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Stabilization of heterochromatin by CLOCK promotes stem cell rejuvenation and cartilage regeneration
Chuqian Liang, Zunpeng Liu, Moshi Song, Wei Li, Zeming Wu, Zehua Wang, Qiaoran Wang, Si Wang, Kaowen Yan, Liang Sun, Tomoaki Hishida, Yanning Cai, Juan Carlos Izpisúa Belmonte, Pedro Guillén, Piu Chan
Cell Research · 2020 · ▲ 116 citations
Epigenetic alterations
Cellular senescence
Stem-cell exhaustion
Gene therapy
Stem-cell therapy
Human
Mouse
Abstract
Accumulating evidence indicates an association between the circadian clock and the aging process. However, it remains elusive whether the deregulation of circadian clock proteins underlies stem cell aging and whether they are targetable for the alleviation of aging-associated syndromes. Here, we identified a transcription factor-independent role of CLOCK, a core component of the molecular circadian clock machinery, in counteracting human mesenchymal stem cell (hMSC) decay. CLOCK expression was decreased during hMSC aging. In addition, CLOCK deficiency accelerated hMSC senescence(definition), whereas the overexpression of CLOCK, even as a transcriptionally inactive form, rejuvenated physiologically and pathologically aged hMSCs. Mechanistic studies revealed that CLOCK formed complexes with nuclear lamina proteins and KAP1, thus maintaining heterochromatin architecture and stabilizing repetitive genomic sequences. Finally, gene therapy with lentiviral vectors encoding CLOCK promoted cartilage regeneration and attenuated age-related articular degeneration in mice. These findings demonstrate a noncanonical role of CLOCK in stabilizing heterochromatin, promoting tissue regeneration, and mitigating aging-associated chronic diseases.
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- 10.1038/s41422-020-0385-7
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- 2026-09-07 MST
Cite this
APA
Liang, C., Liu, Z., Song, M., Li, W., Wu, Z., Wang, Z., Wang, Q., Wang, S., Yan, K., Sun, L., Hishida, T., Cai, Y., Belmonte, J.C.I., Guillén, P., Chan, P., Zhou, Q., Zhang, W., Qu, J., & Liu, G. (2020). Stabilization of heterochromatin by CLOCK promotes stem cell rejuvenation and cartilage regeneration. <em>Cell Research</em>. https://doi.org/10.1038/s41422-020-0385-7
Vancouver
Liang C, Liu Z, Song M, Li W, Wu Z, Wang Z, et al. Stabilization of heterochromatin by CLOCK promotes stem cell rejuvenation and cartilage regeneration. Cell Research. 2020. doi:10.1038/s41422-020-0385-7.
BibTeX
@article{chuqian2020Stabil,
title = {Stabilization of heterochromatin by CLOCK promotes stem cell rejuvenation and cartilage regeneration},
author = {Chuqian Liang and Zunpeng Liu and Moshi Song and Wei Li and Zeming Wu and Zehua Wang and Qiaoran Wang and Si Wang and Kaowen Yan and Liang Sun and Tomoaki Hishida and Yanning Cai and Juan Carlos Izpisúa Belmonte and Pedro Guillén and Piu Chan and Qi Zhou and Weiqi Zhang and Jing Qu and Guang‐Hui Liu},
journal = {Cell Research},
year = {2020},
doi = {10.1038/s41422-020-0385-7},
}
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