Endothelial Cell-Derived Exosomes Inhibit Osteoblast Apoptosis and Steroid-Induced Necrosis of Femoral Head Progression by Activating the PI3K/Akt/Bcl-2 Pathway

IF 3.1 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Jie Sun, Chen Yao, Wanxin Luo, Xingyu Ge, Wenjie Zheng, Chi Sun, Yafeng Zhang
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Abstract

The aim of the study was to investigate the therapeutic potential of exosomes secreted by endothelial cells (EC-exos) on steroid-induced osteonecrosis of femoral head (SNFH). First, we successfully obtained EC-exos through differential centrifugation. Then, the effects of EC-exos on mouse embryo osteoblast precursor (MC3T3-E1) cells under high concentration of dexamethasone (Dex) were analysed in vitro, which included cell migration, viability, and apoptosis. In vivo, a SNFH rat model was successfully established and treated with EC-exos. Micro-computed tomography (micro-CT) and haematoxylin and eosin (H&E) were used to observe femoral trabeculae. Our in vitro results showed that EC-exos improved cell viability and migration of osteoblasts and reduced the apoptotic effect of high concentration of Dex on osteoblasts in vitro. Phosphoinositide 3-kinase (PI3K)/Akt/Bcl-2 signalling pathway was activated in MC3T3-E1 cells under the response to EC-exos. In vivo, increased bone volume per tissue volume (BV/TV) (p = 0.031), trabecular thickness (Tb.Th) (p = 0.020), and decreased separation (Tb.Sp) (p = 0.040) were observed in SNFH rats treated with EC-exos. H&E staining revealed fewer empty lacunae and pyknotic osteocytes in trabeculae. The expression of Bcl-2 and Akt in EC-exos group was significantly increased in trabeculae tissue. Overall, our finding indicated that EC-exos could attenuate SNFH by inhibiting osteoblast apoptosis via the PI3K/Akt/Bcl-2 pathway.

Abstract Image

内皮细胞衍生的外泌体通过激活 PI3K/Akt/Bcl-2 通路抑制成骨细胞凋亡和类固醇诱导的股骨头坏死进程
本研究旨在探讨内皮细胞分泌的外泌体(EC-exos)对类固醇诱导的股骨头坏死(SNFH)的治疗潜力。首先,我们通过差速离心法成功获得了内皮细胞外泌体。然后,我们在体外分析了EC-exos在高浓度地塞米松(Dex)作用下对小鼠胚胎成骨细胞前体(MC3T3-E1)细胞的影响,包括细胞迁移、活力和凋亡。在体内,成功建立了 SNFH 大鼠模型,并用 EC-exos 进行了治疗。显微计算机断层扫描(micro-CT)和血涂片及伊红(H&E)用于观察股骨小梁。我们的体外研究结果表明,EC-exos能提高成骨细胞的细胞活力和迁移能力,减少高浓度Dex对体外成骨细胞的凋亡作用。MC3T3-E1细胞在EC-exos的作用下,磷酸肌醇3-激酶(PI3K)/Akt/Bcl-2信号通路被激活。在体内,用EC-exos治疗的SNFH大鼠单位组织体积骨量(BV/TV)p=0.031,骨小梁厚度(Tb.Th)p=0.020,分离度(Tb.Sp)p=0.040。H&E 染色显示,小梁中的空洞和脓结骨细胞较少。Bcl-2和Akt在EC-exos组小梁组织中的表达明显增加。总之,我们的研究结果表明,EC-exos可通过PI3K/Akt/Bcl-2途径抑制成骨细胞凋亡,从而减轻SNFH。
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来源期刊
CiteScore
7.50
自引率
3.00%
发文量
97
审稿时长
4-8 weeks
期刊介绍: Journal of Tissue Engineering and Regenerative Medicine publishes rapidly and rigorously peer-reviewed research papers, reviews, clinical case reports, perspectives, and short communications on topics relevant to the development of therapeutic approaches which combine stem or progenitor cells, biomaterials and scaffolds, growth factors and other bioactive agents, and their respective constructs. All papers should deal with research that has a direct or potential impact on the development of novel clinical approaches for the regeneration or repair of tissues and organs. The journal is multidisciplinary, covering the combination of the principles of life sciences and engineering in efforts to advance medicine and clinical strategies. The journal focuses on the use of cells, materials, and biochemical/mechanical factors in the development of biological functional substitutes that restore, maintain, or improve tissue or organ function. The journal publishes research on any tissue or organ and covers all key aspects of the field, including the development of new biomaterials and processing of scaffolds; the use of different types of cells (mainly stem and progenitor cells) and their culture in specific bioreactors; studies in relevant animal models; and clinical trials in human patients performed under strict regulatory and ethical frameworks. Manuscripts describing the use of advanced methods for the characterization of engineered tissues are also of special interest to the journal readership.
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