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Matrix Cells from Wharton's Jelly Form Neurons and Glia

Stem Cells · 2003 · Vol. 21(1) · pp. 50–60
Kathy E. MitchellMark L. WeissBrianna M. MitchellP. L. MartinDuane L DavisLois MoralesBryan G. HelwigMark BeerenstrauchKhalil Fathy Abou-EasaTammi HildrethDeryl Troyer

Abstract

We have identified an easily attainable source of primitive, potentially multipotent stem cells from Wharton's jelly, the matrix of umbilical cord. Wharton's jelly cells have been propagated in culture for more than 80 population doublings. Several markers for stem cells, including c-kit (CD117), and telomerase activity are expressed in these cells. Treatment with basic fibroblast growth factor overnight and low-serum media plus butylated hydroxyanisole and dimethylsulfoxide induced Wharton's jelly cells to express a neural phenotype. Within several hours of this treatment, Wharton's jelly cells developed rounded cell bodies with multiple neurite-like extensions, similar to the morphology of neural stem cells. Neuron-specific enolase (NSE), a neural stem cell marker, was expressed in these cells, as shown by immunocytochemistry. Immunoblot analysis showed similar levels of NSE expression in both untreated and induced Wharton's jelly cells. After 3 days, the induced Wharton's jelly cells resembled bipolar or multipolar neurons, with processes that formed networks reminiscent of primary cultures of neurons. The neuron-like cells in these cultures stained positively for several neuronal proteins, including neuron-specific class III beta-tubulin, neurofilament M, an axonal growth-cone-associated protein, and tyrosine hydroxylase. Immunoblot analysis showed increasing levels of protein markers for mature neurons over time post induction. Markers for oligodendrocytes and astrocytes were also detected in Wharton's jelly cells. These exciting findings show that cells from the matrix of umbilical cord have properties of stem cells and may, thus, be a rich source of primitive cells. This study shows their capacity to differentiate into a neural phenotype in vitro.

Pluripotent Stem Cells ResearchNeurogenesis and neuroplasticity mechanismsMesenchymal stem cell researchWharton's jellyBiologyStem cellCell biologyNeurosphereStem cell markerAdult stem cellNeuroepithelial cellPopulationMolecular biology

MeSH terms

AstrocytesCell DifferentiationCells, CulturedExtracellular MatrixGlial Fibrillary Acidic ProteinHumansImmunohistochemistryIntermediate FilamentsNerve Tissue ProteinsNeurogliaNeuronsOligodendrogliaPhosphopyruvate HydrataseUmbilical Cord2',3'-Cyclic-Nucleotide Phosphodiesterases
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References
Adult Bone Marrow Stromal Cells Differentiate into Neural Cells in Vitro
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Adult rat and human bone marrow stromal cells differentiate into neurons
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Embryonic Stem Cells Express Neuronal Properties in Vitro
Developmental Biology · 1995 · 1,168 citations
Myofibroblasts. I. Paracrine cells important in health and disease
American Journal of Physiology-Cell Physiology · 1999 · 909 citations
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