Aged skeletal stem cells generate an inflammatory degenerative niche

干细胞 造血 抛物线性 骨髓 生物 祖细胞 细胞生物学 免疫学 髓样 间质细胞 老化 间充质干细胞 再生(生物学) 炎症 癌症研究 遗传学
作者
Thomas H. Ambrosi,Owen Marecic,Adrian McArdle,Rahul Sinha,Gunsagar S. Gulati,Xinming Tong,Yuting Wang,Holly Steininger,Malachia Hoover,Lauren S. Koepke,Matthew P. Murphy,Jan Sokol,Eun Young Seo,Ruth Tevlin,Michael López,Rachel Brewer,Shamik Mascharak,Laura Lu,Oyinkansola Ajanaku,Stephanie D. Conley,Jun Seita,Maurizio Morri,Norma Neff,Debashis Sahoo,Fan Yang,Irving L. Weissman,Michael T. Longaker,Charles K. F. Chan
出处
期刊:Nature [Springer Nature]
卷期号:597 (7875): 256-262 被引量:231
标识
DOI:10.1038/s41586-021-03795-7
摘要

Loss of skeletal integrity during ageing and disease is associated with an imbalance in the opposing actions of osteoblasts and osteoclasts1. Here we show that intrinsic ageing of skeletal stem cells (SSCs)2 in mice alters signalling in the bone marrow niche and skews the differentiation of bone and blood lineages, leading to fragile bones that regenerate poorly. Functionally, aged SSCs have a decreased bone- and cartilage-forming potential but produce more stromal lineages that express high levels of pro-inflammatory and pro-resorptive cytokines. Single-cell RNA-sequencing studies link the functional loss to a diminished transcriptomic diversity of SSCs in aged mice, which thereby contributes to the transformation of the bone marrow niche. Exposure to a youthful circulation through heterochronic parabiosis or systemic reconstitution with young haematopoietic stem cells did not reverse the diminished osteochondrogenic activity of aged SSCs, or improve bone mass or skeletal healing parameters in aged mice. Conversely, the aged SSC lineage promoted osteoclastic activity and myeloid skewing by haematopoietic stem and progenitor cells, suggesting that the ageing of SSCs is a driver of haematopoietic ageing. Deficient bone regeneration in aged mice could only be returned to youthful levels by applying a combinatorial treatment of BMP2 and a CSF1 antagonist locally to fractures, which reactivated aged SSCs and simultaneously ablated the inflammatory, pro-osteoclastic milieu. Our findings provide mechanistic insights into the complex, multifactorial mechanisms that underlie skeletal ageing and offer prospects for rejuvenating the aged skeletal system.
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