通过药理增强 TFEB 介导的自噬作用使衰老的 BMSCs 恢复活力,从而缓解与衰老相关的骨质流失并延长中老年小鼠的寿命。

IF 14.3 1区 医学 Q1 CELL & TISSUE ENGINEERING
Ziwei Luo, Wanyi Wei, Dawei Qiu, Zixia Su, Liangpu Liu, Honghai Zhou, Hao Cui, Li Yang
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引用次数: 0

摘要

骨髓基质/干细胞(BMSCs)通常被认为是骨髓中成骨细胞和脂肪细胞的共同祖细胞,但在衰老过程中会优先分化为脂肪细胞,而不是成骨细胞,从而导致老年性骨质疏松症。越来越多的证据表明,通过自噬增强BMSCs的年轻化可以延缓骨衰老。在这里,我们合成并展示了一种新型自噬激活剂 CXM102,它能诱导衰老的 BMSCs 自噬,从而使 BMSCs 重获青春并优先分化为成骨细胞。此外,CXM102 还能显著刺激中年雄性小鼠的骨合成代谢,减少骨髓脂肪细胞,延缓骨质流失。从机理上讲,CXM102能促进转录因子EB(TFEB)的核转位,有利于体外和体内成骨细胞的形成。此外,CXM102 还能降低血清中的炎症水平,减少器官纤维化,从而延长雄性小鼠的寿命。我们的研究结果表明,CXM102可作为一种自噬诱导剂来恢复BMSCs的活力,并为老年性骨质疏松症和健康寿命的改善策略提供了新的思路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Rejuvenation of BMSCs senescence by pharmacological enhancement of TFEB-mediated autophagy alleviates aged-related bone loss and extends lifespan in middle aged mice.

Rejuvenation of BMSCs senescence by pharmacological enhancement of TFEB-mediated autophagy alleviates aged-related bone loss and extends lifespan in middle aged mice.

Bone marrow stromal/stem cells (BMSCs) are generally considered as common progenitors for both osteoblasts and adipocytes in the bone marrow, but show preferential differentiation into adipocytes rather than osteoblasts under aging, thus leading to senile osteoporosis. Accumulated evidences indicate that rejuvenation of BMSCs by autophagic enhancement delays bone aging. Here we synthetized and demonstrated a novel autophagy activator, CXM102 that could induce autophagy in aged BMSCs, resulting in rejuvenation and preferential differentiation into osteoblasts of BMSCs. Furthermore, CXM102 significantly stimulated bone anabolism, reduced marrow adipocytes, and delayed bone loss in middle-age male mice. Mechanistically, CXM102 promoted transcription factor EB (TFEB) nuclear translocation and favored osteoblasts formation both in vitro and in vivo. Moreover, CXM102 decreased serum levels of inflammation and reduced organ fibrosis, leading to a prolonger lifespan in male mice. Our results indicated that CXM102 could be used as an autophagy inducer to rejuvenate BMSCs and shed new lights on strategies for senile osteoporosis and healthyspan improvement.

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来源期刊
Bone Research
Bone Research CELL & TISSUE ENGINEERING-
CiteScore
20.00
自引率
4.70%
发文量
289
审稿时长
20 weeks
期刊介绍: Established in 2013, Bone Research is a newly-founded English-language periodical that centers on the basic and clinical facets of bone biology, pathophysiology, and regeneration. It is dedicated to championing key findings emerging from both basic investigations and clinical research concerning bone-related topics. The journal's objective is to globally disseminate research in bone-related physiology, pathology, diseases, and treatment, contributing to the advancement of knowledge in this field.
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