscopy, we demonstrate that mitochondrial changes in morphology, structure, and function in CA1/CA3 hippocampal neurons decrease resting mitochondrial membrane potential in P301L mice. However, P301L mitochondria maintain a high membrane potential during levels of high activity, suggesting that they can support increased energy demand during hyperexcitability. These activity-dependent differences in membrane potential can be rescued by inhibiting ATP-dependent VGlut1 vesicle refilling. This indicates that the increased VGlut1 per vesicle observed in P301L mice contributes to the differences in mitochondria membrane potential. Notably, the mitochondrial dysfunction in P301L mice occurs before any observable alterations in presynaptic release mechanics, suggesting these changes may represent early therapeutic targets. Finally, we propose a model of increased glutamate-mediated changes in mitochondrial morphology and function in P301L neurons that represents a potentially targetable pathway to reduce or arrest neurodegeneration.

neuroscience↗