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PMID: 20579880 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Electrical activity suppresses axon growth through Ca(v)1.2 channels in adult primary sensory neurons.

Current biology : CB ·Vol. 20 ·No. 13 ·2010-07-13 ·Pages 1154-64

Enes J, Langwieser N, Ruschel J, Carballosa-Gonzalez MM, Klug A, Traut MH, Ylera B, Tahirovic S, Hofmann F, Stein V, Moosmang S, Hentall ID, Bradke F

Abstract

Primary sensory neurons of the dorsal root ganglia (DRG) regenerate their spinal cord axon if the peripheral nerve axon has previously been cut. This conditioning lesion confers axon growth competence to the neurons. However, the signal that is sensed by the cell upon peripheral lesion to initiate the regenerative response remains elusive. We show here that loss of electrical activity following peripheral deafferentiation is an important signal to trigger axon regrowth. We first verified that firing in sensory fibers, as recorded from dorsal roots in vivo, declined after peripheral lesioning but was not altered after central lesioning. We found that electrical activity strongly inhibited axon outgrowth in cultured adult sensory neurons. The inhibitory effect depended on the L-type voltage-gated Ca(2+) channel current and involved transcriptional changes. After a peripheral lesion, the L-type current was consistently diminished and the L-type pore-forming subunit, Ca(v)1.2, was downregulated. Genetic ablation of Ca(v)1.2 in the nervous system caused an increase in axon outgrowth from dissociated DRG neurons and enhanced peripheral nerve regeneration in vivo. Our data indicate that cessation of electrical activity after peripheral lesion contributes to the regenerative response observed upon conditioning and might be necessary to promote regeneration after central nervous system injury.

MeSH Terms
Animals Axons Calcium/metabolism Calcium Channels, L-Type/genetics,physiology Cells, Cultured Electric Stimulation Ganglia, Spinal/cytology Ion Transport Sensory Receptor Cells/physiology
Chemicals
Calcium Channels, L-Type L-type calcium channel alpha(1C) Calcium
Authors & Affiliations
13 authors, click to expand affiliations / ORCID
Enes Joana
Axonal Growth and Regeneration, Max Planck Institute of Neurobiology, Martinsried, Germany.
Langwieser Nicole
Ruschel Jörg
Carballosa-Gonzalez Melissa M
Klug Achim
Traut Matthias H
Ylera Bhavna
Tahirovic Sabina
Hofmann Franz
Stein Valentin
Moosmang Sven
Hentall Ian D
Bradke Frank
Article Info
Journal
Current biology : CB
Abbr.
Curr Biol
ISSN
1879-0445
Published
2010-07-13
Epub
2010-00-24
Pages
1154-64
Language
English
Region
England
NLM ID
9107782
Subset
IM
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