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VAP spatially stabilizes dendritic mitochondria to locally support synaptic plasticity

MPS-Authors

Kruessel,  Sarah
Synaptic Plasticity Department, Max Planck Institute for Brain Research, Max Planck Society;
Johns Hopkins University School of Medicine, Baltimore, MD, 21205, USA.;

Thum,  Christina
Synaptic Plasticity Department, Max Planck Institute for Brain Research, Max Planck Society;

Rupprecht,  Fiona
Synaptic Plasticity Department, Max Planck Institute for Brain Research, Max Planck Society;
Max Planck Institute of Biophysics, Frankfurt, 60438, Germany.;
Thermo Fisher Diagnostics GmbH, Henningsdorf, 16761, Germany;

/persons/resource/persons137770

Langer,  Julian David       
Synaptic Plasticity Department, Max Planck Institute for Brain Research, Max Planck Society;
Max Planck Institute of Biophysics, Frankfurt, 60438, Germany.;

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Citation

Bapat, O., Purimetla, T., Kruessel, S., Shah, M., Fan, R., Thum, C., et al. (2024). VAP spatially stabilizes dendritic mitochondria to locally support synaptic plasticity. Nat. Commun., 15(205). doi: 10.1038/s41467-023-44233-8.


Cite as: https://hdl.handle.net/21.11116/0000-000E-72AD-F
Abstract
Synapses are pivotal sites of plasticity and memory formation. Consequently, synapses are energy consumption hotspots susceptible to dysfunction when their energy supplies are perturbed. Mitochondria are stabilized near synapses via the cytoskeleton and provide the local energy required for synaptic plasticity. However, the mechanisms that tether and stabilize mitochondria to support synaptic plasticity are unknown. We identified proteins exclusively tethering mitochondria to actin near postsynaptic spines. We find that VAP, the vesicle-associated membrane protein-associated protein implicated in amyotrophic lateral sclerosis, stabilizes mitochondria via actin near the spines. To test if the VAP-dependent stable mitochondrial compartments can locally support synaptic plasticity, we used two-photon glutamate uncaging for spine plasticity induction and investigated the induced and adjacent uninduced spines. We find VAP functions as a spatial stabilizer of mitochondrial compartments for up to ~60 min and as a spatial ruler determining the ~30 μm dendritic segment supported during synaptic plasticity.