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Spastin Locally Amplifies Microtubule Dynamics to Pattern the Axon for Presynaptic Cargo Delivery

Overview
Journal Curr Biol
Publisher Cell Press
Specialty Biology
Date 2024 Mar 30
PMID 38554708
Authors
Affiliations
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Abstract

Neurons rely on the long-range trafficking of synaptic components to form and maintain the complex neural networks that encode the human experience. With a single neuron capable of forming thousands of distinct en passant synapses along its axon, spatially precise delivery of the necessary synaptic components is paramount. How these synapses are patterned, as well as how the efficient delivery of synaptic components is regulated, remains largely unknown. Here, we reveal a novel role for the microtubule (MT)-severing enzyme spastin in locally enhancing MT polymerization to influence presynaptic cargo pausing and retention along the axon. In human neurons derived from induced pluripotent stem cells (iPSCs), we identify sites stably enriched for presynaptic components along the axon prior to the robust assembly of mature presynapses apposed by postsynaptic contacts. These sites are capable of cycling synaptic vesicles, are enriched with spastin, and are hotspots for new MT growth and synaptic vesicle precursor (SVP) pausing/retention. The disruption of neuronal spastin level or activity, by CRISPRi-mediated depletion, transient overexpression, or pharmacologic inhibition of enzymatic activity, interrupts the localized enrichment of dynamic MT plus ends and diminishes SVP accumulation. Using an innovative human heterologous synapse model, where microfluidically isolated human axons recognize and form presynaptic connections with neuroligin-expressing non-neuronal cells, we reveal that neurons deficient for spastin do not achieve the same level of presynaptic component accumulation as control neurons. We propose a model where spastin acts locally as an amplifier of MT polymerization to pattern specific regions of the axon for synaptogenesis and guide synaptic cargo delivery.

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References
1.
Lee J, Shin H, Ko J, Choi J, Lee H, Kim E . Characterization of the movement of the kinesin motor KIF1A in living cultured neurons. J Biol Chem. 2002; 278(4):2624-9. DOI: 10.1074/jbc.M211152200. View

2.
Kuo Y, Trottier O, Mahamdeh M, Howard J . Spastin is a dual-function enzyme that severs microtubules and promotes their regrowth to increase the number and mass of microtubules. Proc Natl Acad Sci U S A. 2019; 116(12):5533-5541. PMC: 6431158. DOI: 10.1073/pnas.1818824116. View

3.
Lord S, Velle K, Mullins R, Fritz-Laylin L . SuperPlots: Communicating reproducibility and variability in cell biology. J Cell Biol. 2020; 219(6). PMC: 7265319. DOI: 10.1083/jcb.202001064. View

4.
Parodi L, Fenu S, Barbier M, Banneau G, Duyckaerts C, Tezenas du Montcel S . Spastic paraplegia due to SPAST mutations is modified by the underlying mutation and sex. Brain. 2018; 141(12):3331-3342. DOI: 10.1093/brain/awy285. View

5.
Matteoli M, Takei K, Perin M, Sudhof T, De Camilli P . Exo-endocytotic recycling of synaptic vesicles in developing processes of cultured hippocampal neurons. J Cell Biol. 1992; 117(4):849-61. PMC: 2289460. DOI: 10.1083/jcb.117.4.849. View