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Nicotinamide Overcomes Pluripotency Deficits and Reprogramming Barriers
Myung Jin Son, Mi‐Young Son, Binna Seol, Minjeong Kim, Chae Hwa Yoo, Myung‐Kwan Han, Yee Sook Cho
Stem Cells · 2013 · ▲ 61 citations
Mitochondrial dysfunction
Cellular senescence
Stem-cell exhaustion
Altered intercellular communication
Partial reprogramming (OSK)
Human
Abstract
Crosstalk between intracellular signaling pathways has been extensively studied to understand the pluripotency of human pluripotent stem cells (hPSCs), including human embryonic stem cells and human induced pluripotent stem cells (hiPSCs); however, the contribution of NAD(+) -dependent pathways remains largely unknown. Here, we show that NAD(+) depletion by FK866 (a potent inhibitor of NAD(+) biosynthesis) was fatal in hPSCs, particularly when deriving pluripotent cells from somatic cells and maintaining pluripotency. NAD and its precursors (nicotinamide [NAM] and nicotinic acid) fully replenished the NAD(+) depletion by FK866 in hPSCs. However, only NAM effectively enhanced the reprogramming efficiency and kinetics of hiPSC generation and was also significantly advantageous for the maintenance of undifferentiated hPSCs. Our molecular and functional studies reveal that NAM lowers the barriers to reprogramming by accelerating cell proliferation and protecting cells from apoptosis and senescence(definition) by alleviating oxidative stress, reactive oxygen species accumulation, and subsequent mitochondrial membrane potential collapse. We provide evidence that the positive effects of NAM (occurring at concentrations well above the physiological range) on pluripotency control are molecularly associated with the repression of p53, p21, and p16. Our findings establish that adequate intracellular NAD(+) content is crucial for pluripotency; the distinct effects of NAM on pluripotency may be dependent not only on its metabolic advantage as a NAD(+) precursor but also on the ability of NAM to enhance resistance to cellular stress.
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- 10.1002/stem.1368
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- 2026-09-06 MST
Cite this
APA
Son, M.J., Son, M., Seol, B., Kim, M., Yoo, C.H., Han, M., & Cho, Y.S. (2013). Nicotinamide Overcomes Pluripotency Deficits and Reprogramming Barriers. <em>Stem Cells</em>. https://doi.org/10.1002/stem.1368
Vancouver
Son MJ, Son M, Seol B, Kim M, Yoo CH, Han M, et al. Nicotinamide Overcomes Pluripotency Deficits and Reprogramming Barriers. Stem Cells. 2013. doi:10.1002/stem.1368.
BibTeX
@article{myung2013Nicoti,
title = {Nicotinamide Overcomes Pluripotency Deficits and Reprogramming Barriers},
author = {Myung Jin Son and Mi‐Young Son and Binna Seol and Minjeong Kim and Chae Hwa Yoo and Myung‐Kwan Han and Yee Sook Cho},
journal = {Stem Cells},
year = {2013},
doi = {10.1002/stem.1368},
}
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