He Chen, Hu Chen, He Wen-Zhen, Sun Yu-Chen, Jiang Yangzi, Liu Ling, Hou Jing, Chen Kai-Xuan, Jiao Yu-Rui, Huang Mei, Huang Min, Yang Mi, Lu Qiong, Wei Jie, Zeng Chao, Lei Guang-Hua, Li Chang-Jun
Department of Endocrinology, Endocrinology Research Center, Xiangya Hospital of Central South University, Changsha, Hunan, 410008, China.
School of Biomedical Sciences, Institute for Tissue Engineering and Regenerative Medicine, Faculty of Medicine, The Chinese University of Hong Kong, Hong Kong SAR, China.
Bioact Mater. 2024 Jul 4;36:508-523. doi: 10.1016/j.bioactmat.2024.06.035. eCollection 2024 Jun.
Obesity-induced chronic inflammation exacerbates multiple types of tissue/organ deterioration and stem cell dysfunction; however, the effects on skeletal tissue and the underlying mechanisms are still unclear. Here, we show that obesity triggers changes in the microRNA profile of macrophage-secreted extracellular vesicles, leading to a switch in skeletal stem/progenitor cell (SSPC) differentiation between osteoblasts and adipocytes and bone deterioration. Bone marrow macrophage (BMM)-secreted extracellular vesicles (BMM-EVs) from obese mice induced bone deterioration (decreased bone volume, bone microstructural deterioration, and increased adipocyte numbers) when administered to lean mice. Conversely, BMM-EVs from lean mice rejuvenated bone deterioration in obese recipients. We further screened the differentially expressed microRNAs in obese BMM-EVs and found that among the candidates, miR-140 (with the function of promoting adipogenesis) and miR-378a (with the function of enhancing osteogenesis) coordinately determine SSPC fate of osteogenic and adipogenic differentiation by targeting the Pparα-Abca1 axis. BMM miR-140 conditional knockout mice showed resistance to obesity-induced bone deterioration, while miR-140 overexpression in SSPCs led to low bone mass and marrow adiposity in lean mice. BMM miR-378a conditional depletion in mice led to obesity-like bone deterioration. More importantly, we used an SSPC-specific targeting aptamer to precisely deliver miR-378a-3p-overloaded BMM-EVs to SSPCs via an aptamer-engineered extracellular vesicle delivery system, and this approach rescued bone deterioration in obese mice. Thus, our study reveals the critical role of BMMs in mediating obesity-induced bone deterioration by transporting selective extracellular-vesicle microRNAs into SSPCs and controlling SSPC fate.
肥胖诱导的慢性炎症会加剧多种组织/器官的退化和干细胞功能障碍;然而,其对骨骼组织的影响及潜在机制仍不清楚。在此,我们表明肥胖会引发巨噬细胞分泌的细胞外囊泡中微小RNA谱的变化,导致骨骼干/祖细胞(SSPC)在成骨细胞和脂肪细胞之间的分化发生转变,并引起骨质退化。当将肥胖小鼠的骨髓巨噬细胞(BMM)分泌的细胞外囊泡(BMM-EVs)注射给瘦小鼠时,会导致骨质退化(骨体积减少、骨微结构退化和脂肪细胞数量增加)。相反,来自瘦小鼠的BMM-EVs可改善肥胖受体的骨质退化。我们进一步筛选了肥胖BMM-EVs中差异表达的微小RNA,发现在候选者中,miR-140(具有促进脂肪生成的功能)和miR-378a(具有增强成骨作用的功能)通过靶向Pparα-Abca1轴协同决定SSPC成骨和成脂分化的命运。BMM miR-140条件性敲除小鼠对肥胖诱导的骨质退化具有抗性,而在SSPC中过表达miR-140会导致瘦小鼠骨量降低和骨髓脂肪增多。小鼠中BMM miR-378a的条件性缺失会导致类似肥胖的骨质退化。更重要的是,我们使用一种SSPC特异性靶向适体,通过适体工程化的细胞外囊泡递送系统将负载miR-378a-3p的BMM-EVs精确递送至SSPC,这种方法挽救了肥胖小鼠的骨质退化。因此,我们的研究揭示了BMM在通过将选择性细胞外囊泡微小RNA转运至SSPC并控制SSPC命运来介导肥胖诱导的骨质退化中的关键作用。