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Mitochondria and Caspases Tune Nmnat-Mediated Stabilization to Promote Axon Regeneration

Axon injury can lead to several cell survival responses including increased stability and axon regeneration. Using an accessible Drosophila model system, we investigated the regulation of injury responses and their relationship. Axon injury stabilizes the rest of the cell, including the entire dendr...

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Autores principales: Chen, Li, Nye, Derek M., Stone, Michelle C., Weiner, Alexis T., Gheres, Kyle W., Xiong, Xin, Collins, Catherine A., Rolls, Melissa M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5173288/
https://www.ncbi.nlm.nih.gov/pubmed/27923046
http://dx.doi.org/10.1371/journal.pgen.1006503
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author Chen, Li
Nye, Derek M.
Stone, Michelle C.
Weiner, Alexis T.
Gheres, Kyle W.
Xiong, Xin
Collins, Catherine A.
Rolls, Melissa M.
author_facet Chen, Li
Nye, Derek M.
Stone, Michelle C.
Weiner, Alexis T.
Gheres, Kyle W.
Xiong, Xin
Collins, Catherine A.
Rolls, Melissa M.
author_sort Chen, Li
collection PubMed
description Axon injury can lead to several cell survival responses including increased stability and axon regeneration. Using an accessible Drosophila model system, we investigated the regulation of injury responses and their relationship. Axon injury stabilizes the rest of the cell, including the entire dendrite arbor. After axon injury we found mitochondrial fission in dendrites was upregulated, and that reducing fission increased stabilization or neuroprotection (NP). Thus axon injury seems to both turn on NP, but also dampen it by activating mitochondrial fission. We also identified caspases as negative regulators of axon injury-mediated NP, so mitochondrial fission could control NP through caspase activation. In addition to negative regulators of NP, we found that nicotinamide mononucleotide adenylyltransferase (Nmnat) is absolutely required for this type of NP. Increased microtubule dynamics, which has previously been associated with NP, required Nmnat. Indeed Nmnat overexpression was sufficient to induce NP and increase microtubule dynamics in the absence of axon injury. DLK, JNK and fos were also required for NP. Because NP occurs before axon regeneration, and NP seems to be actively downregulated, we tested whether excessive NP might inhibit regeneration. Indeed both Nmnat overexpression and caspase reduction reduced regeneration. In addition, overexpression of fos or JNK extended the timecourse of NP and dampened regeneration in a Nmnat-dependent manner. These data suggest that NP and regeneration are conflicting responses to axon injury, and that therapeutic strategies that boost NP may reduce regeneration.
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spelling pubmed-51732882016-12-28 Mitochondria and Caspases Tune Nmnat-Mediated Stabilization to Promote Axon Regeneration Chen, Li Nye, Derek M. Stone, Michelle C. Weiner, Alexis T. Gheres, Kyle W. Xiong, Xin Collins, Catherine A. Rolls, Melissa M. PLoS Genet Research Article Axon injury can lead to several cell survival responses including increased stability and axon regeneration. Using an accessible Drosophila model system, we investigated the regulation of injury responses and their relationship. Axon injury stabilizes the rest of the cell, including the entire dendrite arbor. After axon injury we found mitochondrial fission in dendrites was upregulated, and that reducing fission increased stabilization or neuroprotection (NP). Thus axon injury seems to both turn on NP, but also dampen it by activating mitochondrial fission. We also identified caspases as negative regulators of axon injury-mediated NP, so mitochondrial fission could control NP through caspase activation. In addition to negative regulators of NP, we found that nicotinamide mononucleotide adenylyltransferase (Nmnat) is absolutely required for this type of NP. Increased microtubule dynamics, which has previously been associated with NP, required Nmnat. Indeed Nmnat overexpression was sufficient to induce NP and increase microtubule dynamics in the absence of axon injury. DLK, JNK and fos were also required for NP. Because NP occurs before axon regeneration, and NP seems to be actively downregulated, we tested whether excessive NP might inhibit regeneration. Indeed both Nmnat overexpression and caspase reduction reduced regeneration. In addition, overexpression of fos or JNK extended the timecourse of NP and dampened regeneration in a Nmnat-dependent manner. These data suggest that NP and regeneration are conflicting responses to axon injury, and that therapeutic strategies that boost NP may reduce regeneration. Public Library of Science 2016-12-06 /pmc/articles/PMC5173288/ /pubmed/27923046 http://dx.doi.org/10.1371/journal.pgen.1006503 Text en © 2016 Chen et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Chen, Li
Nye, Derek M.
Stone, Michelle C.
Weiner, Alexis T.
Gheres, Kyle W.
Xiong, Xin
Collins, Catherine A.
Rolls, Melissa M.
Mitochondria and Caspases Tune Nmnat-Mediated Stabilization to Promote Axon Regeneration
title Mitochondria and Caspases Tune Nmnat-Mediated Stabilization to Promote Axon Regeneration
title_full Mitochondria and Caspases Tune Nmnat-Mediated Stabilization to Promote Axon Regeneration
title_fullStr Mitochondria and Caspases Tune Nmnat-Mediated Stabilization to Promote Axon Regeneration
title_full_unstemmed Mitochondria and Caspases Tune Nmnat-Mediated Stabilization to Promote Axon Regeneration
title_short Mitochondria and Caspases Tune Nmnat-Mediated Stabilization to Promote Axon Regeneration
title_sort mitochondria and caspases tune nmnat-mediated stabilization to promote axon regeneration
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5173288/
https://www.ncbi.nlm.nih.gov/pubmed/27923046
http://dx.doi.org/10.1371/journal.pgen.1006503
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