Cargando…

Sonic Hedgehog Controls the Phenotypic Fate and Therapeutic Efficacy of Grafted Neural Precursor Cells in a Model of Nigrostriatal Neurodegeneration

The expression of soluble growth and survival promoting factors by neural precursor cells (NPCs) is suggested to be a prominent mechanism underlying the protective and regenerative effects of these cells after transplantation. Nevertheless, how and to what extent specific NPC-expressed factors contr...

Descripción completa

Detalles Bibliográficos
Autores principales: Madhavan, Lalitha, Daley, Brian F., Davidson, Beverly L., Boudreau, Ryan L., Lipton, Jack W., Cole-Strauss, Allyson, Steece-Collier, Kathy, Collier, Timothy J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4560385/
https://www.ncbi.nlm.nih.gov/pubmed/26340267
http://dx.doi.org/10.1371/journal.pone.0137136
_version_ 1782388910310031360
author Madhavan, Lalitha
Daley, Brian F.
Davidson, Beverly L.
Boudreau, Ryan L.
Lipton, Jack W.
Cole-Strauss, Allyson
Steece-Collier, Kathy
Collier, Timothy J.
author_facet Madhavan, Lalitha
Daley, Brian F.
Davidson, Beverly L.
Boudreau, Ryan L.
Lipton, Jack W.
Cole-Strauss, Allyson
Steece-Collier, Kathy
Collier, Timothy J.
author_sort Madhavan, Lalitha
collection PubMed
description The expression of soluble growth and survival promoting factors by neural precursor cells (NPCs) is suggested to be a prominent mechanism underlying the protective and regenerative effects of these cells after transplantation. Nevertheless, how and to what extent specific NPC-expressed factors contribute to therapeutic effects is not well understood. Using RNA silencing, the current study investigated the roles of two donor NPC molecules, namely glial cell-line derived neurotrophic factor (GDNF) and sonic hedgehog (SHH), in the protection of substantia nigra dopamine neurons in rats treated with 6-hydroxydopamine (6-OHDA). Analyses indicate that as opposed to the knock-down of GDNF, SHH inhibition caused a profound decline in nigrostriatal neuroprotection. Further, SHH silencing also curbed endogenous neurogenesis and the migration of host brdU(+)/dcx(+) neural precursors into the striatum, which was present in the animals receiving control or GDNF silenced NPCs. A change in graft phenotype, mainly reflected by a reduced proportion of undifferentiated nestin(+) cells, as well as a significantly greater host microglial activity, suggested an important role for these processes in the attenuation of neuroprotection and neurogenesis upon SHH silencing. Overall these studies reveal core mechanisms fundamental to grafted NPC-based therapeutic effects, and delineate the particular contributions of two graft-expressed molecules, SHH and GDNF, in mediating midbrain dopamine neuron protection, and host plasticity after NPC transplantation.
format Online
Article
Text
id pubmed-4560385
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-45603852015-09-10 Sonic Hedgehog Controls the Phenotypic Fate and Therapeutic Efficacy of Grafted Neural Precursor Cells in a Model of Nigrostriatal Neurodegeneration Madhavan, Lalitha Daley, Brian F. Davidson, Beverly L. Boudreau, Ryan L. Lipton, Jack W. Cole-Strauss, Allyson Steece-Collier, Kathy Collier, Timothy J. PLoS One Research Article The expression of soluble growth and survival promoting factors by neural precursor cells (NPCs) is suggested to be a prominent mechanism underlying the protective and regenerative effects of these cells after transplantation. Nevertheless, how and to what extent specific NPC-expressed factors contribute to therapeutic effects is not well understood. Using RNA silencing, the current study investigated the roles of two donor NPC molecules, namely glial cell-line derived neurotrophic factor (GDNF) and sonic hedgehog (SHH), in the protection of substantia nigra dopamine neurons in rats treated with 6-hydroxydopamine (6-OHDA). Analyses indicate that as opposed to the knock-down of GDNF, SHH inhibition caused a profound decline in nigrostriatal neuroprotection. Further, SHH silencing also curbed endogenous neurogenesis and the migration of host brdU(+)/dcx(+) neural precursors into the striatum, which was present in the animals receiving control or GDNF silenced NPCs. A change in graft phenotype, mainly reflected by a reduced proportion of undifferentiated nestin(+) cells, as well as a significantly greater host microglial activity, suggested an important role for these processes in the attenuation of neuroprotection and neurogenesis upon SHH silencing. Overall these studies reveal core mechanisms fundamental to grafted NPC-based therapeutic effects, and delineate the particular contributions of two graft-expressed molecules, SHH and GDNF, in mediating midbrain dopamine neuron protection, and host plasticity after NPC transplantation. Public Library of Science 2015-09-04 /pmc/articles/PMC4560385/ /pubmed/26340267 http://dx.doi.org/10.1371/journal.pone.0137136 Text en © 2015 Madhavan 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Madhavan, Lalitha
Daley, Brian F.
Davidson, Beverly L.
Boudreau, Ryan L.
Lipton, Jack W.
Cole-Strauss, Allyson
Steece-Collier, Kathy
Collier, Timothy J.
Sonic Hedgehog Controls the Phenotypic Fate and Therapeutic Efficacy of Grafted Neural Precursor Cells in a Model of Nigrostriatal Neurodegeneration
title Sonic Hedgehog Controls the Phenotypic Fate and Therapeutic Efficacy of Grafted Neural Precursor Cells in a Model of Nigrostriatal Neurodegeneration
title_full Sonic Hedgehog Controls the Phenotypic Fate and Therapeutic Efficacy of Grafted Neural Precursor Cells in a Model of Nigrostriatal Neurodegeneration
title_fullStr Sonic Hedgehog Controls the Phenotypic Fate and Therapeutic Efficacy of Grafted Neural Precursor Cells in a Model of Nigrostriatal Neurodegeneration
title_full_unstemmed Sonic Hedgehog Controls the Phenotypic Fate and Therapeutic Efficacy of Grafted Neural Precursor Cells in a Model of Nigrostriatal Neurodegeneration
title_short Sonic Hedgehog Controls the Phenotypic Fate and Therapeutic Efficacy of Grafted Neural Precursor Cells in a Model of Nigrostriatal Neurodegeneration
title_sort sonic hedgehog controls the phenotypic fate and therapeutic efficacy of grafted neural precursor cells in a model of nigrostriatal neurodegeneration
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4560385/
https://www.ncbi.nlm.nih.gov/pubmed/26340267
http://dx.doi.org/10.1371/journal.pone.0137136
work_keys_str_mv AT madhavanlalitha sonichedgehogcontrolsthephenotypicfateandtherapeuticefficacyofgraftedneuralprecursorcellsinamodelofnigrostriatalneurodegeneration
AT daleybrianf sonichedgehogcontrolsthephenotypicfateandtherapeuticefficacyofgraftedneuralprecursorcellsinamodelofnigrostriatalneurodegeneration
AT davidsonbeverlyl sonichedgehogcontrolsthephenotypicfateandtherapeuticefficacyofgraftedneuralprecursorcellsinamodelofnigrostriatalneurodegeneration
AT boudreauryanl sonichedgehogcontrolsthephenotypicfateandtherapeuticefficacyofgraftedneuralprecursorcellsinamodelofnigrostriatalneurodegeneration
AT liptonjackw sonichedgehogcontrolsthephenotypicfateandtherapeuticefficacyofgraftedneuralprecursorcellsinamodelofnigrostriatalneurodegeneration
AT colestraussallyson sonichedgehogcontrolsthephenotypicfateandtherapeuticefficacyofgraftedneuralprecursorcellsinamodelofnigrostriatalneurodegeneration
AT steececollierkathy sonichedgehogcontrolsthephenotypicfateandtherapeuticefficacyofgraftedneuralprecursorcellsinamodelofnigrostriatalneurodegeneration
AT colliertimothyj sonichedgehogcontrolsthephenotypicfateandtherapeuticefficacyofgraftedneuralprecursorcellsinamodelofnigrostriatalneurodegeneration