46 Stem cell gene expression programs influence clinical outcome in human leukemia.
http://www.nature.com/nm/journal/v17/n9/abs/nm.2415.html
45 Human oocytes reprogram somatic cells to a pluripotent state.
http://www.nature.com/nature/journal/v478/n7367/full/nature10397.html
44 Grafted human-induced pluripotent stem-cell–derived neurospheres promote motor functional recovery after spinal cord injury in mice.
http://www.pnas.org/content/108/40/16825.abstract
43 An Alternative Splicing Switch Regulates Embryonic Stem Cell Pluripotency and Reprogramming. Gabut M. et al. (2011). Cell 147:132-146.
http://www.cell.com/abstract/S0092-8674(11)00949-4
42 Targeted killing of a mammalian cell based upon its specialized metabolic state. Alexander PB. et al. (2011). PNAS 108: 15828-15833.
http://www.pnas.org/content/108/38/15828.abstract
41 lincRNAs act in the circuitry controlling pluripotency and differentiation. Guttman M. et al. (2011). Nature 477:295-300.
http://www.nature.com/nature/journal/v477/n7364/full/nature10398.html
40 FOXO1 is an essential regulator of pluripotency in human embryonic stem cells. Zhang X. et al. (2011). Nature Cell Biology 13: 1092-1099.
http://www.nature.com/ncb/journal/v13/n9/abs/ncb2293.html
39 Self-Renewing Hematopoietic Stem Cell Is the Primary Target in Pathogenesis of Human Chronic Lymphocytic Leukemia. Kikushige Y. et al. (2011). Cancer Cell 20:246-259.
http://www.cell.com/cancer-cell/abstract/S1535-6108(11)00259-5
38 p57 Is Required for Quiescence and Maintenance of Adult Hematopoietic Stem Cells. Matsumoto A. et al. (2011). Cell Stem Cell 9:262-271.
http://www.cell.com/cell-stem-cell/abstract/S1934-5909(11)00329-8
37 Conversion of Mouse and Human Fibroblasts into Functional Spinal Motor Neurons. Son EY. et al. (2011). Cell Stem Cell 9: 205-218.
http://www.cell.com/cell-stem-cell/abstract/S1934-5909(11)00377-8
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