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Bapat, O.

Publications and source records attributed to Bapat, O..

2 recordsLinked to original sources

Synapses drive local mitochondrial ATP synthesis to fuel plasticity

Our brain constantly forms new memories and stabilizes existing memories. To achieve such cognitive flexibility, the brain is wired by plastic synapses that are hotspots of energy consumption. Supplying energy to distant synapses is challenging as they are distributed throughout dendrites and axons, spanning hundreds of microns from their cell body. Synapses, therefore, require an instant and local energy supply provided by mitochondria stabilized near dendritic spines. However, the mechanisms by which synapses communicate their energy demands to locally stable mitochondria to drive local energy production and sustain synaptic plasticity is unknown. Using highly sensitive spine- and mitochondrial ATP reporters and two-photon glutamate uncaging to stimulate individual spines, we find that synaptic plasticity input drives instant and sustained increase in spine ATP levels, provided by local ATP synthesis in [~]10-20 m spatially confined compartments within mitochondria. This spatially localized mitochondrial ATP generation is driven by a spatially localized mitochondrial calcium influx independent of the endoplasmic reticulum. Notably, the initial spine ATP increase, supported by local mitochondrial ATP synthesis, is independent of CaMKII and the energy demands of spine structural plasticity. Without local calcium signaling and mitochondrial stabilization, synapses do not meet their instant and sustained energy needs, resulting in synaptic plasticity defects, as observed in neurological disorders.

neuroscience↗

VAP spatially stabilizes dendritic mitochondria to locally fuel synaptic plasticity

Synapses are pivotal sites of memory formation and undergo plasticity in response to external inputs. Consequently, synapses are hotspots of energy consumption and are susceptible to dysfunction when their energy supplies are perturbed. Mitochondria are stabilized near synapses via cytoskeletal tethering and serve as local energy supplies to fuel synaptic plasticity. However, the mechanisms that tether and stabilize neuronal mitochondria for long durations and determine the spatial dendritic segment supported during synaptic plasticity are unknown. We identified a list of novel mitochondrial-cytoskeletal interactors in neurons using APEX-based proximity labeling. We narrowed down the protein candidates that exclusively tether mitochondria to actin near postsynaptic spines using high-resolution Airyscan confocal imaging. We find that VAP, the vesicle-associated membrane protein-associated protein implicated in Amyotrophic Lateral Sclerosis and interacts with the endoplasmic reticulum, stabilizes mitochondria via actin near the spines. To test if the VAP-dependent stable mitochondrial compartments can locally support synaptic plasticity, we investigated individual spines stimulated by two-photon glutamate uncaging for spine plasticity induction and their adjacent spines. We find that, along with actin, VAP functions as a spatial stabilizer of mitochondrial compartments to sustain synaptic plasticity for up to ~60 min and as a spatial ruler that determines the ~30 m length of the dendritic segment supporting synaptic plasticity.

neuroscience↗