Literature DB >> 15941857

Long-term survival of dopamine neurons derived from parthenogenetic primate embryonic stem cells (cyno-1) after transplantation.

Rosario Sánchez-Pernaute1, Lorenz Studer, Daniela Ferrari, Anselme Perrier, Hyojin Lee, Angel Viñuela, Ole Isacson.   

Abstract

Dopamine (DA) neurons can be derived from human and primate embryonic stem (ES) cells in vitro. An ES cell-based replacement therapy for patients with Parkinson's disease requires that in vitro-generated neurons maintain their phenotype in vivo. Other critical issues relate to their proliferative capacity and risk of tumor formation, and the capability of migration and integration in the adult mammalian brain. Neural induction was achieved by coculture of primate parthenogenetic ES cells (Cyno-1) with stromal cells, followed by sequential exposure to midbrain patterning and differentiation factors to favor DA phenotypic specification. Differentiated ES cells were treated with mitomycin C and transplanted into adult immunosuppressed rodents and into a primate (allograft) with out immunosuppression. A small percentage of DA neurons survived in both rodent and primate hosts for the entire term of the study (4 and 7 months, respectively). Other neuronal and glial populations derived from Cyno-1 ES cells showed, in vivo, phenotypic characteristics and growth and migration patterns similar to fetal primate transplants, and a majority of cells (>80%) expressed the forebrain transcription factor brain factor 1. No teratoma formation was observed. In this study, we demonstrate long-term survival of DA neurons obtained in vitro from primate ES cells. Optimization of differentiation, cell selection, and cell transfer is required for functional studies of ES-derived DA neurons for future therapeutic applications.

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Year:  2005        PMID: 15941857      PMCID: PMC2654596          DOI: 10.1634/stemcells.2004-0172

Source DB:  PubMed          Journal:  Stem Cells        ISSN: 1066-5099            Impact factor:   6.277


  49 in total

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8.  Long-term survival of human central nervous system progenitor cells transplanted into a rat model of Parkinson's disease.

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  47 in total

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Review 3.  Recent therapeutic strategies for spinal cord injury treatment: possible role of stem cells.

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5.  Parthenogenetic dopamine neurons from primate embryonic stem cells restore function in experimental Parkinson's disease.

Authors:  Rosario Sanchez-Pernaute; Hyojin Lee; Michaela Patterson; Casper Reske-Nielsen; Takahito Yoshizaki; Kai C Sonntag; Lorenz Studer; Ole Isacson
Journal:  Brain       Date:  2008-07-22       Impact factor: 13.501

6.  Persistent dopamine functions of neurons derived from embryonic stem cells in a rodent model of Parkinson disease.

Authors:  Jose A Rodríguez-Gómez; Jian-Qiang Lu; Iván Velasco; Seth Rivera; Sami S Zoghbi; Jeih-San Liow; John L Musachio; Frederick T Chin; Hiroshi Toyama; Jurgen Seidel; Michael V Green; Panayotis K Thanos; Masanori Ichise; Victor W Pike; Robert B Innis; Ron D G McKay
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7.  Analysis of human embryonic stem cells with regulatable expression of the cell adhesion molecule l1 in regeneration after spinal cord injury.

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8.  Germline competency of parthenogenetic embryonic stem cells from immature oocytes of adult mouse ovary.

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Journal:  Hum Mol Genet       Date:  2011-01-14       Impact factor: 6.150

Review 9.  Cell Replacement to Reverse Brain Aging: Challenges, Pitfalls, and Opportunities.

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10.  Human embryonic stem cell-derived dopaminergic neurons reverse functional deficit in parkinsonian rats.

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Journal:  Stem Cells       Date:  2007-10-18       Impact factor: 6.277

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