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NAP1L2 drives mesenchymal stem cell senescence and suppresses osteogenic differentiation
Meilin Hu, Liangyu Xing, Li Zhang, Fan Liu, Sheng Wang, Ying Xie, Jingjing Wang, Hongmei Jiang, Jing Guo, Xin Li, Jingya Wang, Lei Sui, Changyi Li, Dayong Liu, Zhiqiang Liu
Aging Cell · 2022 · ▲ 114 citations
Epigenetic alterations
Loss of proteostasis
Cellular senescence
Stem-cell exhaustion
Stem-cell therapy
Cell culture / in vitro
Human
Mouse
In vitro
Abstract
Senescence(definition) of bone marrow mesenchymal stem cells (BMSCs) impairs stemness and osteogenic differentiation, but the key regulators for senescence and the related osteogenesis are not well defined. Herein, we screened the gene expression profiles of human BMSCs from young and old donors and identified that elevation of the nucleosome assembly protein 1-like 2 (NAP1L2) expression was correlated with BMSC senescence and impaired osteogenesis. Elevated NAP1L2 expression was observed in replicative cell senescence and induced cell senescence in vitro, and in age-related senescent human and mouse BMSCs in vivo, concomitant with significantly augmented chromatin accessibility detected by ATAC-seq. Loss- and gain-of-functions of NAP1L2 affected activation of NF-κB pathway, status of histone 3 lysine 14 acetylation (H3K14ac), and chromatin accessibility on osteogenic genes in BMSCs. Mechanistic studies revealed that NAP1L2, a histone chaperone, recruited SIRT1 to deacetylate H3K14ac on promoters of osteogenic genes such as Runx2, Sp7, and Bglap and suppressed the osteogenic differentiation of BMSCs. Importantly, molecular docking analysis showed a possible bond between NAP1L2 and an anti-aging reagent, the nicotinamide mononucleotide (NMN), and indeed, administration of NMN alleviated senescent phenotypes of BMSCs. In vivo and clinical evidence from aging mice and patients with senile osteoporosis also confirmed that elevation of NAP1L2 expression was associated with suppressed osteoblastogenesis. Taken together, our findings suggest that NAP1L2 is a regulator of both BMSC cell senescence and osteogenic differentiation, and provide a new theoretical basis for aging-related disease.
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- DOI
- 10.1111/acel.13551
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- 2026-09-14 MST
Cite this
APA
Hu, M., Xing, L., Zhang, L., Liu, F., Wang, S., Xie, Y., Wang, J., Jiang, H., Guo, J., Li, X., Wang, J., Sui, L., Li, C., Liu, D., & Liu, Z. (2022). NAP1L2 drives mesenchymal stem cell senescence and suppresses osteogenic differentiation. <em>Aging Cell</em>. https://doi.org/10.1111/acel.13551
Vancouver
Hu M, Xing L, Zhang L, Liu F, Wang S, Xie Y, et al. NAP1L2 drives mesenchymal stem cell senescence and suppresses osteogenic differentiation. Aging Cell. 2022. doi:10.1111/acel.13551.
BibTeX
@article{meilin2022NAPLdr,
title = {NAP1L2 drives mesenchymal stem cell senescence and suppresses osteogenic differentiation},
author = {Meilin Hu and Liangyu Xing and Li Zhang and Fan Liu and Sheng Wang and Ying Xie and Jingjing Wang and Hongmei Jiang and Jing Guo and Xin Li and Jingya Wang and Lei Sui and Changyi Li and Dayong Liu and Zhiqiang Liu},
journal = {Aging Cell},
year = {2022},
doi = {10.1111/acel.13551},
}
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