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Stem Cells Vol. 24 No. 8 August 2006, pp. 1841 -1851
doi:10.1634/stemcells.2005-0609; www.StemCells.com
© 2006 AlphaMed Press

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TISSUE-SPECIFIC STEM CELLS

Formation of Neurons by Non-Neural Adult Stem Cells: Potential Mechanism Implicates an Artifact of Growth in Culture

Adam P. Croft, Stefan A. Przyborski

School of Biological and Biomedical Science, University of Durham, Durham, United Kingdom

Key Words. Trans-differentiation • Stem cell • Adult bone marrow • Tissue culture • Artifact • Neural differentiation

Correspondence: Stefan A. Przyborski, Ph.D., School of Biological and Biomedical Science, University of Durham, South Road, Durham DH1 3LE, U.K. Telephone: +44 (0) 191-3341341; Fax: +44 (0) 191-3341201; e-mail: stefan.przyborski{at}durham.ac.uk

Received December 5, 2005; accepted for publication April 12, 2006.


Trans-differentiation is a mechanism proposed to explain how tissue-specific stem cells could generate cells of other organs, thus supporting the emerging concept of enhanced adult stem cell plasticity. Although spontaneous cell fusion rather than trans-differentiation may explain some unexpected cell fate changes in vivo, such a mechanism does not explain potential trans-differentiation events in vitro, including the generation of neural cell types from cultured bone marrow-derived stem cells. Here we present evidence that shows that cultured bone marrow-derived stem cells express neural proteins and form structures resembling neurons under defined growth conditions. We demonstrate that these changes in cell structure and neural protein expression are not consistent with typical neural development. Furthermore, the ability of bone marrow-derived stem cells to adopt a neural phenotype in vitro may occur as a result of cellular stress in response to removing cells from their niche and their growth in alternative environmental conditions. These findings suggest a potential explanation for the growth behavior of cultured bone marrow-derived stem cells and highlight the need to carefully validate the plasticity of stem cell differentiation.







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