[PDF][PDF] An active vesicle priming machinery suppresses axon regeneration upon adult CNS injury

BJ Hilton, A Husch, B Schaffran, T Lin, ER Burnside… - Neuron, 2022 - cell.com
BJ Hilton, A Husch, B Schaffran, T Lin, ER Burnside, S Dupraz, M Schelski, J Kim, JA Müller
Neuron, 2022cell.com
Axons in the adult mammalian central nervous system fail to regenerate after spinal cord
injury. Neurons lose their capacity to regenerate during development, but the intracellular
processes underlying this loss are unclear. We found that critical components of the
presynaptic active zone prevent axon regeneration in adult mice. Transcriptomic analysis
combined with live-cell imaging revealed that adult primary sensory neurons downregulate
molecular constituents of the synapse as they acquire the ability to rapidly grow their axons …
Summary
Axons in the adult mammalian central nervous system fail to regenerate after spinal cord injury. Neurons lose their capacity to regenerate during development, but the intracellular processes underlying this loss are unclear. We found that critical components of the presynaptic active zone prevent axon regeneration in adult mice. Transcriptomic analysis combined with live-cell imaging revealed that adult primary sensory neurons downregulate molecular constituents of the synapse as they acquire the ability to rapidly grow their axons. Pharmacogenetic reduction of neuronal excitability stimulated axon regeneration after adult spinal cord injury. Genetic gain- and loss-of-function experiments uncovered that essential synaptic vesicle priming proteins of the presynaptic active zone, but not clostridial-toxin-sensitive VAMP-family SNARE proteins, inhibit axon regeneration. Systemic administration of Baclofen reduced voltage-dependent Ca2+ influx in primary sensory neurons and promoted their regeneration after spinal cord injury. These findings indicate that functional presynaptic active zones constitute a major barrier to axon regeneration.
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