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hESC-derived striatal progenitors grafted into a Huntington's disease rat model support long-term functional motor recovery by differentiating, self-organizing and connecting into the lesioned striatum

Articolo
Data di Pubblicazione:
2023
Abstract:
BackgroundHuntington's disease (HD) is a motor and cognitive neurodegenerative disorder due to prominent loss of striatal medium spiny neurons (MSNs). Cell replacement using human embryonic stem cells (hESCs) derivatives may offer new therapeutic opportunities to replace degenerated neurons and repair damaged circuits.MethodsWith the aim to develop effective cell replacement for HD, we assessed the long-term therapeutic value of hESC-derived striatal progenitors by grafting the cells into the striatum of a preclinical model of HD [i.e., adult immunodeficient rats in which the striatum was lesioned by monolateral injection of quinolinic acid (QA)]. We examined the survival, maturation, self-organization and integration of the graft as well as its impact on lesion-dependent motor alterations up to 6 months post-graft. Moreover, we tested whether exposing a cohort of QA-lesioned animals to environmental enrichment (EE) could improve graft integration and function.ResultsHuman striatal progenitors survived up to 6 months after transplantation and showed morphological and neurochemical features typical of human MSNs. Donor-derived interneurons were also detected. Grafts wired in both local and long-range striatal circuits, formed domains suggestive of distinct ganglionic eminence territories and displayed emerging striosome features. Moreover, over time grafts improved complex motor performances affected by QA. EE selectively increased cell differentiation into MSN phenotype and promoted host-to-graft connectivity. However, when combined to the graft, the EE paradigm used in this study was insufficient to produce an additive effect on task execution.ConclusionsThe data support the long-term therapeutic potential of ESC-derived human striatal progenitor grafts for the replacement of degenerated striatal neurons in HD and suggest that EE can effectively accelerate the maturation and promote the integration of human striatal cells.
Tipologia CRIS:
03A-Articolo su Rivista
Keywords:
Direct and indirect pathways; Human embryonic stem cells; In vitro differentiation; Medium spiny neurons; Transplantation; Viral tracing
Elenco autori:
Schellino, Roberta; Besusso, Dario; Parolisi, Roberta; Gómez-González, Gabriela B; Dallere, Sveva; Scaramuzza, Linda; Ribodino, Marta; Campus, Ilaria; Conforti, Paola; Parmar, Malin; Boido, Marina; Cattaneo, Elena; Buffo, Annalisa
Autori di Ateneo:
BOIDO Marina Maria
BUFFO Annalisa
SCHELLINO Roberta
Link alla scheda completa:
https://iris.unito.it/handle/2318/1927990
Link al Full Text:
https://iris.unito.it/retrieve/handle/2318/1927990/1179608/s13287-023-03422-4.pdf
https://iris.unito.it/retrieve/handle/2318/1927990/1181649/s13287-023-03422-4_compressed%20(1).pdf
Pubblicato in:
STEM CELL RESEARCH & THERAPY
Journal
Progetto:
PROGETTO EUROPEO H2020 PROF.SSA BUFFO NSC RECONSTRUCT H2020-SC1 2019 SINGLE-STAGE RTD
  • Dati Generali
  • Aree Di Ricerca

Dati Generali

URL

https://stemcellres.biomedcentral.com/articles/10.1186/s13287-023-03422-4

Aree Di Ricerca

Settori (12)


LS5_14 - Repair and regeneration of the nervous system - (2022)

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MEDICINA, SALUTE e BENESSERE - Disturbi neuropsichiatrici

MEDICINA, SALUTE e BENESSERE - Epidemiologia

MEDICINA, SALUTE e BENESSERE - Fisiologia comportamentale

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MEDICINA, SALUTE e BENESSERE - Oncologia e Tumori

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