Upregulation of reggie-1/flotillin-2 promotes axon regeneration in the rat optic nerve in vivo and neurite growth in vitro

dc.contributor.authorKoch, Jan C.deu
dc.contributor.authorSolis, Gonzalo P.deu
dc.contributor.authorBodrikov, Vsevolod
dc.contributor.authorMichel, Uwedeu
dc.contributor.authorHaralampieva, Deanadeu
dc.contributor.authorShypitsyna, Aleksandra
dc.contributor.authorTönges, Larsdeu
dc.contributor.authorBähr, Mathiasdeu
dc.contributor.authorLingor, Pauldeu
dc.contributor.authorStürmer, Claudia
dc.date.accessioned2013-01-31T10:45:11Zdeu
dc.date.available2013-01-31T10:45:11Zdeu
dc.date.issued2013-03
dc.description.abstractThe ability of fish retinal ganglion cells (RGCs) to regenerate their axons was shown to require the re-expression and function of the two proteins reggie-1 and -2. RGCs in mammals fail to upregulate reggie expression and to regenerate axons after lesion suggesting the possibility that induced upregulation might promote regeneration. In the present study, RGCs in adult rats were induced to express reggie-1 by intravitreal injection of adeno-associated viral vectors (AAV2/1) expressing reggie-1 (AAV.R1-EGFP) 14d prior to optic nerve crush. Four weeks later, GAP-43-positive regenerating axons had crossed the lesion and grown into the nerve at significantly higher numbers and length (up to 5mm) than the control transduced with AAV.EGFP. Consistently, after transduction with AAV.R1-EGFP as opposed to AAV.EGFP, primary RGCs in vitro grew long axons on chondroitin sulfate proteoglycan (CSPG) and Nogo-A, both glial cell-derived inhibitors of neurite growth, suggesting that reggie-1 can provide neurons with the ability to override inhibitors of neurite growth. This reggie-1-mediated enhancement of growth was reproduced in mouse hippocampal and N2a neurons which generated axons 40-60% longer than their control counterparts. This correlates with the reggie-1-dependent activation of Src and PI3 kinase (PI3K), of the Rho family GTPase Rac1 and downstream effectors such as cofilin. This increased growth also depends on TC10, the GTPase involved in cargo delivery to the growth cone. Thus, the upregulation of reggie-1 in mammalian neurons provides nerve cells with neuron-intrinsic properties required for axon growth and successful regeneration in the adult mammalian CNS.eng
dc.description.versionpublished
dc.identifier.citationNeurobiology of Disease ; 51 (2013). - S. 168-176deu
dc.identifier.doi10.1016/j.nbd.2012.11.007deu
dc.identifier.pmid23174179
dc.identifier.ppn476409969
dc.identifier.urihttp://kops.uni-konstanz.de/handle/123456789/21060
dc.language.isoengdeu
dc.legacy.dateIssued2013-01-31deu
dc.rightsterms-of-usedeu
dc.rights.urihttps://rightsstatements.org/page/InC/1.0/deu
dc.subject.ddc570deu
dc.titleUpregulation of reggie-1/flotillin-2 promotes axon regeneration in the rat optic nerve in vivo and neurite growth in vitroeng
dc.typeJOURNAL_ARTICLEdeu
dspace.entity.typePublication
kops.citation.bibtex
@article{Koch2013-03Upreg-21060,
  year={2013},
  doi={10.1016/j.nbd.2012.11.007},
  title={Upregulation of reggie-1/flotillin-2 promotes axon regeneration in the rat optic nerve in vivo and neurite growth in vitro},
  volume={51},
  issn={0969-9961},
  journal={Neurobiology of Disease},
  pages={168--176},
  author={Koch, Jan C. and Solis, Gonzalo P. and Bodrikov, Vsevolod and Michel, Uwe and Haralampieva, Deana and Shypitsyna, Aleksandra and Tönges, Lars and Bähr, Mathias and Lingor, Paul and Stürmer, Claudia}
}
kops.citation.iso690KOCH, Jan C., Gonzalo P. SOLIS, Vsevolod BODRIKOV, Uwe MICHEL, Deana HARALAMPIEVA, Aleksandra SHYPITSYNA, Lars TÖNGES, Mathias BÄHR, Paul LINGOR, Claudia STÜRMER, 2013. Upregulation of reggie-1/flotillin-2 promotes axon regeneration in the rat optic nerve in vivo and neurite growth in vitro. In: Neurobiology of Disease. 2013, 51, pp. 168-176. ISSN 0969-9961. eISSN 1095-953X. Available under: doi: 10.1016/j.nbd.2012.11.007deu
kops.citation.iso690KOCH, Jan C., Gonzalo P. SOLIS, Vsevolod BODRIKOV, Uwe MICHEL, Deana HARALAMPIEVA, Aleksandra SHYPITSYNA, Lars TÖNGES, Mathias BÄHR, Paul LINGOR, Claudia STÜRMER, 2013. Upregulation of reggie-1/flotillin-2 promotes axon regeneration in the rat optic nerve in vivo and neurite growth in vitro. In: Neurobiology of Disease. 2013, 51, pp. 168-176. ISSN 0969-9961. eISSN 1095-953X. Available under: doi: 10.1016/j.nbd.2012.11.007eng
kops.citation.rdf
<rdf:RDF
    xmlns:dcterms="http://purl.org/dc/terms/"
    xmlns:dc="http://purl.org/dc/elements/1.1/"
    xmlns:rdf="http://www.w3.org/1999/02/22-rdf-syntax-ns#"
    xmlns:bibo="http://purl.org/ontology/bibo/"
    xmlns:dspace="http://digital-repositories.org/ontologies/dspace/0.1.0#"
    xmlns:foaf="http://xmlns.com/foaf/0.1/"
    xmlns:void="http://rdfs.org/ns/void#"
    xmlns:xsd="http://www.w3.org/2001/XMLSchema#" > 
  <rdf:Description rdf:about="https://kops.uni-konstanz.de/server/rdf/resource/123456789/21060">
    <dcterms:title>Upregulation of reggie-1/flotillin-2 promotes axon regeneration in the rat optic nerve in vivo and neurite growth in vitro</dcterms:title>
    <dc:creator>Shypitsyna, Aleksandra</dc:creator>
    <dc:date rdf:datatype="http://www.w3.org/2001/XMLSchema#dateTime">2013-01-31T10:45:11Z</dc:date>
    <bibo:uri rdf:resource="http://kops.uni-konstanz.de/handle/123456789/21060"/>
    <dspace:isPartOfCollection rdf:resource="https://kops.uni-konstanz.de/server/rdf/resource/123456789/28"/>
    <dcterms:bibliographicCitation>Neurobiology of Disease ; 51 (2013). - S. 168-176</dcterms:bibliographicCitation>
    <dcterms:abstract xml:lang="eng">The ability of fish retinal ganglion cells (RGCs) to regenerate their axons was shown to require the re-expression and function of the two proteins reggie-1 and -2. RGCs in mammals fail to upregulate reggie expression and to regenerate axons after lesion suggesting the possibility that induced upregulation might promote regeneration. In the present study, RGCs in adult rats were induced to express reggie-1 by intravitreal injection of adeno-associated viral vectors (AAV2/1) expressing reggie-1 (AAV.R1-EGFP) 14d prior to optic nerve crush. Four weeks later, GAP-43-positive regenerating axons had crossed the lesion and grown into the nerve at significantly higher numbers and length (up to 5mm) than the control transduced with AAV.EGFP. Consistently, after transduction with AAV.R1-EGFP as opposed to AAV.EGFP, primary RGCs in vitro grew long axons on chondroitin sulfate proteoglycan (CSPG) and Nogo-A, both glial cell-derived inhibitors of neurite growth, suggesting that reggie-1 can provide neurons with the ability to override inhibitors of neurite growth. This reggie-1-mediated enhancement of growth was reproduced in mouse hippocampal and N2a neurons which generated axons 40-60% longer than their control counterparts. This correlates with the reggie-1-dependent activation of Src and PI3 kinase (PI3K), of the Rho family GTPase Rac1 and downstream effectors such as cofilin. This increased growth also depends on TC10, the GTPase involved in cargo delivery to the growth cone. Thus, the upregulation of reggie-1 in mammalian neurons provides nerve cells with neuron-intrinsic properties required for axon growth and successful regeneration in the adult mammalian CNS.</dcterms:abstract>
    <dcterms:rights rdf:resource="https://rightsstatements.org/page/InC/1.0/"/>
    <dc:contributor>Koch, Jan C.</dc:contributor>
    <dc:contributor>Haralampieva, Deana</dc:contributor>
    <dc:creator>Bodrikov, Vsevolod</dc:creator>
    <dc:creator>Tönges, Lars</dc:creator>
    <dc:creator>Solis, Gonzalo P.</dc:creator>
    <dc:language>eng</dc:language>
    <void:sparqlEndpoint rdf:resource="http://localhost/fuseki/dspace/sparql"/>
    <dc:creator>Haralampieva, Deana</dc:creator>
    <dc:rights>terms-of-use</dc:rights>
    <dc:creator>Lingor, Paul</dc:creator>
    <dc:contributor>Tönges, Lars</dc:contributor>
    <dc:contributor>Bähr, Mathias</dc:contributor>
    <dc:creator>Bähr, Mathias</dc:creator>
    <dc:contributor>Lingor, Paul</dc:contributor>
    <dc:creator>Stürmer, Claudia</dc:creator>
    <dc:contributor>Solis, Gonzalo P.</dc:contributor>
    <dc:contributor>Stürmer, Claudia</dc:contributor>
    <dc:contributor>Bodrikov, Vsevolod</dc:contributor>
    <dcterms:hasPart rdf:resource="https://kops.uni-konstanz.de/bitstream/123456789/21060/2/Koch_210606.pdf"/>
    <dc:creator>Koch, Jan C.</dc:creator>
    <foaf:homepage rdf:resource="http://localhost:8080/"/>
    <dc:contributor>Shypitsyna, Aleksandra</dc:contributor>
    <dc:contributor>Michel, Uwe</dc:contributor>
    <dcterms:issued>2013-03</dcterms:issued>
    <dspace:hasBitstream rdf:resource="https://kops.uni-konstanz.de/bitstream/123456789/21060/2/Koch_210606.pdf"/>
    <dcterms:available rdf:datatype="http://www.w3.org/2001/XMLSchema#dateTime">2013-01-31T10:45:11Z</dcterms:available>
    <dc:creator>Michel, Uwe</dc:creator>
    <dcterms:isPartOf rdf:resource="https://kops.uni-konstanz.de/server/rdf/resource/123456789/28"/>
  </rdf:Description>
</rdf:RDF>
kops.description.openAccessopenaccessgreen
kops.flag.knbibliographytrue
kops.identifier.nbnurn:nbn:de:bsz:352-210606deu
kops.sourcefieldNeurobiology of Disease. 2013, <b>51</b>, pp. 168-176. ISSN 0969-9961. eISSN 1095-953X. Available under: doi: 10.1016/j.nbd.2012.11.007deu
kops.sourcefield.plainNeurobiology of Disease. 2013, 51, pp. 168-176. ISSN 0969-9961. eISSN 1095-953X. Available under: doi: 10.1016/j.nbd.2012.11.007deu
kops.sourcefield.plainNeurobiology of Disease. 2013, 51, pp. 168-176. ISSN 0969-9961. eISSN 1095-953X. Available under: doi: 10.1016/j.nbd.2012.11.007eng
kops.submitter.emailpetra.schnurr@uni-konstanz.dedeu
relation.isAuthorOfPublication0bb7e05b-8d0a-42cd-9338-4f4c75ed3863
relation.isAuthorOfPublication85de05fd-3392-48c3-a60c-04dc3707244a
relation.isAuthorOfPublication3862bcb4-7909-4812-8456-b5b3880d79f0
relation.isAuthorOfPublication.latestForDiscovery0bb7e05b-8d0a-42cd-9338-4f4c75ed3863
source.bibliographicInfo.fromPage168
source.bibliographicInfo.toPage176
source.bibliographicInfo.volume51
source.identifier.eissn1095-953X
source.identifier.issn0969-9961
source.periodicalTitleNeurobiology of Disease

Dateien

Originalbündel

Gerade angezeigt 1 - 1 von 1
Vorschaubild nicht verfügbar
Name:
Koch_210606.pdf
Größe:
1.52 MB
Format:
Adobe Portable Document Format
Beschreibung:
Koch_210606.pdf
Koch_210606.pdfGröße: 1.52 MBDownloads: 917

Lizenzbündel

Gerade angezeigt 1 - 1 von 1
Vorschaubild nicht verfügbar
Name:
license.txt
Größe:
1.92 KB
Format:
Plain Text
Beschreibung:
license.txt
license.txtGröße: 1.92 KBDownloads: 0